Tag Archives: Hydrofracturing

A method of injecting fluids under pressure to fracture rock formations for the extraction of oil and gas.

Hydraulic Fracturing: Impacts from Produced Water

Today is my final post covering the U.S. Environmental Protection Agency’s (EPA) December 16, 2016 report: “Hydraulic Fracturing for Oil and Gas: Impacts from the Hydraulic Fracturing Water Cycle on Drinking Water Resources in the U.S.”  I reviewed EPA’s analysis of the potential for drinking water contamination during the oil and gas industry’s management of produced water. EPA includes within the definition of produced water both the fluid which has been injected down a well to hydraulically fracture oil and gas rock formations and the normally salty water contained within the rock formation itself. Once rocks are fractured and the pressure is released on a well undergoing hydraulic fracturing, part of the hydraulic fracturing fluid and some of the salty formation water flow back up the well to the surface. The management of the produced water once it reaches the surface is important to safeguarding drinking water resources.

 

Spills are probably the number one problem with waste handling in most industries, so it is not surprising that there are multiple ways produced water is spilled at oil and gas wells being drilled or hydraulically fractured. We are all too familiar with the blowout and spill which occurred in the Gulf of Mexico in 2010. Who did not see the underwater videos of oil and brine pouring out of the well on the sea floor? After all it went on for 5 months. Blowouts occur on-shore as well. When they occur at a well being fractured, it can result in oil and gas, formation water, and hydraulic fracturing fluid all coming back up the well and being released at the ground surface. If the well casing is damaged during the blowout then there is also the potential of produced water being released into rock formations with groundwater aquifers. Fortunately blowouts are very rare. When blowouts occur on-shore, it is easier to stop the flow and to clean-up the mess. Just as problematic, though not as spectacular, are the spills of produced water from day to day management activities.

 

When oil and gas wells are new, they produce more water. Horizontal wells produce more water than vertical wells. More hydraulic fracturing chemicals will be in the produced water during the early life of a well. Over time the produced water will be composed predominantly of the salty formation water from the oil and gas formation. Unfortunately the formation water is not benign. It is brine and full of chlorine, bromine, metals, organic oil and gas constituents, and naturally occurring radioactive minerals. There is a lot of this produced water coming up from active oil and gas wells all over the United States, whether they have been hydraulically fractured or not. EPA estimates horizontal wells produce 1100 gallons of produced water per day and vertical wells about 500 gallons a day. But the exact volume depends on the actual formation being fractured. The rock formation also determines what the composition of the produced water will be. For example in the Marcellus Shale, the produced water contains more barium and strontium. But even within a single rock formation like the Marcellus, the composition can vary widely. EPA has documented salinities of between 1500 and 300,000 milligrams per liter in the Marcellus Shale. The produced water characteristics of hydraulically fractured wells are not substantially different from produced waters out of wells which have not been hydraulically fractured. The main difference between the two types of water would be the chemicals used in hydraulic fracturing; chemicals like ethylene glycol, propylene glycols, toluene, xylene, 2-butanone, acetone and many others. Chemical additives are a small amount of the total fluid used for hydraulic fracturing, on average less than 1 percent. Most of the fluid used to fracture a well is simply water.

 

When the produced water reaches the surface, it must be managed. Either it is collected in tanks or discharged into pits. Thank goodness state governments have ended the practice of allowing discharge into unlined pits. According to EPA, unlined pits have been the source of contamination to water in a number of cases in New Mexico, southwest Pennsylvania and possibly in Texas. But lined pits can leak too if the liner isn’t installed adequately. Produced water is often piped to pits or storage. There have been a number of incidents where pipelines have broken or valves have been accidentally left open. In 2015, North Dakota had one of the largest pipeline spills of produced water. About 2.9 million gallons of produced water were released.

 

Of course pipelines sometimes leak. So does other equipment the produced water passes through, such as hoses. Even storage containers leak. The best data that EPA was able to come up with in examining the various sources of spills was from North Dakota. There were 552 leaks or spills between 2012 and 2013.  EPA says that was somewhere between 5 – 7 releases of produced water per 100 active production wells. Most of the produced water spills were the result of equipment leaks and overflows of tanks. This seems like a lot of spills to me. Of course not every spill was a big one; they ranged from 170 gallons to 74,000 gallons.

 

Pits and storage containers are not the final resting place for produced water. With the amount of water being produced over the lifetime of an oil and gas well, the water has to be permanently disposed of somewhere. Most states have lots of disposal injection wells permitted under the Underground Injection Control regulations. So in the majority of oil and gas producing states, the produced water is piped or trucked to an injection well for disposal. Injection wells are installed into permeable rock formations at great depths and are specifically designed for final disposal of liquid waste. EPA says in 2012, there were 26,400 disposal injection wells and 65 % of them were located in Texas, Oklahoma and Kansas. EPA cites a study that estimates 93 % of all produced water in the U.S. is injected into disposal wells.

 

Interestingly enough Pennsylvania only has 9 permitted underground injection wells in the whole state. Trucking produced water to another state where there is a disposal well is pretty expensive, except in southwest Pennsylvania. At one time produced water in Pennsylvania was being sent to Publically Owned Treatment Works (POTWs). These facilities treat municipal waste. Produced water was also being shipped to commercial facilities called Centralized Waste Treatment (CWT). This is no longer allowed in Pennsylvania because neither POTWs nor CWTs were able to treat the produced water from the Marcellus adequately and it was causing problems for downstream drinking water suppliers. Today over 80 % of produced water in Pennsylvania is being treated and reused as water to hydraulically fracture oil and gas wells.

 

In the 10 years it has taken EPA to write their report on the impact of hydraulic fracturing on drinking water resources, a lot of improvements have been made in management of produced water which consequently has reduced potential impact on drinking water. It looks like more improvements could certainly be made in produced water management. Many of the produced water spills are caused by human error or equipment failure. EPA was unable to quantify the number of spills of produced water nationally or the affects on drinking water sources. However, they did examine a few states which keep spill records. EPA found that of 575 produced water spills in California between 2009 and 2014, 18 percent impacted surface water. Quality improvement in produced water handling could reduce the number of spills and impacts on drinking water resources.

Frac Hits

“Frac hits” sounds a little bit like a “best of album”, maybe a “best of album” for the oil and gas industry. But no, frac hits are something the oil and gas industry doesn’t want. Why? Because when a frac hit occurs then it means the horizontal fractures produced during hydraulic fracturing of a well have either intersected a nearby (offset) well or the fractures that were produced by hydraulic fracturing in a nearby well. How does an oil and gas operator know there has been a frac hit? Well the operator of the nearby well is going to be sure to let them know, because it often reduces the production of oil and gas and raises the pressure in the wellbore of their well. It can also introduce hydraulic fracturing fluid into a nearby well, which then may travel up the borehole and spill out on the surface. An increase in pressure, as well as the extension of fractures into the rock formation around a nearby well, can also damage the casing and cement. Cemented casing protects overlying rock formations from oil and gas coming up the sides of the well and possibly getting into groundwater. So a frac hit is not particularly popular in the oil and gas industry.

