Showing posts with label engineering. Show all posts
Showing posts with label engineering. Show all posts

Thursday, April 12, 2007

Geothermal power for the entire U.S.

From the Energy Blog...

The following is a summary—newly posted on the Energy Blog—of claims made by MIT's Jefferson Tester and his team that studied the capacity of geothermal energy in the U.S.

  • Geothermal resources are available nationwide, although the highest-grade sites are in western states.
  • Geothermal energy using enhanced geothermal system (EGS) technology would greatly increase the fraction of the U.S. geothermal resource that could be recovered commercially.
  • The United States, generating 300 megawatts, is already the biggest producer of geothermal.
  • If geothermal is going to be anything more than a minor curiosity, it has to reach at least the level of hydro and nuclear power, or 100,000 megawatts out of 1 million—one-tenth of total capacity," he said.
  • The study found that geothermal could supply a substantial portion of the electricity the United States will need in the future, probably at competitive prices and with minimal environmental impact.
  • The process involves drilling to as deep as 30,000 feet, pumping water under pressure into fractures to break apart underground rock formations and freeing up reservoirs.
  • Seismic activity is a risk, he said. "The big challenge is to show you can do it not only in California, but also in the Midwest and ultimately on the East Coast, where you have to go deeper."
  • Among geothermal's advantages are its below-ground, out-of-sight nature, making it easier to site, and its high capacity and because, unlike solar or wind, it runs a the time. Environmental impacts are "markedly lower than conventional fossil-fuel and nuclear power plants."
  • Meeting water requirements for geothermal plants may be an issue, particularly in arid regions."
    »more »download »related

    Sunday, April 8, 2007

    Stirling engine linked to geothermal power

    From Wikipedia...
    Stirling engine

    "Some believe that the ability of the Stirling engine to convert geothermal energy to electricity and then to hydrogen may well hold the key to replacement of fossil fuels in a future hydrogen economy."

    »more »related

    Thursday, April 5, 2007

    Mining heat from the earth

    From the Christian Science Monitor...
    New techniques could expand the capabilities of geothermal power, producing 10 percent of U.S. electricity by 2050.

    "Here's one vision for easing America's energy and emissions woes: Hundreds of drilling rigs are deployed throughout the country. But they're not prospecting for oil; they're looking for underground rock hot enough to produce steam-driven electricity. The potential? Enough power to provide 10 percent of US electricity by 2050 – with near-zero emissions of greenhouse gases. That's the promise of "enhanced geothermal systems," or EGS, says a recent report by the Massachusetts Institute of Technology in Cambridge, Mass."

    »more »related

    Friday, March 30, 2007

    Tesla Turbines proposed for geothermal energy

    From American Antigravity...
    Hayes claims 55% conversion efficiency; highest in its class

    "Former Rockwell Engineer Jeff Hayes proposes that Tesla Turbines can be used to tap geothermal energy from underground salt-brine in locations all over the world. Hayes is part of the International Tesla Turbine Builders Society, and well-versed in the potential of this often-overlooked but commercially viable technology.

    Hayes comments that the Salton Sea in California contains enough geothermal energy locked in salt-brine to meet the entire electrical needs of the United States 20 times over, if only it could be harnessed electrically. That requires spinning a turbine, and only the Tesla Turbine is durable enough to undertake this challenge. Hayes focus is on the engineering challenges involved with making Tesla Turbines a practical tool, as well as the unique characteristics of this technology that allow it to outperform conventional bladed turbines."

    »more »video »related_1 »related_2 »download

    Wednesday, March 28, 2007

    Presentation: "Future of Geothermal Energy"

    The following summary points were given on March 1, 2007 as part of a slideshow presentation at the National Renewable Energy Laboratory (NREL). Advantages of enhanced geothermal systems (EGS) — power plants in 'low grade' settings where the hot rock source is deeper in the earth — are listed as follows:

    1. Large, indigenous, accessible base load power resource — 14,000,000 EJ of stored thermal energy accessible with today’s technologies. Key point — extractable amount of energy that could be recovered is not limited by resource size or availability
    2. Fits portfolio of sustainable renewable energy optionsEGS complements the existing portfolio and does not hamper the growth of solar, biomass, and wind in their most appropriate domains.
    3. Scalable and environmentally friendly — EGS plants have small foot prints and low emissions — carbon-free and their modularity makes them easily scalable from large size plants.
    4. Technically feasible — Major elements of the technology to capture and extract EGS are in place. Key remaining issue is to establish inter-well connectivity at commercial production rates — only a factor of 2 to 3 greater than current levels.
    5. Economically favorable — projections favorable for high grade areas now with a credible learning path to provide competitive energy from mid- and low-grade resources
    6. Deployment costs modest — an investment of $200-400 million over 15 years would demonstrate EGS technology at a commercial scale at several US field sites to reduce risks for private investment and enable the development of 100,000 MWe.
    7. Supporting research costs reasonable — about $40 million/yr needed for 15 years — low in comparison to what other large impact US alternative energy programs will need to have the same impact on supply.

    »more

    Friday, March 9, 2007

    Technical Papers: Engineered Geothermal Systems

    From the 2007 Stanford Workshop on Geothermal Reservoir Engineering...
    Q: Are natural hot springs necessary for geothermal power generation?

    Technical papers delivered recently at Stanford University (U.S.) reflect the latest thinking about enhanced or engineered geothermal systems, which do not require hot springs or other natural sources of hot water.

    Engineered geothermal systems—still in the early stages of development—create an artificial 'reservoir' deep in the earth by infusing hot dry rock with water to generate steam. The captured steam, in turn, drives turbines that yield commercial-grade electricity.

    Links to the conference papers are provided in the scrolling directory below.

    (1) "The Future of Geothermal Energy: An Assessment of the Energy Supply Potential of Engineered Geothermal Systems (EGS) for the United States" — Tester, Blackwell, Petty, Richards, Moore, Anderson, Livesay, Augustine, DiPippo, Nichols, Veatch, Drake, Toksoz, Baria, Batchelor & Garnish
    (2) "Cost of Electricity from Enhanced Geothermal Systems" — Sanyal, Morrow, Butler & Robertson-Tait
    (3) "Updated U.S. Geothermal Supply Characterization " — Petty & Porro
    (4) "Chemical Stimulation in Near-Wellbore Geothermal Formations: Silica Dissolution in the Presence of Calcite at High Temperature and High pH" — Rose, Xu, Kovac, Mella & Pruess
    (5) "Aquifer Thermal Energy Storage in the Fractured London Chalk. a Thermal Injection / Withdrawal Test and Its Interpretation" — Law, Nicholson & Mayo
    (6) "Estimation of Mineral Transportation in HDR Circulation Test" — Yanagisawa, Matsunaga & Sugita
    (7) "Thermal Modelling of Long Term Circulation of Multi-Well Development at the Cooper Basin Hot Fractured Rock (HFR) Project and Current Proposed Scale-Up Program" — Vörös, Weidler & Wyborn
    (8) "An Investigation of the Dixie Valley Geothermal Field, Nevada, Using Temporal Moment Analysis of Tracer Tests" — Reed
    (9) "Thermal Characteristics of the Chena Hot Springs Alaska Geothermal System" — Erkan, Holdman, Blackwell & Benoit
    (10) "Exploration and Development at Dixie Valley, Nevada: Summary of DOE Studies" — Blackwell, Smith & Richards
    (11) "Geothermal Resources at Naval Petroleum Reserve-3 (NPR-3), Wyoming" — Milliken
    (12) "Inferring Well-to-Well Connectivity Using Nonparametric Regression on Well Histories" — Horne & Szucs
    (13) "Analysis of Well Tests in Afyon Ömer-Gecek Geothermal Field, Turkey" — Onur, Cinar, Aksoy, Serpen & Satman
    (14) "Convective Dispersion in a Real Fracture" — Bauget & Fourar
    (15) "Well Path Design and Stimulation Treatments at the Geothermal Research Well GTGRSK4/05 in Groß Schönebeck" — Zimmermann, Reinicke, Blöcher, Milsch, Gehrke, Holl, Moeck, Brandt, Saadat & Huenges
    (16) "New Well Test Measurement Technique for Low Enthalpy Geothermal Wells" — Serpen & Aksoy
    (17) "Reliability of Early Modeling Studies for High-Temperature Reservoirs in Iceland and the Philippines" — Sarmiento & Björnsson
    (18) "The Use of Inflow Performance Relationships to Identify Reservoir Response During Production Tests in a Geothermal Well" — Aragón, Suárez, Moya, & Izquierdo
    (19) "Chemical Characteristics of the Coso East Flank Hydrothermal Fluids: Implications for the Location and Nature of the Heat Source" — Christenson, Kennedy, Adams, Bjornstad & Buck
    (20) "A Study on the Production and Reservoir Performance of Omer-Gecek/Afyon Geothermal Field" — Satman, Onur, Serpen & Aksoy
    (21) "Deep Heat Mining in the Austrian Alps - a Prelimenary Look on Possibilities and Limitations" — Salcher & Goetzl
    (22) "Use of Rapid Temperature Measurements at a 2-meter Depth to Augment Deeper Temperature Gradient Drilling" — Coolbaugh, Sladek, Faulds, Zehner, & Oppliger
    (23) "Geothermal Energy Development along Africa's Rift Valley (no paper)" — Echavarria
    (24) "Reservoir Pressure Drawdown and the Alum Lakes, Wairakei" — Newson & O'Sullivan
    (25) "Water Injection as a Means for Reducing Non-Condensible and Corrosive Gases in Steam Produced from Vapor-Dominated Reservoirs" — Pruess, Spycher & Kneafsey
    (26) "Geomechanical Facies Concept and the Application of Hybrid Numerical and Analytical Techniques for the Description of HTMC Coupled Transport in Fractured Systems" — McDermott, Xie, Kosakowski, Mettier, Moog & Kolditz
    (27) "Assessing Uncertainty in Future Pressure Changes Predicted by Lumped-Parameter Models: A Field Application" — Tureyen, Sarak & Onur
    (28) "Integrated Dense Array and Transect Mt Surveying at Dixie Valley Geothermal Area, Nevada; Structural Controls, Hydrothermal Alteration and Deep Fluid Sources" — Wannamaker, Doerner & Hasterok
    (29) "Streaming Potential Measured for an Intact Rock Sample at Temperatures to 200 C" — Ishido & Matsushima
    (30) "Microearthquake Survey at the Buranga Geothermal Prospect, Western Uganda" — Ochmann, Lindenfeld, Barbirye & Stadtler
    (31) "Microearthquake Moment Tensors from the Coso Geothermal Area" — Julian, Foulger & Monastero
    (32) "Net Power Capacity of Geothermal Wells Versus Reservoir Temperature - a Practical Perspective" — Sanyal, Morrow & Butler
    (33) "Experimental Measurement of Two-Phase Relative Permeability in Vertical Fractures" — Speyer, Li & Horne
    (34) "Thermodynamic Model for Predicting Interactions of Geothermal Brines with Hydrothermal Aluminum Silicate Minerals" — Moller, Christov & Weare
    (35) "Output of Thermal Energy from Mutnovsky Volcano (Kamchatka) and Thermal Feeding of Mutnovsky Hydrothermal System" — Vereina
    (36) "Tracer Tests Evaluating Hydraulic Stimulation at Deep Geothermal Reservoirs in Germany" — Ghergut, Sauter, Behrens, Licha, McDermott, Herfort, Rose, Zimmermann, Orzol, Jung, Huenges, Kolditz, Lodemann, Fischer, Wittig, Güthoff & Kühr
    (37) "Stress State at Soultz-Sous-Forêts to 5 km Depth from Wellbore Failure and Hydraulic Observations" — Valley & Evans
    (38) "Ongoing Resource Assessment of Geothermal Energy from Deep Sedimentary Basins in Texas" — Erdlac, Armour, Lee, Snyder, Sorensen, Matteucci & Horton
    (39) "Stress and Pore Pressure Distribution Around a Pressurized, Cooled Crack in Low Permeability Rock" — Ghassemi
    (40) "Geologic Setting of the Chena Hot Springs Geothermal System, Alaska " — Kolker, Newberry, Layer, Larsen & Stepp
    (41) "The Shallow Hydrothermal System of Long Valley Caldera, California" — Suemnicht, Sorey, Moore & Sullivan
    (42) "In Search for Thermal Anomalies in the Coso Geothermal Field (California) Using Remote Sensing and Field Data" — Eneva, Coolbaugh, Bjornstad & Combs
    (43) "Discovering a New Buried Geothermal Field Found Using Geological-Geophysical and Geochemical Methods Uchbash-Saphane, Kutahya Western Anatolia, Turkey" — Burçak, Sevim, Hacisalihoglu
    (44) "Updated Methods for Estimating Recovery Factors for Geothermal Resources" — Williams
    (45) "Numerical Simulation of Tracer Testing Data at the Uenotai Geothermal Field, Japan" — Nakao, Ishido & Takahashi
    (46) "Modeling and Forecast of the Exploitation the Pauzhetsky Geothermal Field, Kamchatka, Russia" — Kiryukhin, Asaulova, Rychkova, Obora, Manukhin & Vorozheikina
    (47) "Geothermal Brine Invasion in Oil Reservoirs: A 3D Generalization of the Buckley-Leverett Model Using Non-Linear Finite Elements" — Suarez & Samaniego
    (48) "Petrophysical Characterization of Carbonate Naturally Fractured Reservoirs for Use in Dual Porosity Simulators" — Pulido, Samaniego, García-Gavito, Galicia-Muñoz & Velez-García
    (49) "An Update on Geothermal Energy Potential of Turkey" — Satman, Serpen & Korkmaz
    (50) "Triple Porosity Model-Dual Permeability with Transient Diffusivity Hydraulic in Naturally Fractured Reservoirs " — Pulido, Samaniego, Cinco-Ley, Rivera & Galicia
    (51) "The Composition Models of Local Materials Additive to Light Weight Cement on HTHP Conditions" — Nur & Dody
    (52) "Silica Extraction from Hydrothermal Heat Carrier by Membrane Filters" — Potapov, Parshin, Gorbach, Kashpura, Min & Ermachihin
    (53) "Experiments on Silicates and Gels Production with Using of Silica Extracted from Hydrothermal Solution" — Kashpura, Potapov, Turina, Zubaha, Gorbach
    (54) "Petrography and Mineral Alteration in Berlín Geothermal Field" — Torio-Henriquez
    (55) "Geothermal Resources Exploration and Wellsite Selection with Environmental Considerations Using GIS in Sabalan Geothermal Area, Iran" — Noorollahi, Itoi, Fujii & Tanaka
    (56) "Estimation of the Sub-Surface Temperature by Means of Magnetotelluric Sounding" — Spichak, Zakharova, Rybin
    (57) "HDR Project Soultz: Hydraulic and Seismic Observations During Stimulation of the 3 Deep Wells by Massive Water Injections" — Tischner, Schindler, Jung & Nami
    (58) "Geothermal Potential Site Selection using GIS in Iran" — Yousefi, Ehara & Noorollahi
    (59) "Investigation of Salt Precipitation in Geothermal Reservoir Near Sealing Conditions" — Tsypkin & Calore
    (60) "Lithostratigraphy of Nigeria-An Overview" — Shitta
    (61) "A Prospect Geothermal Potential of an Abandoned Copper Mine" — Tóth & Bobok
    »more »search »related site »animation

    Monday, February 26, 2007

    GEOTHERMAL FEATURE: Heat Rises III

    A Superior Idea

    Loren JenksAt first glance, MIT’s Prof. Jefferson W. Tester was doubtful about the practicality of Atlantic Geothermal’s “heat canal” concept. Once Dr. Tester took a good look at the heat canal idea, however, his skepticism changed. Should the concept prove workable, Tester told Atlantic Geothermal’s founder, David Reynolds, the heat canal approach to enhanced geothermal energy development would offer real advantages to geothermal heat mining.

    Let’s be clear on the importance of the Feb. 12 meeting between Tester* and Reynolds. An expression of geniune interest by one of the world’s foremost authorities on geothermal energy can go a long way toward bringing a good idea into the real world of analysis, conclusion and validation. This would be very good for Atlantic Geothermal, of course; but launching a superior geothermal energy production design would be enormously beneficial to a world in desperate need of clean energy sources. It would also, by the way, be very good for the U.S. economy, as well as the quality of the air we breathe, the food we eat and the water we drink.

    Prof. Tester agreed that the heat canal looks good on paper. Rather than building multiple enhanced geothermal wells to pump water down into hot rock and extract steam to drive power-generating turbines at each site, the heat canal would draw from a much larger underground field for a much longer period of time — possibly measured in centuries rather than decades for the typical geothermal site. The heat canal, a horizontal bore 50 ft. wide and 80 to 100 miles long, 20,000 ft. below the surface and filled with sea water under pressure, with bore holes extending laterally 7500 ft. into hot rock, would generate an estimated 16 times the energy of the largest conventionally designed enhanced geothermal well, yet all that energy would be extracted from a single site. This design, Prof. Tester said, would significantly increase operating efficiency through a “synergy of systems.”

    During their discussion, Tester and Reynolds identified two optional designs for the bore holes that could work with the required efficiency. One option would utilize fracturing of the hot rock area from which heat would be extracted. (Fracturing allows more heat to be extracted, but could multiply any tendency within the site toward geological instability.) The second option would involve drilling a lattice of bore holes and, while more expensive to install, would not require fracturing.

    The next step is to have a mathematical analysis of for both options performed by GeothermEx, the big California-based geothermal exploration and development firm. Tester told Reynolds that he would be glad to verify mathematical calculations of heat extraction rates the geothermal canal model. While the sustainability of the heat canal design is being calculated, Atlantic Geothermal will be refining the design concept and trying to get a fix on projected costs. The immediate question is, how many billions of dollars are we talking about?

    by Loren Jenks (lorenjenks@charter.net)

    *Dr. Tester, the H. P. Meissner Professor of Chemical Engineering at MIT, directed the multidisciplinary task force that recently released its major report, “Future of Geothermal Energy: Impact of Enhanced Geothermal Systems (EGS) on tbe United States in the 21st Century.”

    Monday, February 12, 2007

    GEOTHERMAL FEATURE: Heat Rises II

    “Renewable” or “Sustainable”

    When is an energy source “renewable” and under what conditions is the same energy source “sustainable?” Before tackling these two different but not mutually exclusive terms with regard to geothermal energy, I scoured the Internet for “How many engineers does it take to install a light bulb?” jokes. I found some of varying quality, the best of which I will get to later.

    On one engineering website I also found a recipe for chocolate chip cookies. The directions went like this: To a 2-L jacketed round reactor vessel with an overall heat transfer coefficient of about 100 Btu/F-ft2-hr, add ingredients one, two and three with constant agitation. In a second 2-L reactor vessel with a radial flow impeller operating at 100 rpm, add ingredients four, five, six, and seven until the mixture is homogeneous... and so on.

    Since chocolate chip cookies are essential to the future of a technology-based civilized society (a statement that I consider inarguable) and noting that any currently available chocolate chip cookie recipe assumes a stable and affordable supply of electricity, let’s turn our attention once again to geothermal power generation.

    To Atlantic Geothermal’s Dave Reynolds, the staggeringly comprehensive MIT study on geothermal resources, released last month, comes just in time. The report basically concludes that geothermal power generation, far from being a failed technology, simply hasn’t been sufficiently developed yet — this from scientists who were in on the original geothermal developments in the western U.S. 30 years ago.

    Mostly as a result of the MIT study, there’s a lot of talk now about enhanced geothermal systems (EGS), which potentially could extend geothermal capacity beyond those places in the Western states where the earth’s mantle is thin and the ground occasionally moves with disturbing suddenness. There are no operational EGS plants in the United States, although test projects here and in other parts of the world have proven the feasibility of the concept.

    Reynolds wants to make clear what the MIT report does not do. It does not establish that geothermal heat, a renewable energy source, is sustainable. That is, a reliable source that can be tapped indefinitely, because the flow of heat through subterranean rock layers will not be depleted by geothermal heat mining. This is what Atlantic Geothermal’s proposed Geothermal Heat Canal is all about — drawing heat from a large enough area to make significant power generation at the source site sustainable for generations.

    The Heat Canal project goes beyond the conclusions advanced by the MIT study, which envisions clusters of single-source geothermal heat wells drilled vertically, just like oil wells. These heat wells would run productively for a certain number of years, then be left unused for about 3 times longer to allow temperatures in the heat basin to regenerate. That’s the renewable part. Basically, it’s like crop rotation, which is a step beyond the hunter-gatherer approach to food production.

    Reynolds maintains that, with the Heat Canal, wells would not have to be abandoned at regular intervals. And they would not have to be sited in geologically unstable regions. He asserts that geothermal energy can be extracted in large amounts from sites that today are considered impractical — which so far is nearly everywhere. He also believes that with adequate research funding, we might be able to shave a decade or two from current projections for achieving energy self-sufficiency.

    Is it worth doing? How much oil do you have in your back yard?

    Oh, about the light bulb joke. It takes five engineers — one to design a light bulb that never needs changing, one to figure out how to rewire the grid, two to make the necessary installations, and one to write the software program that controls the wall switch. Got that?

    by Loren Jenks (lorenjenks@charter.net)

    Friday, February 2, 2007

    GEOTHERMAL FEATURE: Heat Rises

    Atlantic Geothermal’s Dave Reynolds is not reinventing the wheel; he’s building a coach from spare parts left lying around for years by the oil, gas and mining industries. In other words, as has been said already, the technology exists today to make the United States energy independent, perhaps indefinitely. How? By tapping into the heat that lies beneath our feet. If it’s done right, Reynolds claims, the energy obtainable from hot rocks is sustainable for centuries, does not require burning fossil fuels, will not pollute the environment, runs 24 hours a day seven days a week, can provide an unending supply of fresh water from sea water, and is not only achievable but affordable at today’s energy prices. His argument is compelling.

    Sure, there are obstacles to overcome, questions to be answered. For example, how clean is it? Atlantic Geothermal advances a feasible design solution to concerns about mineral pollutants leached from subterranean rock. Could extended development of geothermal energy cause earthquakes? Well, listen folks, what they’re doing now, drilling into fissures between tectonic plates to mine readily available steam, does not fill me with reassurance. Atlantic Geothermal is advancing a project to run steam turbines on heat mined from almost anywhere within 100 miles of the ocean — specifically, New England, which is not considered a hotbed of geothermal capacity, nor of earthquakes.

    The landmark MIT report on potential geothermal resources, released January 22, demonstrates with mountains of data that “enhanced geothermal systems” (EGS) can meet up to 10 percent of the nation’s current and projected electricity needs by 2050. This amount would replace the generating capacity that will be lost by the expected retirement of old coal-fired and nuclear generating plants.

    Atlantic Geothermal’s visionary project leapfrogs the 30-year continuous operating life expectancies of EGS plants by greatly expanding the hot rock energy field. By drilling an 80- to 100-mile-long, 50-ft.-wide tunnel three miles below the surface, then expanding bore holes 1500 ft. laterally, the project could realize an energy field potentially 3,000 ft. wide and 80 miles long. Reynolds projects that one such system could generate 1600 megawatts of power per hour — 16 times the output of a large conventionally designed EGS plant, and nearly matching the output of Hoover Dam. And, due to the greatly expanded heat reservoir of a field that size, the generating capacity would last indefinitely. Land use concerns? Except for the input and output facilities, the entire system is three miles underground, maintained by hydrostatic pressure.

    It bears repeating that the know-how exists today to bring Atlantic Geothermal’s vision of perpetually sustained clean energy into reality. All it takes is political and economic willpower. What are we waiting for?

    by Loren Jenks (lorenjenks@charter.net)

    Enhanced Geothermal Systems for the U.S.

    Mission of the U.S. Geothermal Technologies Program...
    Experimental EGS

    "To develop enhanced geothermal systems technology that produces electricity from artificially created geothermal systems."

    download (pdf)
    related
    animation

    Friday, January 26, 2007

    (FINAL) Who Blogged About the MIT Geothermal Study?

    previous postBelow are 62 web log postings from the week following the publication of the landmark Massachusetts Institute of Technology/U.S. Department of Energy assessment of the potential of geothermal power for the entire country.

    Day 1

    Blog Search Results (Tuesday, January 23)

    1. MIT-led Panel Backs Geothermal as Key U.S. Energy Source A comprehensive new MIT-led study on the potential for geothermal energy within the United States has found that mining the huge amounts of heat that reside as stored thermal energy in the Earth's hard rock crust could supply a substantial portion of the electricity the country will need in the future -- probably at competitive prices and with minimal environmental impact. Renewable Energy Access http://www.renewableenergyaccess.com/rea/news/story?id=47192
    2. Slashdot // MIT-Led Study Says Geothermal Energy Is Viable Amigoro writes to tell us about a study for the US Department of Energy, led by MIT, indicating that geothermal energy could account for 10% of energy production in the US by 2050. The study concludes that geothermal is proven, ... PC Apex Forums http://forums.pcapex.com
    3. Tremendous untapped potential for geothermal A new MIT-led study on high-temperature geothermal potential in the United ... What we're talking about here are what MIT calls "enhanced geothermal systems" ... EGS technology could be deployed commercially on a timescale that would ... Clean Break http://tyler.blogware.com/blog
    4. MIT-led panel backs 'heat mining' as key US energy source A comprehensive new MIT-led study of the potential for geothermal energy within the United States has found that mining the huge amounts of heat that reside as stored thermal energy in the Earth's hard rock crust could supply a ... linkfilter.net Peak Energy http://peakenergy.blogspot.com
    5. Geothermal not ready yet needs some research MIT study on geothermal energy suggest 100GW can be generated by 2050. $300-400 million over 15 years would need to be invested in research and cost reduction for 15 years before geothermal would be cost competitive. ... advanced nanotechnology http://advancednano.blogspot.com/index.html
    6. US urged to ramp up geothermal power Reuters: US urged to ramp up geothermal power. "This is a big resource that is perhaps undervalued by people who are thinking of options for the country," said Jefferson Tester, an MIT chemical engineering professor who led the 15-month ... Kruse Kronicle http://krusekronicle.typepad.com/kruse_kronicle/
    7. MIT Thinks Heat Can Do The Trick Geothermal is suited for very specific regions. What I don’t understand is why oil companies, with their already deep wells, don’t get in the game. Conflict of interest, perhaps? According to some smart people at MIT: “A comprehensive ... The Sietch Blog http://www.blog.thesietch.org/
    8. Tapping Earth’s Fire Lifting my long unused blog-voice as though to test the microphone, I share this link on geothermal energy (via slashdot today): MIT-led panel backs ‘heat mining’ as key US energy source - MIT News Office. ... HELIOLITH http://heliolith.com
    9. Earth's thermal energy could supply US A comprehensive new MIT-led study of the potential for geothermal energy within the... CR4 http://cr4.globalspec.com/
    10. 'Heat mining' could be key US energy source A comprehensive new MIT-led study of the potential for geothermal energy within the United States has found that mining the huge amounts of heat that reside as stored... KurzweilAI.net Accelerating Intelligence News http://www.kurzweilai.net/news/
    11. Earth's thermal energy could supply US From What's Next In Science & Technology: A comprehensive new MIT-led study of the potential for geothermal energy within the... Method: The Best Science Blog Posts http://science.blogdig.net/
    12. MIT-led study finds geothermal energy potential untapped News Page One Heat mining technology can be improved and deployed broadly to generate clean electricity, says an Energy Department-sponsored report. Technology - OrangEye.com http://www.orangeye.com/
    13. Geothermal energy could power more US homes CAMBRIDGE, Mass. An MIT study indicates the US could generate much of its needed electricity by tapping into heat energy locked under the Earth's... Eyewitness News/TV http://www.eyewitnessnewstv.com/global/category.asp
    14. Geothermal Energy NPR had a bit about a new geothermal energy study performed by MIT which claims that "...mining the huge amounts of heat that reside as stored thermal energy in the Earth's hard rock crust could supply a substantial portion of the ... Treehugging Industrial Suburbanite http://agdubbs.blogspot.com/index.html
    15. Panel backs 'heat mining' as key US energy source A comprehensive new MIT-led study of the potential for geothermal energy within the United States has found that mining the huge amounts of heat that reside as stored thermal energy in ... Megite Science News: What's Happening... http://www.megite.com/
    16. Tremendous untapped potential for geothermal A new MIT-led study on high-temperature geothermal potential in the United States concludes that there's a lot more we should be doing to tap this energy goldmine. What we're talking about here are what MIT calls enhanced geothermal ... Inveslogic http://www.inveslogic.com/inveslogic_Latest_News?cid=45
    17. MIT Study: Geothermal Could Provide 10% of Energy by 2050 Yesterday, MIT released a study that said that America could derive 10% of its energy production from geothermal sources by 2050 -- and it's generated quite a debate over energy issues at Slashdot. NEI Nuclear Notes http://neinuclearnotes.blogspot.com/
    18. MIT-led panel says 28000 Exajoules of geothermal potential in the US This entry goes on in detail about this with pointers to the conference where the paper was presented as well as to the MIT site where an article was published on the results. 28000 EJ may sound huge, but I was startling that the entire ... Digg / Science http://digg.com/view/science
    19. Real geothermal - in New Hampshire? There was a lot of press yesterday about a report from MIT saying that geothermal energy - pouring water on underground hot spots and using the resulting steam to drive generators - could provide as much as 10 percent of the nation's ... GraniteGeek http://granitegeek.area603.com/index.php?blogId=6
    20. MIT-led panel backs ‘heat mining’ as key US energy A comprehensive new MIT-led study of the potential for geothermal energy within the United States has found that mining the huge amounts of heat that reside as stored thermal energy in the Earth’s hard rock crust could ... Prime News Blog http://www.primenewsblog.com/
    21. 'Heat Mining’ Backed In Geothermal Energy Report A comprehensive new MIT-led study of the potential for geothermal energy within the United ... An 18-member panel led by MIT prepared the 400-plus page study,... viability of using enhanced geothermal system (EGS) technology to greatly ... