Hydraulic fracturing: Difference between revisions

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<onlyinclude>'''Hydraulic fracturing''' or '''fracking''' is a drilling method that is used to extract [[natural gas]] or other [[hydrocarbon]]s that are locked tightly in rocks with poor [[porosity]] and [[permeability]].</onlyinclude> The process is fairly simple to explain: [[fluid]]s are pumped into a well that is drilled into a formation in order to fracture the rock that holds the [[fossil fuel]]. This introduces cracks and fissures into the rocks, providing places that allow [[fuel]] [[resource]]s to be extracted more simply. This makes deposits that were previously too expensive to extract more economically viable.<ref name=whatis>What is Fracking. (July 2, 2015). ''What is Fracking?'' [Online]. Available: http://www.what-is-fracking.com/what-is-hydraulic-fracturing/#</ref>
<onlyinclude>'''Hydraulic fracturing,''' or '''fracking,''' is a drilling technique used to extract [[natural gas]] and other [[hydrocarbon]]s trapped in low-[[permeability]], low-[[porosity]] rock formations.</onlyinclude> The process is straightforward: [[fluid]]s are pumped under high pressure into a rock formation to fracture the rock containing the hydrocarbons. This creates cracks and factures in the rock, allowing hydrocarbons to flow more easily into the well for extraction. As a result, hydrocarbons deposits that were previously uneconomical to develop became economically viable<ref name=":0">U.S. Environmental Protection Agency. (October 1, 2025). ''Questions and Answers about EPA's Hydraulic Fracturing Drinking Water Assessment'' [Online]. Available: https://www.epa.gov/hfstudy/questions-and-answers-about-epas-hydraulic-fracturing-drinking-water-assessment</ref> (this increases the [[reserve]]).


[[File:EIA_World_Shale_Gas_Map.jpg|400px|framed|center|Figure 1. A map of shale gas and shale oil deposits. Hydraulic fracturing can aid in the extraction of the fuels from these deposits.<ref>Wikimedia Commons. (June 16, 2015). ''EIA World Shale Deposits'' [Online]. Available: https://commons.wikimedia.org/wiki/File:EIA_World_Shale_Gas_Map.jpg#/media/File:EIA_World_Shale_Gas_Map.jpg</ref>]]
[[File:EIA_World_Shale_Gas_Map.jpg|400px|framed|center|Figure 1. A map of shale gas and shale oil deposits. Hydraulic fracturing can aid in the extraction of the fuels from these deposits.<ref>Wikimedia Commons. (June 16, 2015). ''EIA World Shale Deposits'' [Online]. Available: https://commons.wikimedia.org/wiki/File:EIA_World_Shale_Gas_Map.jpg#/media/File:EIA_World_Shale_Gas_Map.jpg</ref>]]


==Fracturing Process==
==Fracturing Process==
Fracturing is used to simplify the extraction of [[oil]] and natural gas in porous and permeable rock by stimulating the flow of the fluid.<ref name=gov>Alberta Energy Regulator. (July 2, 2015). ''Hydraulic Fracturing'' [Online]. Available: https://www.aer.ca/about-aer/spotlight-on/unconventional-regulatory-framework/what-is-hydraulic-fracturing</ref> Since [[unconventional resource|unconventional]] oil and natural gas is often trapped inside porous rocks with low permeability, such as [[shale]], pathways must be manually created for the fluids to flow through the rock and into the well.<ref name=gov/> Before the widespread use of hydraulic fracturing, drilling companies would drill several wells into the rock in an attempt to free the oil and gas trapped within it. However, this method is not efficient as the wells are still not able to cover a large volume of the rock. Hydraulic fracturing is a solution to this problem, and is done after the drilling process.  
Hydraulic fracturing is used to enhance the extraction of [[oil]] and natural gas by stimulating the flow of hydrocarbons through porous and permeable rock formations.<ref name=gov>Alberta Energy Regulator. (July 2, 2015). ''Hydraulic Fracturing'' [Online]. Available: https://www.aer.ca/about-aer/spotlight-on/unconventional-regulatory-framework/what-is-hydraulic-fracturing</ref> Since [[unconventional resource|unconventional]] oil and natural gas are often trapped within low-permeability rock formations, such as [[shale]], pathways must be created to allow the hydrocarbons to flow through the rock and into the well.<ref name=gov/> Before the widespread use of hydraulic fracturing, drilling companies often drilled multiple wells into a formation in an attempt to increase production from oil and gas reservoirs. However, this approach is relatively inefficient because each well can only access a limited volume of the reservoir. Hydraulic fracturing addresses this limitation and is typically performed after the well has been drilled.


[[File:fracturing2.jpg|400px|framed|center|Figure 2. Diagram of a fractured well.<ref>Wikimedia Commons. (July 2, 2015). ''Illustration of hydraulic fracturing and related activities'' [Online]. Available: https://commons.wikimedia.org/wiki/File:Hydraulic_Fracturing-Related_Activities.jpg#/media/File:Hydraulic_Fracturing-Related_Activities.jpg</ref>]]
[[File:fracturing2.jpg|400px|framed|center|Figure 2. Diagram of a fractured well.<ref>Wikimedia Commons. (July 2, 2015). ''Illustration of hydraulic fracturing and related activities'' [Online]. Available: https://commons.wikimedia.org/wiki/File:Hydraulic_Fracturing-Related_Activities.jpg#/media/File:Hydraulic_Fracturing-Related_Activities.jpg</ref>]]
   
   
To fracture the well, a fluid known as '''fracking fluid''' is pumped into a [[wellbore]], creating enough [[pressure]] to fracture the rock. Because fracking is a process used for wells that have already been drilled, it can be used from right after the well has been drilled, or to revitalize an old well. Generally, these wells are drilled directionally or [[horizontal well|horizontally]] to further increase the surface area of the rock containing the oil or gas that the wellbore touches. This fluid is mostly [[water]] containing [[chemical]]s and sand, although the specific type and quantity of these chemicals can vary.<ref>FracFocus. (July 2, 2015). ''Hydraulic Fracturing'' [Online]. Available: https://fracfocus.org/hydraulic-fracturing-how-it-works/hydraulic-fracturing-process</ref> The sand in the fluid is known as a "proppant" that holds the cracks that are formed open so the oil or gas can escape.<ref name=gov/>
To fracture the rock, a fluid known as '''fracturing fluid''' ('''or fracking fluid''') is pumped into the [[wellbore]] at high [[pressure]], creating fractures in the surrounding rock. Because hydraulic fracturing is performed after a well has been drilled, it can be used either shortly after drilling or later to help increase production from an existing well. These wells are often drilled directionally or [[horizontal well|horizontally]] to increase the contact area between the wellbore and the oil- or gas-bearing rock formation. The fracking fluid consists of primarily [[water]] containing [[chemical]]s and sand, along with small amounts of chemical additives that vary depending on the geology and operational requirements of the well.<ref>FracFocus. (July 2, 2015). ''Hydraulic Fracturing'' [Online]. Available: https://fracfocus.org/hydraulic-fracturing-how-it-works/hydraulic-fracturing-process</ref> The sand, known as a '''proppant''', helps keep the newly created fractures open, allowing oil or natural gas to flow into the well.<ref name=gov/>


The injection of this fluid breaks a small amount of the rock that surrounds each well. This then increases the volume of rock that gas or oil can be extracted from by increasing the number of small fissures in the rock.
Injecting the fracturing fluid creates a network of small fractures in the rock surrounding the well. These fractures increase the volume of the reservoir that can contribute oil or natural gas to the well, improving production.


==Environmental Impacts==
== Environmental Impacts ==
Hydraulic fracturing is an extremely efficient process that allows for better extraction of natural gas and oil. The biggest environmental problem is the actual [[combustion]] of the natural gas, which leads to increased levels of [[carbon dioxide]] in the [[atmosphere]]. Hydraulic fracturing is one of the techniques that are allowing humans to extract more [[carbon]] from the [[cross section of the Earth|crust]] of the planet and [[climate change|change the climate]].
Hydraulic fracturing is an efficient technique that improves the extraction of natural gas and oil from low-permeability rock formations. The largest environmental impact associated with natural gas production is the [[combustion]] of gas, which releases [[carbon dioxide]] into the [[atmosphere]]. By enabling access to previously uneconomical oil and natural gas resources, hydraulic fracturing has contributed to increased fossil fuel production and the associated greenhouse gas emissions that drive [[climate change]].


In terms of resource extraction, as with any method of material extraction, there are several environmental concerns that are associated with it. Mainly, the concerns involve the amount of water required to fracture a well, along with water contamination from potentially harmful chemicals in the fracturing fluid. Some argue that seismic disruption is a potential but unproven side-effect. In addition to the negative side-effects of fracturing, there are also potential benefits. One benefit is the reduced above ground area needed to extract oil from a rock. Before fracturing began to be used, a large number of surface wells needed to be dug to access oil or gas.
As with any resource extraction method, hydraulic fracturing has several associated environmental concerns. These concerns primarily include the large volumes of water required for fracturing, the management of wastewater, and the potential for groundwater or surface water contamination if fluids are improperly handled. Hydraulic fracturing can also induce small earthquakes, although larger induced seismic events are more commonly associated with the underground disposal of wastewater from oil and gas operations.<ref>U.S. Geological Survey. (September 10, 2024). ''Does Fracking Cause Earthquakes?'' [Online]. Available: https://www.usgs.gov/faqs/does-fracking-cause-earthquakes</ref> In addition to these environmental concerns, fracking also offers several operational advantages. One advantage is that fewer well pads may be required to access a reservoir, reducing the surface footprint of oil and natural gas extraction. Before the widespread use of hydraulic fracturing and  [[horizontal drilling]], more wells were often required to access the same resource.


===Water Use===
===Water Use===
The process of hydraulic fracturing requires a significant amount of water. Some sources report that one well requires anywhere between 7 570 000 and 37 854 000 [[liter]]s (or 2 and 10 million gallons) of water.<ref name=earth>Earth Works. (July 2, 2015). ''Hydraulic Fracturing'' [Online]. Available: http://www.earthworksaction.org/issues/detail/hydraulic_fracturing_101#.VZLZiflViko</ref> Additionally, this water sometimes needs to be transported by large fleets of trucks to a drilling site, contributing to [[carbon dioxide]] [[emission]]s.
Hydraulic fracturing requires a significant amount of water. Water use varies depending on the geology and well design, but a single hydraulically fractured well may require between 7 million and 38 million [[liter|litre]]s (2 to 10 million gallons) of water.<ref>U.S. Geological Survey. (February 28, 2022). ''Does the Production of Oil and Gas from Shales Cause Earthquakes? If So, How Are the Earthquakes Related to These Operations?'' [Online]. Available: https://www.usgs.gov/faqs/does-production-oil-and-gas-shales-cause-earthquakes-if-so-how-are-earthquakes-related-these</ref> Additionally, in some locations, the water must be transported by large fleets of trucks, contributing to [[Greenhouse gas emission|greenhouse gas]] [[emission]]s and increased traffic.


===Fracking Chemicals===
===Fracking Chemicals===
Another concern that is associated with hydraulic fracturing is the chemicals within the fracturing fluid. These chemicals can include [[radium]], [[lead]], [[uranium]], and [[mercury]], among others.<ref name=earth/> One concern is that the fluids from fracturing operations could leak out from wells to contaminate drinking water supplies. Many major fracking companies refuse to reveal the exact mixtures of chemicals they use. Those opposed to fracturing say that this is a result of the chemicals being extremely hazardous, while those in favour of fracturing say that the formulas are industry secrets and keeping the exact composition secret allows companies to maintain a competitive advantage.<ref name=fluid>FracFocus. (July 2, 2015). ''Chemical Use in Hydraulic Fracturing'' [Online]. Available: https://fracfocus.org/water-protection/drilling-usage</ref>
Another environmental concern associated with hydraulic fracturing is the use of chemicals additives in the fracturing fluid. Fracturing fluids contain a variety of chemical additives, while naturally occurring substances such as [[radium]], [[uranium]], [[lead]], and [[mercury]] may be present in the flowback and produced water that returns to the surface after hydraulic fracturing.<ref name=":0" /> One concern is that fluids from fracturing operations could contaminate groundwater or drinking water if spills occur at the surface or if wells are improperly constructed or maintained. Although many companies disclose much of the composition of their fracturing fluids, some chemical formulations remain proprietary. Critics argue that proprietary chemical formulations can limit transparency regarding potential environmental and health risks, while industry representatives maintain that protecting specific formulations preserves trade secrets and competitive advantages.<ref name=fluid>FracFocus. (July 2, 2015). ''Chemical Use in Hydraulic Fracturing'' [Online]. Available: https://fracfocus.org/water-protection/drilling-usage</ref>


===Drinking Water Contamination===
===Drinking Water Contamination===
Another issue related to water and hydraulic fracturing is the risk of contamination. Some pictures and videos show homeowners able to light tap water on fire because of the presence of natural gas in the water table where the water is extracted from. When the tap is turned on, gas is released along with it. Although natural gas is present in water tables before mining, there are rare cases where natural gas in tap water is a result of fracturing.<ref>S.Osborn,A.Vengosh,N.Warner, R.Jackson. (July 2, 2015). ''Methane contamination of drinking water accompanying gas-well drilling and hydraulic fracturing" [Online]. Available: http://www.pnas.org/content/108/20/8172.full.pdf</ref> When this occurs, it is a result of uneconomic gas formations accidentally being tapped. Gas is able to leak from these formations before they are properly cased and the gas is able to enter groundwater. As well, if surveying is not done properly a gas formation where the gas is not contained by an impermeable cap rock can be fractured, resulting in a gas release.
Another issue related with hydraulic fracturing is the potential for groundwater contamination. Images and videos have shown homeowners igniting methane that is present in water flowing from household taps. When the tap is turned on, dissolved methane can be released from the water. Although methane occurs naturally is some groundwater systems, there have been documented cases where methane contamination of drinking water has been linked to oil and gas operations, typically because of inadequate well construction or faulty well casing rather than the hydraulic fracturing process itself.<ref>S.Osborn,A.Vengosh,N.Warner, R.Jackson. (July 2, 2015). ''Methane contamination of drinking water accompanying gas-well drilling and hydraulic fracturing" [Online]. Available: http://www.pnas.org/content/108/20/8172.full.pdf</ref> In these cases, methane typically migrates because of failures in well integrity rather than from the hydraulic fractures themselves. Poorly constructed or damaged well casings and cement barriers can allow methane to migrate into surrounding groundwater. Proper site characterization and well design help minimize the risk of unintended migration of fluids or gases during oil and gas development.


Overall, proper [[well casing]] reduces the chance of water contamination from leaking gas, chemicals from fracking fluid, or excess hydrocarbons from entering groundwater supplies. However, chemicals can leach into groundwater from waste water holding ponds.
Overall, proper [[well casing]] construction are critical for reducing the risk of methane, hydrocarbons, and hydraulic fracturing fluids entering groundwater supplies. However, spills, improper wastewater storage, or leaks from wastewater holding ponds may also pose risks to groundwater and surface water quality.<ref name=":0" />


===Seismic Disruption===
=== Seismic Disruption ===
Some argue that hydraulic fracturing causes an increase in seismic activity. While there have been recorded instances of this happening, only one confirmed incident was a result of hydraulic fracturing. Most commonly, seismic disruption is caused by the disposal of waste water and the events caused are known as "induced seismic events".<ref>Joe Hoffman. (July 2, 2015). ''Potential Health and Environmental Effects of Hydrofracking'' [Online]. Available: http://serc.carleton.edu/NAGTWorkshops/health/case_studies/hydrofracking_w.html</ref> To dispose of non-potable waste water, companies inject it into porous and permeable rock formations underground. This creates a fluid pressure differential, causing flow, so the water can fill up the empty space in the rock. The injection of water increases pore pressure and can “grease” faults, leading to increased seismic activity. It is important to note that this happens at low pressures, not the high pressures of fracking.
Hydraulic fracturing and wastewater disposal have both been associated with induced seismic activity. Although hydraulic fracturing has been linked to some induced earthquakes, most larger induced seismic events are associated with the underground disposal of wastewater rather than the hydraulic fracturing process itself.<ref name=":1">U.S. Environmental Protection Agency. (October 1, 2025). ''Questions and Answers about EPA's Hydraulic Fracturing Drinking Water Assessment'' [Online]. Available: https://www.epa.gov/hfstudy/questions-and-answers-about-epas-hydraulic-fracturing-drinking-water-assessment</ref> Most induced seismic events linked with oil and gas operations are related to the underground disposal of wastewater into deep injection wells.<ref name=":1" /> To dispose of non-potable wastewater, companies may inject it into deep, porous, and permeable rock formations underground. Injecting wastewater increases fluid pressure within the rock formation, allowing the water to move through interconnected pore spaces. The increased pore pressure can reduce friction along existing faults, potentially triggering earthquakes if the faults are already close to failure. Wastewater disposal typically occurs at lower pressures but over much longer periods and with much larger fluid volumes than hydraulic fracturing, making it more likely to induce felt earthquakes.
 
== For Further Reading ==
 
* [[Hydrocarbon]]
* [[Shale]]
* [[Wellbore]]
* [[Horizontal drilling]]
* Or explore a [[Special:Random|random page]]


==References==
==References==
{{reflist}}
{{reflist}}
[[Category:Uploaded]]
[[Category:Uploaded]]

Revision as of 21:57, 8 July 2026

Hydraulic fracturing, or fracking, is a drilling technique used to extract natural gas and other hydrocarbons trapped in low-permeability, low-porosity rock formations. The process is straightforward: fluids are pumped under high pressure into a rock formation to fracture the rock containing the hydrocarbons. This creates cracks and factures in the rock, allowing hydrocarbons to flow more easily into the well for extraction. As a result, hydrocarbons deposits that were previously uneconomical to develop became economically viable[1] (this increases the reserve).

Figure 1. A map of shale gas and shale oil deposits. Hydraulic fracturing can aid in the extraction of the fuels from these deposits.[2]

Fracturing Process

Hydraulic fracturing is used to enhance the extraction of oil and natural gas by stimulating the flow of hydrocarbons through porous and permeable rock formations.[3] Since unconventional oil and natural gas are often trapped within low-permeability rock formations, such as shale, pathways must be created to allow the hydrocarbons to flow through the rock and into the well.[3] Before the widespread use of hydraulic fracturing, drilling companies often drilled multiple wells into a formation in an attempt to increase production from oil and gas reservoirs. However, this approach is relatively inefficient because each well can only access a limited volume of the reservoir. Hydraulic fracturing addresses this limitation and is typically performed after the well has been drilled.

Figure 2. Diagram of a fractured well.[4]

To fracture the rock, a fluid known as fracturing fluid (or fracking fluid) is pumped into the wellbore at high pressure, creating fractures in the surrounding rock. Because hydraulic fracturing is performed after a well has been drilled, it can be used either shortly after drilling or later to help increase production from an existing well. These wells are often drilled directionally or horizontally to increase the contact area between the wellbore and the oil- or gas-bearing rock formation. The fracking fluid consists of primarily water containing chemicals and sand, along with small amounts of chemical additives that vary depending on the geology and operational requirements of the well.[5] The sand, known as a proppant, helps keep the newly created fractures open, allowing oil or natural gas to flow into the well.[3]

Injecting the fracturing fluid creates a network of small fractures in the rock surrounding the well. These fractures increase the volume of the reservoir that can contribute oil or natural gas to the well, improving production.

Environmental Impacts

Hydraulic fracturing is an efficient technique that improves the extraction of natural gas and oil from low-permeability rock formations. The largest environmental impact associated with natural gas production is the combustion of gas, which releases carbon dioxide into the atmosphere. By enabling access to previously uneconomical oil and natural gas resources, hydraulic fracturing has contributed to increased fossil fuel production and the associated greenhouse gas emissions that drive climate change.

As with any resource extraction method, hydraulic fracturing has several associated environmental concerns. These concerns primarily include the large volumes of water required for fracturing, the management of wastewater, and the potential for groundwater or surface water contamination if fluids are improperly handled. Hydraulic fracturing can also induce small earthquakes, although larger induced seismic events are more commonly associated with the underground disposal of wastewater from oil and gas operations.[6] In addition to these environmental concerns, fracking also offers several operational advantages. One advantage is that fewer well pads may be required to access a reservoir, reducing the surface footprint of oil and natural gas extraction. Before the widespread use of hydraulic fracturing and horizontal drilling, more wells were often required to access the same resource.

Water Use

Hydraulic fracturing requires a significant amount of water. Water use varies depending on the geology and well design, but a single hydraulically fractured well may require between 7 million and 38 million litres (2 to 10 million gallons) of water.[7] Additionally, in some locations, the water must be transported by large fleets of trucks, contributing to greenhouse gas emissions and increased traffic.

Fracking Chemicals

Another environmental concern associated with hydraulic fracturing is the use of chemicals additives in the fracturing fluid. Fracturing fluids contain a variety of chemical additives, while naturally occurring substances such as radium, uranium, lead, and mercury may be present in the flowback and produced water that returns to the surface after hydraulic fracturing.[1] One concern is that fluids from fracturing operations could contaminate groundwater or drinking water if spills occur at the surface or if wells are improperly constructed or maintained. Although many companies disclose much of the composition of their fracturing fluids, some chemical formulations remain proprietary. Critics argue that proprietary chemical formulations can limit transparency regarding potential environmental and health risks, while industry representatives maintain that protecting specific formulations preserves trade secrets and competitive advantages.[8]

Drinking Water Contamination

Another issue related with hydraulic fracturing is the potential for groundwater contamination. Images and videos have shown homeowners igniting methane that is present in water flowing from household taps. When the tap is turned on, dissolved methane can be released from the water. Although methane occurs naturally is some groundwater systems, there have been documented cases where methane contamination of drinking water has been linked to oil and gas operations, typically because of inadequate well construction or faulty well casing rather than the hydraulic fracturing process itself.[9] In these cases, methane typically migrates because of failures in well integrity rather than from the hydraulic fractures themselves. Poorly constructed or damaged well casings and cement barriers can allow methane to migrate into surrounding groundwater. Proper site characterization and well design help minimize the risk of unintended migration of fluids or gases during oil and gas development.

Overall, proper well casing construction are critical for reducing the risk of methane, hydrocarbons, and hydraulic fracturing fluids entering groundwater supplies. However, spills, improper wastewater storage, or leaks from wastewater holding ponds may also pose risks to groundwater and surface water quality.[1]

Seismic Disruption

Hydraulic fracturing and wastewater disposal have both been associated with induced seismic activity. Although hydraulic fracturing has been linked to some induced earthquakes, most larger induced seismic events are associated with the underground disposal of wastewater rather than the hydraulic fracturing process itself.[10] Most induced seismic events linked with oil and gas operations are related to the underground disposal of wastewater into deep injection wells.[10] To dispose of non-potable wastewater, companies may inject it into deep, porous, and permeable rock formations underground. Injecting wastewater increases fluid pressure within the rock formation, allowing the water to move through interconnected pore spaces. The increased pore pressure can reduce friction along existing faults, potentially triggering earthquakes if the faults are already close to failure. Wastewater disposal typically occurs at lower pressures but over much longer periods and with much larger fluid volumes than hydraulic fracturing, making it more likely to induce felt earthquakes.

For Further Reading

References

  1. 1.0 1.1 1.2 U.S. Environmental Protection Agency. (October 1, 2025). Questions and Answers about EPA's Hydraulic Fracturing Drinking Water Assessment [Online]. Available: https://www.epa.gov/hfstudy/questions-and-answers-about-epas-hydraulic-fracturing-drinking-water-assessment
  2. Wikimedia Commons. (June 16, 2015). EIA World Shale Deposits [Online]. Available: https://commons.wikimedia.org/wiki/File:EIA_World_Shale_Gas_Map.jpg#/media/File:EIA_World_Shale_Gas_Map.jpg
  3. 3.0 3.1 3.2 Alberta Energy Regulator. (July 2, 2015). Hydraulic Fracturing [Online]. Available: https://www.aer.ca/about-aer/spotlight-on/unconventional-regulatory-framework/what-is-hydraulic-fracturing
  4. Wikimedia Commons. (July 2, 2015). Illustration of hydraulic fracturing and related activities [Online]. Available: https://commons.wikimedia.org/wiki/File:Hydraulic_Fracturing-Related_Activities.jpg#/media/File:Hydraulic_Fracturing-Related_Activities.jpg
  5. FracFocus. (July 2, 2015). Hydraulic Fracturing [Online]. Available: https://fracfocus.org/hydraulic-fracturing-how-it-works/hydraulic-fracturing-process
  6. U.S. Geological Survey. (September 10, 2024). Does Fracking Cause Earthquakes? [Online]. Available: https://www.usgs.gov/faqs/does-fracking-cause-earthquakes
  7. U.S. Geological Survey. (February 28, 2022). Does the Production of Oil and Gas from Shales Cause Earthquakes? If So, How Are the Earthquakes Related to These Operations? [Online]. Available: https://www.usgs.gov/faqs/does-production-oil-and-gas-shales-cause-earthquakes-if-so-how-are-earthquakes-related-these
  8. FracFocus. (July 2, 2015). Chemical Use in Hydraulic Fracturing [Online]. Available: https://fracfocus.org/water-protection/drilling-usage
  9. S.Osborn,A.Vengosh,N.Warner, R.Jackson. (July 2, 2015). Methane contamination of drinking water accompanying gas-well drilling and hydraulic fracturing" [Online]. Available: http://www.pnas.org/content/108/20/8172.full.pdf
  10. 10.0 10.1 U.S. Environmental Protection Agency. (October 1, 2025). Questions and Answers about EPA's Hydraulic Fracturing Drinking Water Assessment [Online]. Available: https://www.epa.gov/hfstudy/questions-and-answers-about-epas-hydraulic-fracturing-drinking-water-assessment