 

Frac hits occur more often when oil and gas wells are located close together. The Environmental Protection Agency in their December 16, 2016 report –“Hydraulic Fracturing for Oil and Gas: Impacts from the Hydraulic Fracturing Water Cycle on Drinking Water Resources in the U.S.” – states most frac hits occur when wells are less than 1100 feet from one another. But frac hits have also occurred in oil and gas wells up to 8422 feet away from a well being hydraulically fractured. That’s over a mile away.

 

Most frac hits are located in areas where the oil and gas rock formation is shallow, because predominantly horizontal fractures are formed. Deeper rock formations develop predominantly vertical fractures. Rock formations at depth are under greater vertical pressure from the overlying rock formations, which results in more upward extension of fractures. Shallower formations don’t have much in the way of vertical pressure from overlying rock, so they fracture outward or horizontally.

 

Just like producing oil and gas wells, nearby abandoned wells can be affected by hydraulic fracturing. Abandoned wells are old wells which are no longer used. They may have been plugged with cement. Other wells were often just left with open boreholes. It depends on the wells age and what the state regulations required at the time of abandonment. For example and according to EPA:  Pennsylvania’s abandonment regulations for oil and gas wells were not issued until 1957. The state’s records show there were 176,000 oil and gas wells abandoned prior to 1957. I was surprised at the number of wells. You never think of Pennsylvania as being a major oil and gas state, even though the first oil and gas well in the United States was drilled there. In fact, the state’s records show that around 300,000 oil and gas wells were drilled in Pennsylvania prior to 1957. So only a little over 100,000 wells would have been properly plugged under state regulations. These old abandoned wells are sometimes near the new wells being drilled today in Pennsylvania. Old wells, even when they were plugged with cement, are probably now deteriorating. Nothing lasts forever, especially cement and steel casing.  So if one of these old deteriorating or open borehole wells is intersected by new hydraulically induced fractures, then some interesting things can occur. For example EPA cites an abandoned well in Tioga County, Pennsylvania which received a frac hit as a result of a newly drilled gas well being hydraulically fractured. The abandoned well produced a 30 foot geyser of brine for more than a week.

 

So how do frac hits affect water resources? Although not a major pathway for gas or contaminants to enter drinking water zones, EPA’s research shows frac hits are a potential concern in areas where shallow oil and gas is being developed, producing wells and abandoned wells are abundant, and a groundwater source is being actively used by households. In addition, if surface spills from frac hits occur then contamination of nearby surface waters and shallow groundwater may also be a concern.

Hydraulic Fracturing Impacts on Drinking Water – Water Acquisition

There are many complaints about hydraulic fracturing, some of them real and some of them imagined. Complaints include everything from too much noise due to trucks and compressors used at hydraulic fracturing sites in the Dallas suburbs, to sudden entry of flammable methane into drinking water wells in Pennsylvania. So the impacts of hydraulic fracturing on the availability of freshwater for other purposes may seem trivial for people dealing with the immediate impacts disturbing their lives. But for some western states, the competition for water in a dry climate can be significant and a cause for concern. After all, there are few surface water resources in arid climates and the surface waters which exist are often fully utilized for domestic drinking water, agriculture and existing industry. People who live in dry climates sometimes rely heavily on groundwater, which is also a limited resource. A new use of groundwater for hydraulic fracturing can potentially impact an aquifer being used by households, farmers, and existing industrial operations.

 

How much water does a hydraulic fracturing operation need? The U.S Environmental Protection Agency’s Final Report on Impacts from Hydraulic Fracturing Activities on Drinking Water, states the median volume of water used per well is 1.5 million gallons. According to EPA, the average family of four uses about 400 gallons of water for domestic uses a day or 146,000 gallons a year. So hydraulic fracturing an oil and gas well uses about 10 times the amount of water a family uses in a year. Of course the 1.5 million gallons is the median, which means half of the wells being hydraulically fractured used less water and half used more. The amount of water used per well is dependent on the type of rock formation being fractured and whether it is a vertical well or a horizontal well. Fracturing shale requires more water than fracturing sandstone. Oil and gas wells which have been drilled horizontally require more water to fracture the rock than vertical wells.

 

Where does all this water come from? In the east, it mostly comes from surface water. For example, EPA’s report shows that in Pennsylvania and West Virginia about 90 % of the water used in hydraulic fracturing comes from surface waters like rivers and streams. In the west, the water for hydraulic fracturing comes mostly from groundwater. For example in Texas, 50 to 100 % of water used in hydraulic fracturing is sourced from groundwater. EPA says nationally, only about 5 % of water used in hydraulic fracturing is reused. So basically, the oil and gas business is using almost exclusively fresh water resources for hydraulic fracturing. Nationwide in 2012, the oil and gas industry used 52 billion gallons of water across 20 states to hydraulically fracture their wells. EPA says this is a small number compared to water being used for other purposes, such as drinking water and irrigation. Nationally, less than 1 % of water usage is for hydraulic fracturing.

But in certain areas, especially the dry western states, the percentage of water usage for hydraulic fracturing is greater. Of 401 counties reporting water usage data by the oil and gas industry, there are 26 counties where 10 % or more of the water usage in the county is for hydraulic fracturing.

 

This is where I have to scratch my head a little bit and wonder why EPA wanted to compare the use of a water resource for hydraulic fracturing against the use of the water for other purposes. In a county with no lack of water resources, the comparison makes no sense as there is abundant water for new uses. In a county with limited water resources, the comparison makes no sense either as there is little water for any use. Most of the counties where the use of freshwater for hydraulic fracturing is large compared to other uses, depend on groundwater. As mentioned above, groundwater is a limited resource. In the arid west, new water entering an aquifer is often less than what is being pumped out of the aquifer for domestic, agricultural and industrial uses. There are many aquifers in the mid-west and west which are being depleted as a result of over pumping of the groundwater. Sometimes fresh groundwater in certain areas of the west is being pumped so much that salty water from other aquifers is beginning to intrude into the freshwater aquifer. As a result, some towns have had to build desalination plants in order to provide people with drinking water.

 

I suppose the EPA wants to use this comparison to say overall there is little impact nationally on water usage due to hydraulic fracturing. But that only tells part of the story. After all, hauling water long distances adds to the cost of hydraulic fracturing. So water tends to be sourced fairly close to the oil and gas wells. If the source is a nearby stream then taking 1.5 million gallons from it can certainly have some impacts to the local flora and fauna and to people using the water downstream. EPA’s report points this out as a concern in Pennsylvania. Fortunately in that state, there is some government regulation of stream flows to limit impacts from water withdrawals.

 

Ditto, there is a concern where groundwater resources are limited, like in Texas and North Dakota. Again the water for hydraulic fracturing is sourced locally, usually by drilling a water well nearby. If groundwater is pumped significantly for use in hydraulic fracturing, it may affect the quantity of water available from the aquifer for other uses.  Although this may be happening in only a small number of counties, water managers have expressed concern about the potential impacts to households and farmers using the same groundwater aquifers as those now being utilized as a source of water for hydraulic fracturing. Water managers in a number of counties in Texas and North Dakota are having to make some hard decisions. For example, in North Dakota there was a concern among water managers about the increased pumping of groundwater from the Fox Hills aquifer for use in hydraulic fracturing. They feared that over pumping the aquifer for this new use would end up destroying the artesian flow of the groundwater. Artesian flow means the groundwater rises to the surface (without the aid of an electric pump) as a result of the natural pressure on the aquifer from overlying rock. This is important in rural areas where you don’t have a lot of electric lines to run a pump. In 2012, the state worked with the Corps of Engineers on a study to determine the availability of water for hydraulic fracturing from a reservoir on the nearby Missouri River as a replacement for the groundwater. As a result of the study, the Corps of Engineers determined 32.6 billion gallons of surface water from the reservoir could be made available for the oil and gas industry and for other municipal and industrial uses.

 

So the issue of impacts to drinking water resources from the acquisition of water by the oil and gas industry for use in hydraulic fracturing is a local one. The use of national water usage numbers is probably not a significant way to express the impacts of hydraulic fracturing on drinking water resources.

Summary of U.S EPA’s Final Report on Impacts from Hydraulic Fracturing

I started reading the recently issued (December 13, 2016) final report from the U.S. Environmental Protection Agency (EPA) – “Hydraulic Fracturing for Oil and Gas: Impacts from the Hydraulic Fracturing Water Cycle on Drinking Water Resources in the United States” (EPA-600-R-16-236Fa). I found the report to be significantly changed from the draft report issued way back in June of 2015. It is less a scientific report now and more of what the document was intended to be – a report to Congress on the impacts of hydraulic fracturing, if any, on drinking water resources. It hasn’t been “dumbed down” for that purpose, as I suppose a member of Congress will never actually read through the report, but it has been made much easier to read with far less science “jargon”. There is also not as much data and discussion on how EPA reached the conclusions in the report. But there is sufficient within the report, which covers a wide range of impacts from water acquisition to chemical toxicity, to dwell on it for some time in a series of posts. Otherwise, today’s post would be about twenty-five pages – a little long for anyone these days to sit down and read.

 

I will however write you a little summary of the report and you can follow-up in the next few months with my more detailed reviews of individual chapters within the report – the first of which I will post next week. Another reason I want to spread the wealth on the information in this report is because frankly, I have a lot of questions about the data and analysis in the report. I’m going back to many of EPA’s sources cited in the report in order to check the content of those sources so I can better understand the analysis. I was able to attend EPA’s webinar on the report held December 14, 2016. During the webinar EPA explained a few of the discrepancies between the original draft and the final. For example, the report no longer contains the phrase “studies found no widespread contamination of drinking water resources by hydraulic fracturing.” The reason EPA gave for the deletion of this phrase was due to comments from the Science Advisory Board, which reviewed the report, asking EPA to “quantify” this statement. Quantify in this case, apparently means provide exact numbers nationwide on where surface and groundwater have been contaminated during hydraulic fracturing. Since there are no databases containing this type of information, EPA could not reasonably provide such quantification and therefore decided to leave the phrase out of the current report.

 

Basically EPA said: hey, nobody is out characterizing the drinking water sources in an area before and after hydraulic fracturing occurs, so we can’t really say much about whether hydraulic fracturing is causing widespread drinking water contamination or not. Lack of this type of information is one of the many “data gaps” EPA identified in the report. Since the purpose of the report was to determine if hydraulic fracturing is impacting drinking water sources, I really kind of have to say: huh, are you kidding me, you’ve been conducting this study for six years and all you can say is (I quote here from the final report): “significant data gaps and uncertainties in the available data prevented us from calculating or estimating the national frequency of impacts on drinking water resources from activities in the hydraulic fracturing water cycle. The data gaps and uncertainties described in this report also precluded a full characterization of the severity of impacts.”

 

I would say there was something seriously wrong with the design of the work plan for the report, if it wasn’t for the fact, EPA didn’t follow the work plan in its entirety. For example, EPA was supposed to conduct pre- and post-hydraulic fracturing characterization of drinking water resources. These studies did not occur, which resulted in the major data gap mentioned above. Other data gaps resulted in part from the databases EPA used. They provided such significant inability for EPA to make conclusions on the nature and extent of any possible contamination; it is now worth while asking: why were they used in the first place.

 

Well, I better provide a summary now, or this post is going to turn out to be twenty-five pages just by itself. I guess I’ll start where I ended in my last post, when I wrote: “the major findings made by EPA were rather self-evident and didn’t need a six year study.”  Let’s take the first category: water acquisition. Water is a major component of hydraulic fracturing fluid (90 – 97% by volume) so the water used for making up the fluid has to come from somewhere. It can be a lot of water and a major question by water managers in the west has been: how is the increased use of water in hydraulic fracturing activities impacting water supplies. EPA says the median volume of water used per well fractured between 2011 and 2013 (the period of the study) is 1.5 million gallons. Of course you know “median” means half of the wells used more than 1.5 million gallons and the other half used less. It depends on the type of rock being fractured and whether the well is vertical or horizontal as to how much water is needed for hydraulic fracturing. EPA looked at water use by county and was able to determine that in most counties the amount of water used in the hydraulic fracturing of wells was less than 1 % of water use in the county; except in counties where it wasn’t. In fact, in 39 out of 401 counties with data, ten percent or more of water use in the county was for hydraulic fracturing and these were pretty much in the driest states, like Texas and North Dakota, and in counties where there’s not a whole lot of population. States like Pennsylvania in the east, where populations are greater and there is plenty of surface water (of course) showed less water is used by hydraulic fracturing compared to total water uses.

 

EPA’s study of contamination to drinking water sources from chemical mixing areas (where chemicals are stored on site and transported through pipes and hoses to equipment at the well where fracturing occurs) showed spills to be caused by equipment failure or human error. EPA studied 151 spills at the surface from chemical storage, mixing, and transport. Thirty percent were from the areas where fluid was stored. The median spill was 420 gallons, but the spill ranged from5 galloons to 19,320 gallons and included acids, biocides, friction reducers, cross linkers, gels, and blended fluid. Thirteen of the 151 spills reached a surface water body.

 

For contamination caused by the actual injection of hydraulic fracturing fluid into a well, EPA looked at a couple of different pathways: those pathways caused by newly created fractures from the process of hydraulic fracturing and pathways caused by mechanical failure or poor construction of the well being hydraulically fractured. These are two underground pathways where the hydraulic fracturing fluid could potentially flow into ground water. EPA pretty much took the information from already published studies; no new findings here.

 

The concern EPA has with fractures in the subsurface is that they might extend upward from the rock formation being fractured into shallower potable drinking water aquifers and create a route for hydraulic fracturing fluids to move into an aquifer. The EPA cites several studies which show fractures vary significantly in length depending on the rock formation being fractured. For example, hydraulic fracturing creates fractures with a greater median length in the Marcellus Shale of Pennsylvania than it causes in the Barnett Shale of Texas. The orientation of the fractures varies with the rock formation’s depth; fracturing at depths less than 2000 feet yields mostly horizontal fractures which don’t extend upward towards shallower groundwater zones, whereas fracturing at depths greater than 2000 feet yields mostly vertical fractures. EPA cites another study indicating there is a greater likelihood for upward migration of hydraulic fracturing fluid into groundwater resources when there is less vertical separation between the rock being fractured and the rock containing the groundwater.

 

In the report, EPA has some actual cases they have cited where well construction and mechanical failure causing contamination, but again the number of hydraulically fractured wells where this type of contamination pathway has occurred cannot be quantified

 

Another pathway EPA looked at to determine its potential for contamination of drinking water sources was the spillage of water containing hydraulic fracture fluid at the surface. When wells are injected with fluid to fracture the rock, high pressures are applied to the well at the surface. After the fractures are formed, the pressure on the well is released and a lot of the fluid put down the hole comes back up to the surface. Normally the water is collected and contained at the surface in tanks. But EPA was able to discern a number of cases (225) from 2011 to 2012 where there were spills of this fluid. Usually spill volumes were small – 340 to 1000 gallons – but there were at least 12 spills greater than 21,000 gallons, one of which was 2.9 million gallons. Thirteen percent of the spills reached surface water.

 

The collected hydraulic fracture fluid has to be disposed of eventually or reused. Where disposal options are limited, EPA shows more of the fluid is treated and reused. For example, in the past in Pennsylvania the collected fluid was often sent to local Publically Owned Treatment Works (POTWs) for treatment and disposal into local waterways. That all ended of course during the course of EPA’s study. The POTWs couldn’t really treat the fluid sufficiently and water with elevated level of bromide, strontium, barium and radium were being discharged into local rivers. The state environmental regulators pretty much shut all of that down, and now 90 % of the fluid is treated and reused in hydraulic fracturing. Most other states are disposing of the fluid into Class II injection wells. These are permitted wells used for waste disposal. Of course we’ve all seen some of the problems this has caused, not from contamination, but from earthquakes produced by the injection of fluid from thousands of wells into rocks with faults that are activated by all of the excess water. Use of unlined pits for collecting the fluid, instead of containing it in tanks, has also caused contamination as the fluid percolates into shallow groundwater beneath the pits. Many states have outlawed this practice now.

 

Basically, there’s a lot of information in the EPA report. But other than specific known cases of contamination, EPA is not able to make any sort of conclusion on how widespread contamination is (or isn’t) from the various pathways identified in the report. EPA says in the report, the data gaps are too great to make solid conclusions on the frequency of impacts to drinking water resources from hydraulic fracturing. What they mean by data gap, is simply the information is not readily available; either it is not collected (such as pre- and post fracking water quality), it’s not publically available (the toxicity data on many of the chemicals used in hydraulic fracturing fluid), or the information is just way too difficult to put together (for example, the surface locations of all wells being hydraulically fractured and the locations of the associated wastewater management).

 

EPA can only make some very obvious conclusions on what can cause impacts to drinking water sources; for example, using a lot of water for hydraulic fracturing in an area with few surface or groundwater sources can impact the availability of water for other uses, or inadequately treated wastewater can impact surface water to which it is being discharged, or disposing of hydraulic fracturing fluid in unlined pits can result in shallow groundwater beneath those pits being contaminated. All of these conclusions are already widely known and only take a modest amount of common sense to figure out. Unfortunately, common sense is not very common and all of these activities have occurred. Will state regulators address these problems with laws and regulations? Many of them already have. But the question remains unanswered of whether or not you need to shiver in your boots, if a company wants to hydraulically fracture an oil or gas well in your neighborhood.

U.S Environmental Protection Agency Issues Final Report on Impacts from Hydraulic Fracturing Activities on Drinking Water

The U.S. Environmental Protection Agency (EPA) issued a final report on December 13, 2016 entitled: “Hydraulic Fracturing for Oil and Gas: Impacts from the Hydraulic Fracturing Water Cycle on Drinking Water Resources in the United States” (EPA-600-R-16-236Fa). The report draws the final conclusions of the multi-year scientific research program conducted by the EPA’s Office of Research and Development to determine what (if any) impacts hydraulic fracturing activities have on drinking water sources.

 

Today’s press release from EPA states:

 

Data gaps and uncertainties limited EPA’s ability to fully assess the potential impacts on drinking water resources both locally and nationally. Generally, comprehensive information on the location of activities in the hydraulic fracturing water cycle is lacking, either because it is not collected, not publicly available, or prohibitively difficult to aggregate. In places where we know activities in the hydraulic fracturing water cycle have occurred, data that could be used to characterize hydraulic fracturing-related chemicals in the environment before, during, and after hydraulic fracturing were scarce. Because of these data gaps and uncertainties, as well as others described in the assessment, it was not possible to fully characterize the severity of impacts, nor was it possible to calculate or estimate the national frequency of impacts on drinking water resources from activities in the hydraulic fracturing water cycle.” 

 

If you are a regular reader of this blog, you will know I have been following the interim scientific reports and support documents released by EPA on the subject. This is a disappointing conclusion after the years of waiting for this final assessment to be completed. EPA does make some conclusions on what hydraulic fracturing activities might contribute to contamination of water. They include the following:

  • Water withdrawals for hydraulic fracturing in times or areas of low water availability, particularly in areas with limited or declining groundwater resources;
  • Spills during the management of hydraulic fracturing fluids and chemicals or produced water that result in large volumes or high concentrations of chemicals reaching groundwater resources;
  • Injection of hydraulic fracturing fluids into wells with inadequate mechanical integrity, allowing gases or liquids to move to groundwater resources;
  • Injection of hydraulic fracturing fluids directly into groundwater resources;
  • Discharge of inadequately treated hydraulic fracturing wastewater to surface water resources; and
  • Disposal or storage of hydraulic fracturing wastewater in unlined pits, resulting in contamination of groundwater resources.

These are what I would call “self-evident” conclusions, which hardly needed years of scientific research to verify. For my readers, I will read through the entire 666 page report and see if I can’t tease anything new to report from it. Look for my analysis is the next few weeks.

EPA Issues Review of Well Operator Files: Hydraulic Fracturing Operations

On August 1, 2016, EPA issued the final research report: Review of Well Operator Files: Hydraulic Fracturing Operations (EPA/601/R14/004, July 2016). This new report examines the records of nine companies conducting hydraulic fracturing at 23,200 oil and gas wells between September 2009 and September 2010. Interestingly some of these oil and gas wells were hydraulically fractured more than once during that time span, so there were actually 28,500 occurrences of hydraulic fracturing over the one year period that EPA examined. EPA calls these occurrences: hydraulic fracturing jobs.

 

To understand the report, one must know a little bit about how oil and gas wells are constructed. After a well is drilled, a metal pipe called a casing is set into the hole created by the drill. Usually the space between the outside of the casing and the rock is filled with cement. The space between the casing and the rock is called the annular space. The annular space can be cemented for the entire length of the well or it can be cemented just in certain sections. Cement helps to protect groundwater by preventing fluids from moving up the annular space and into rocks containing protected groundwater resources. Cementing is also used to prevent gas and other fluids from moving up the annular space and causing a ruckus at the surface. Sometimes a device known as a packer is also used to seal off sections of rock containing groundwater. Packers are mechanical devises which look a lot like plungers. Before wells are hydraulically fractured, the casing next to the rock formation containing the oil and gas is perforated so the pressurized water and chemicals can enter the rock at great force and produce fractures. Occasionally however, what are called “temporary casing strings” are used for the hydraulic fracturing process instead of the permanent cemented casing. These casings really are temporary and are removed after the process is completed.

 

Of the hydraulic fracturing jobs EPA examined, 90 % had cemented casing, 5 % had packers, and 5 % had open holes. In 10 % of the jobs temporary casing strings were used. Temporary casing strings were used both with the open holes and in some wells with permanent cemented casings. Generally when a temporary casing string was used in an oil and gas well with a cemented permanent casing, the wells were undergoing recompletions or refractures. Recompletions are where an existing well which was previously hydrofractured at one depth is later refractured at another depth. Refractures are where the same depth in the well is being refractured. Recompletions and refractures are most often done in older wells (EPA gives a median age of 6 years for the wells examined in their report.)

 

This is all important knowledge, because how wells performed during hydraulic fracturing is dependent on the integrity of the safeguards like concrete, casing and packers put into place to prevent movement of fluid into protected groundwater zones. EPA calls the success of these safeguards – “mechanical integrity.” To determine the mechanical integrity of the 23,200 wells, EPA examined four different tests conducted by companies during the hydraulic fracturing process. The first type of test is a casing pressure test. This kind of test is conducted before the well is hydraulically fractured and is used to determine the mechanical integrity of the well. Basically pressures to be used in the hydraulic fracture process are applied to the well. If the well maintains its integrity then there should be no mechanical failure of the safeguards protecting groundwater during the actual hydraulic fracturing.

 

The second type of test is surface treating pressure monitoring. This is simply the monitoring of the pressure being applied to the well during hydraulic fracturing. If there is a sudden drop in surface treating pressure during hydraulic fracturing, it is likely one or more of the safeguards have failed.

 

The third test is annular pressure monitoring, which is simply the monitoring of pressure in the annular space during hydraulic fracturing. Changes in the pressure in the annular space should tell you if the wells safeguards have been breached.

 

And the fourth test is microsesimic monitoring, where monitors are set out to determine the extent of fracture growth in the subsurface. Microseismic monitoring can tell you if vertical fractures are long enough to intersect groundwater zones above the hydraulically fractured rock area.

 

As you can imagine, it was kind of hit or miss as to what sort of testing had been conducted at the wells. Two or more tests were conducted at 76 % of the 28,500 hydraulic fracturing jobs EPA examined. Casing pressure tests were conducted at 57 % of jobs, surface treating pressure monitoring at 97 %, annular pressure monitoring at 53 %, and microseismic at 0.5 %. So other than measuring surface treating pressure during the actual hydraulic fracturing process, there is simply not a lot of data being collected. In fact the annular pressure tests were so frequently insufficient; EPA opted not to even use the data for analysis. So we’re down to 3 tests now and one of them, the microseismic test, has very little data.

 

EPA relied mostly on the other two tests (casing pressure and surface treating pressure) and notes taken by companies kept during the hydrofracturing process to determine mechanical integrity of wells that had been hydraulically fractured. Reported in company notes were failure of the mechanical integrity of the well in 3 % of all the hydraulic fracturing jobs. Failures occurred in new wells (2%) and in recompletions and refractures (6%). EPA found that jobs using temporary casing strings had the largest number of failures. In fact 20 % of the jobs using temporary casing strings had some sort of failure. Failure generally meaning one or more of the safeguards failed. Now many wells of course don’t have just one casing, sometimes there are multiple casings set in the well, so failure doesn’t mean fracturing fluid escaped into a groundwater zone. In fact, EPA noted in their report that once failure was noted by a company, the job was stopped and the cause of the safeguard failure was addressed. But in 0.5 % of the hydraulic fracturing jobs, information in the companies’ files indicated fracturing fluid moved into the annular space at the location of groundwater.

 

EPA did learn something from the microseismic monitoring they examined. Among the 100 jobs where it was done, EPA used the data to estimate the vertical extent of fractures. It showed vertical fractures grew anywhere from 380 to 1340 feet. EPA could find no case where vertical fractures extended into the groundwater zone in the areas being hydraulically fractured. In fact EPA estimated fractures reached no closer than 5000 feet from any groundwater source.

 

What did EPA learn from the casing pressure tests and surface treating pressure monitoring?  In 48 % of the hydraulic fracturing jobs where casing pressure tests were conducted, the pressures recorded during the actual hydraulic fracturing process exceeded the casing pressure tests by 1000 to 1999 pounds per square inch.

 

Pretty interesting information. The most interesting fact to me is there were 142 hydraulic fracturing jobs out of the 28,500 jobs examined, where the mechanical safeguards in the well failed and hydraulic fracturing fluid entered groundwater zones. Is a 0.5 % failure rate of wells during hydraulic fracturing an acceptable failure rate? This will have to be determined by state governments who oversee oil and gas operations in their states and the citizens who live in the vicinity of oil and gas fields.

 

On August 11, 2016, the Environmental Protection Agency’s (EPA) Science Advisory Board issued their Peer Review of the EPA Draft Report on Impacts of Hydraulic Fracturing on Drinking Water. The peer review contains the Science Advisory Boards’ official comments on the EPA Draft Report. EPA announced it will use the Science Advisory Boards’ final peer review comments, other scientific literature completed since the release of the EPA draft, and public comments to complete their final report within the next few months.

Update on EPA’s Science Advisory Board Peer Review of the Draft Report on Impacts of Hydraulic Fracturing on Drinking Water

As regular readers of the Waterblogger know, the Environmental Protection Agency’s (EPA) Science Advisory Board (SAB) is busy finalizing its peer review of the agency’s draft report: “Assessment of the Potential Impacts of Hydraulic Fracturing for Oil and Gas on Drinking Water Resources.”  If you haven’t been reading Waterblogger regularly the original article is below.

Science Advisory Board Peer Review of the EPA’s Draft Report on Impacts of Hydraulic Fracturing on Drinking Water

I’ve been following the SAB’s discussions through the public teleconferences. The first was on February 1, 2016. Consequently a second draft of their 133 page peer review report was issued on February 16, 2016. A second conference call was held on March 7, 2016. These are long conference calls. The March 7 conference call went some seven hours. The first two hours were dedicated to registered speakers. Anybody can be a registered speaker. All you have to do is apply. You get three minutes. Very little scientific work is presented by these speakers. Most speakers are representatives of environmental or industrial trade groups touting their positions. Sometimes there are company reps and consultants who have additional reports or data for submission which help inform the peer review. And then there are a whole lot of very angry and emotional people from areas where oil and gas development has occurred who think they are being poisoned by hydraulic fracturing.

 

It was nice to see the Science Advisory Board’s respectful questions to the registered speakers and their acknowledgement of people’s concerns about the impacts of hydraulic fracturing on their drinking water. It was less nice to listen to the SAB members parse the words in EPA’s report. Their biggest concern is over the meaning of EPA’s finding: “we did not find evidence that these mechanisms have led to widespread, systemic impacts on drinking water resources in the United States.” The “mechanisms” being referenced are the whole industrial process involved in hydraulic fracturing from storage and mixing of chemicals on-site, to well construction, waste disposal, and the actual injection of hydraulic fracturing fluids which breaks subsurface rock in order to get better flow of oil and gas. An SAB member actually read out loud the definition of the words “systematic” and “widespread” used in EPA’s finding. This sentence in the report has been very controversial and was seized upon by both industry and environmental groups to support an agenda or detract from the validity of the report. So this SAB decided to make it a center of controversy too.

 

In the SAB’s peer review comments, they asked EPA to support their finding through scientific evidence contained within their report on hydraulic fracturing.  However, there was a dissenting opinion to the peer review comment by one of the SAB members who stated in writing:

 

“The conclusion by the EPA in the June 2015 draft Assessment report stating “We did not find evidence that hydraulic fracturing mechanisms have led to widespread, systemic impacts on drinking water resources in the United States” is accurate, clear, concise, unambiguous, and supportable with the facts EPA has reviewed.”

 

I would wholly agree with the dissenter. As the conference call laboriously progressed, it became clear some of the SAB members had also come to the same conclusion. The EPA didn’t say there were no cases of impacts on drinking water from hydraulic fracturing. The EPA just said based on their analysis of available data, impacts on drinking water as a result of hydraulic fracturing were not widespread or a regular occurrence. If you read further in EPA’s report, they state there are localized cases of drinking water contamination after hydrofracturing has occurred in an area. These cases have tended to be in areas where there were spills, poor cementing of casing, or poor waste disposal practices. EPA further states in their report that there are many existing mechanisms which could cause contamination of groundwater during hydraulic fracturing:

 

“we conclude there are above and below ground mechanisms by which hydraulic fracturing activities have the potential to impact drinking water resources. These mechanisms include water withdrawals in times of, or in areas with, low water availability; spills of hydraulic fracturing fluids and produced water; fracturing directly into underground drinking water resources; below ground migration of liquids and gases; and inadequate treatment and discharge of wastewater.”

 

I hope the SAB can come to some conclusions and finish their review comments as the result of the call. The EPA process allows for dissenting opinions and they are generally included in Appendixes to an SAB’s review. Further discussions will just continue to delay a final report from EPA on the impact of hydraulic fracturing to drinking water sources.

 

It is not unusual to have differing views of what conclusions can be reached based on data from scientific research. Generally such differing views are a result of uncertainty in the data or a poor presentation of the research results. The latter case seems to be what is driving this SAB’s elaborate discussions involving the very meaning of words. It’s time for this SAB to wrap it up and send their peer review forward.

Science Advisory Board Peer Review of the EPA’s Draft Report on Impacts of Hydraulic Fracturing on Drinking Water

I was elated when I got the notice that the Environmental Protection Agency’s (EPA) Science Advisory Board had finished the peer review of the agency’s draft report: “Assessment of the Potential Impacts of Hydraulic Fracturing for Oil and Gas on Drinking Water Resources.” I thought at long last there will be a final report issued. My elation turned to dismay after reading the 133 page peer review. Of course EPA asked for it. EPA asked the Science Advisory Board to look at how complete and accurate each chapter in their report was, to determine if information in each chapter supported the conclusions, to evaluate what other conclusions might be drawn from the material presented in a chapter, and to provide additional background, information, and research gaps.

 

The Science Advisory Board’s comments were comprehensive. So much so that I now think it unlikely we will get a completed report from EPA in a reasonable timeframe. For those of you who are unfamiliar with what a Science Advisory Board is, let me make a short explanation. EPA’s Science Advisory Boards are external review teams made up of senior scientists from universities, corporations, trade groups, state agencies, and consultants. The members of the team are usually some of the foremost experts in their fields. In this case most of the board members are academics. Their comments are very detailed and charge EPA with producing a lot of additional analysis and examination of different data sources. Many of the comments will require EPA to undertake significant new work. It’s difficult to say how long such additional new work might take.

 

I was so alarmed by the prospect of waiting another five years; I sent comments to be part of the docket. After all, this report was begun sometime in 2010. It is now 2016. Companies are continuing to use hydraulic fracturing techniques but there is still no comprehensive report on what impacts, if any, there might be to drinking water in areas where hydraulic fracturing is taking place. If you have been reading this blog’s posts on EPA’s “retrospective” studies of areas where there have been concerns about groundwater contamination, you know there are substantial indications in a few cases that there has been contamination of groundwater resources from stray gas and hydrofracture chemicals after hydraulic fracturing has taken place. These cases have generally been related to blowouts accompanied by releases of fracturing fluid to the surface, poor cement bonding that allowed natural gas to travel up the gas well, or poor disposal locations and practices for waste. Certainly there should be at least some sort of interim report on status to date if the peer review comments are completely accepted as is.

 

Read my comments to the Science Advisory Board below.

Comments in Response to Request of EPA’s Science Advisory Board on the Peer Review of EPA’s Draft “Assessment of the Potential Impacts of Hydraulic Fracturing for Oil and Gas on Drinking Water Resources” (May 2015, External Review Draft, EPA/600/R-15/047

 

Thank you for your service on the Science Advisory Board (SAB) Hydraulic Fracturing Research Advisory Panel. I have three comments I would like to share with the Science Advisory Board in regard to comments made by the SAB on the EPA’s Draft “Assessment of the Potential Impacts of Hydraulic Fracturing for Oil and Gas on Drinking Water Resources.” The first two are of a technical nature and the second is in regard to the overall extent of comments and length of time which may be needed for EPA to address all SAB comments.

 

(1) My first comment is in regard to the SAB’s review of Chapter 4 of the EPA report covering “Water Acquisition.” I will paraphrase the SAB comment: water acquisition is a localized issue as to its impacts on groundwater and surface water resources. The SAB comments also state there are important gaps and uncertainties in publicly available information on sources and quantities of water used in hydraulic fracturing. The SAB goes on to recommend that EPA examine well completion reports, permit applications and water management plans to assess water usage for hydraulic fracturing. I have followed the water acquisition issue for many years and it seems to be of greatest concern to western state water managers. Most of these water managers are responsible for allocation of water resources within their states. Many may have a compilation of water usage data within the state engineer’s office and because of past expressed concerns may have collected data on water usage for hydraulic fracturing. An assessment of well completion reports and permit applications sounds like an extensive effort and since indeed water acquisition impacts are localized a reconnaissance for state data sources would be more expedient.

 

(2) My second comment is in regard to the SAB’s review of Chapter 6 of the draft EPA report. Page 54 states: “Modeling results do not represent actual sites or all combinations of stresses, gradients, rock properties, typical geology and heterogeneity. Include a discussion on the importance of understanding regional geology of an area prior to embarking on installing a hydraulic fracturing well.” I was disappointed, after reading the EPA’s draft report, in the lack of incorporation of information from the retrospective case studies. One of the main points I took away from the retrospective studies was the lack of characterization of the local geology, hydrogeology and water quality prior to hydraulic fracturing. In their retrospective studies, EPA was in some cases relying on water quality data from the 1970s. It seemed obvious from the retrospective case studies that any contamination of drinking water resources, whether from degraded hydraulic fracturing chemicals or stray natural gas and whether from a blow-out or from poorly constructed wells (or even from natural conditions), is dependent on local geology and hydrologic conditions such as hydraulic gradient, fracture flow, etc. An assessment of these local characteristics could inform what protective construction needs are in advance of drilling a well or disposing of waste. It would also inform response to large spills by defining depth to groundwater, hydraulic gradients, and migration pathways for contaminated groundwater.  The SAB should make this a stronger recommendation to EPA. I recall one of the goals, EPA set out in producing their report, was to provide information to help regulators. Site and local characterization of the geology and hydrogeology before hydraulic fracturing could be incorporated into the regulatory permit process in areas where it is not now required.

 

(3) My final comment is in regard to the scope of the SAB comments. The SAB has produced a very comprehensive and well informed set of comments. However I would urge you to look at the necessity of some of the data needs you are recommending to EPA for inclusion in the current report. Some of the recommendations could take extensive extra effort. We are already five years from the inception of EPA’s report. In fact, many of your recommendations are to update information in the report. Just updating information to 2016 could take significant efforts. I am worried about the extended time period for EPA to produce a report. Could the efforts take so long that once again in two years we are asking EPA to update the report with new information. I’m afraid it could be a never ending cycle. I think the SAB and the EPA need to assess the time needs for each one of the comments to be incorporated into the report and determine if the information need is vital to the current report or could be included in a follow-on report.         

 

Thank you for the opportunity to comment.

New Assessment of EPA’s Draft Report on Impacts of Hydraulic Fracturing to Drinking Water

Finally EPA’s Science Advisory Board has issued an assessment of the agency’s draft report: “Assessment of the Potential Impacts of Hydraulic Fracturing for Oil and Gas on Drinking Water Resources.” This is the Science Advisory Board’s peer review of the June 2015 report written by EPA’s Office of Research and Development. The EPA report on impacts of hydraulic fracturing on drinking water has been undergoing public review and comment as well as the Science Advisory Board review. So here we are six months later and EPA’s Science Advisory Board is going to hold a Public Teleconference on February 1, 2016 to discuss their assessment of the draft report. Comments are due on the Science Advisory Board’s assessment by January 21, 2016. There are already 300 comments just on their assessment. Most of which read like: “Hey you fatheads at EPA, we really don’t like hydraulic fracturing and we don’t care that your report says hydraulic fracturing hasn’t caused widespread contamination of drinking water – just stop it.” It looks like the Science Advisory Board’s report is only a small one, just 133 pages. At least we are coming somewhere near a conclusion (I hope) on the final report.  I’ll scope out the Science Advisory Board’s report and teleconference and let you know what the next steps are to finalizing EPA’s Assessment Report.

Impacts to Groundwater from Blowout during Hydraulic Fracturing in Dunn County North Dakota

In September of 2010 there was a blowout during early stage hydraulic fracturing of an oil and gas well in Dunn County, North Dakota just a couple of miles from the town of Killdeer. You’ve seen the result of a blowout. Think Gulf of Mexico, British Petroleum, Deep Water Horizon. Strangely the Deep Water Horizon blowout also occurred in 2010. You probably saw those pictures on television of oil flowing from the borehole at the bottom of the gulf. It really made a mess. The reason it made such a mess was the spill was difficult to contain because of the depth of water. When a blowout occurs on land, it is easier to contain but it makes a mess as well. All sorts of hydraulic fluid, oil and formation water come barreling up the borehole and spill all over the ground. If the casing in the borehole is ruptured as it was in this blowout, the fluids are also ejected into other formations, including possibly groundwater aquifers. In Dunn County the blowout spewed up some 90,000 to 100,000 gallons of fluid depending on the press you read. There are no reports of how much might have been lost in the subsurface. The blowout was contained and the North Dakota environmental regulators quickly had the situation at the surface cleaned up and monitoring wells installed in the groundwater aquifer.

 

The Environmental Protection Agency (EPA) chose this blowout site near Killdeer, North Dakota to conduct a “retrospective” study on whether there were impacts to the groundwater from hydraulic fracturing. If you are a regular reader of this blog, you know I am reviewing EPA “retrospective” studies. This is the fourth report I have reviewed and it is titled: “Retrospective Case Study in Killdeer, North Dakota: Study of the Potential Impacts of Hydraulic Fracturing on Drinking Water Resources.” EPA calls these retrospective studies because they are being done after the contamination has occurred without the type of previous groundwater quality characterization and hydrologic study that a scientist would like to have in order to make a solid determination of how groundwater contamination occurred. However these types of studies are done all the time at the EPA when they seek to determine contamination from industrial sites, so they do have a lot of experience and some good tools to use in making their determinations. But with a limited data set, scientists can only go so far in determining how the contamination got to a well.

 

A lot of people probably don’t think about North Dakota much. When they do think of it, they think it is cold and snowy and very flat. They do not load up the motor home and head to North Dakota on summer vacation. But the area around Killdeer is really pretty. It has your typical grasslands of course, but it has badlands as well. There are a number of mesas in the area which they call mountains and just west of the town of Killdeer are the Little Missouri National Grasslands and the Teddy Roosevelt National Park. Set among this landscape is one of the largest oil and gas booms going on in the country.

 

I have actually been to Killdeer, North Dakota. Not many people have. It is a very small town in a lightly populated county. I think EPA’s report said there were about 4000 people in the whole county. I worked at one time down the road in Dickinson, North Dakota. There are a number of towns like Killdeer in the area – small, rural and isolated. Oil and gas production in the area has increased so greatly now that it is the chief industry in the area. I visited long before the ramp up in the recent oil and gas boom. At the time there were not a lot of strangers who visited Killdeer. I stopped in one day at the grocery store to pick up some snacks and a drink after a long day in the field. Everybody in the grocery store turned around to look at me when I walked into the store. Obviously this was a town where everybody knew everybody else. When I got to the checkout counter, the clerk asked me even before she rang me up: “Who are you?” I had to spend ten minutes explaining myself and my presence in town. I can guarantee you it is not like that now. With the exploitation of the Bakken Shale in North Dakota, this previously isolated rural area has changed forever. You read about the expansion of oil and gas in North Dakota in the paper: not enough workers, man-camps because there’s no housing, fast food workers getting paid New York City wages, crime because high-paying jobs attract all kinds of people including criminals. North Dakota is the United State’s second largest producer of oil and gas. Crazy huh?

 

This area of the country has been producing oil and gas since the 1920’s and development in Dunn County began sometime in the 1950’s. The whole area is part of the famed Williston Basin, which consist of thousands of feet of sedimentary rock. Groundwater is the principal source of drinking water in Dunn County and is found in the glacial tills and glacial outwash. This aquifer is called the Killdeer aquifer and can be some 200 feet thick in areas. So no matter how cold it is in North Dakota today, at one time it was even colder with thick continental glaciers the main feature on the landscape.  It is only about 20 to 30 feet to groundwater from the surface. The water is kind of hard and is generally a sodium bicarbonate or sodium sulfate type water. No matter how untasty the water is though, there’s a lot worse in the area from the underlying rock formations. The first time I went to a restaurant in one of the little towns west of Dickinson, North Dakota, the waitress brought a pitcher to the table filled with a brown liquid. I thought it was coffee, but my co-workers quickly told me it was water. A lot of the water at the time came from fractured lignite in the area. Lignite’s are kind of like underperforming coal. It’s one step up from peat. It burns but not well. Underlying the good glacial groundwater in Dunn County is just such a rock formation called the Sentinel Butte.

 

 

The nine monitoring wells that were installed after the blowout were mostly drilled into the Killdeer aquifer except for one, where EPA spying lignite in the drill log decided the well was drilled into the Sentinel Butte formation. EPA therefore only sampled and analyzed the 8 other monitoring wells. Two of the monitoring wells were upgradient of the oil and gas well that had the blowout. I need to explain what groundwater gradient is here. Scientists call it hydraulic gradient. Simply put it describes the direction of groundwater flow (yes groundwater flows). Mostly groundwater flows along the path of least resistance or pressure. The direction groundwater flows is called downgradient. Groundwater aquifers that are like the Killdeer are composed of sand, silt and gravel. The groundwater is actually in the pore spaces between the sand. The Killdeer aquifer is pretty horizontal lying with a slight southern tilt, which is the direction where groundwater is flowing. The Killdeer is what is called an unconfined aquifer, meaning it doesn’t have a layer of non-permeable rock above it creating a lot of pressure on it. The hydraulic gradient of the Killdeer is very low and the flow of water is very slow. EPA’s report cited references to movement of a foot a year.  Groundwater is moving away from the upgradient wells, which means samples from those wells will have uncontaminated groundwater. These samples can then be compared to samples from wells downgradient from the blowout, which is where the water is flowing to.

 

EPA conducted three rounds of sampling of the monitoring wells as well as a number of local domestic, municipal and supply wells in the area. The sampling occurred between July 2011 and October 2012. EPA recognized right away that two of the downgradient wells were producing anomalous results compared to the other wells they were sampling. They showed statistically significant water quality differences not only with the other wells in the area being sampled but with historical groundwater data as well. Chloride, calcium, magnesium, sodium and strontium were all much higher in the water from these two monitoring wells. EPA suspected from these analyses that brine had intruded into these two wells. EPA then applied standard analysis of the ratios of a number of these water quality parameters to determine from where the brine might have come. Interestingly enough, EPA found that the brine in the two monitoring wells matched the brine signature from the formation overlying the Bakken Shale. EPA’s curiosity on this point led them to look at the scientific literature on hydraulic fracturing of the Bakken Shale. EPA found out that hydraulic fracturing in the Bakken often produces what is called in the industry: “out of zone fracturing”. In other words, the fractures that are created in the Bakken Shale to get the oil and gas out of the rock actually extend into another formation; in this case the rock formation on top of the Bakken. So EPA seems to be implying that when the blowout occurred, brine from the rock overlying the Bakken Shale must have come up the borehole. I was a little confused about why brine from the Bakken didn’t also come up the borehole, but hey this is what EPA came up with, not me.

EPA also analyzed the monitoring wells for constituents found in hydrofracture fluids. For the first time in all of the EPA “retrospective” reports I have reviewed, they actually found a chemical they could link back to hydrofracture fluid. It is called TBA which stands for tert-butyl alcohol. TBA is not actually used in hydrofracturing fluid. It is what is called a degradation product. This means another more complicated organic chemical underwent a chemical reaction and became TBA. According to EPA, there are several chemicals used in hydrofracture that degrade into TBA. The one that was used in the well that had the blowout was tert-butyl hydroperoxide. The TBA was found (surprise, surprise) in the two monitoring wells where the brine intrusion was noted. The presence of TBA brought EPA to the conclusion that groundwater was contaminated in the vicinity of the well with the blowout; the very near vicinity. According to EPA, the monitoring wells were installed 20 feet from the well with the blowout. Thank goodness the groundwater moves so slowly in the area and no one’s drinking water wells were contaminated.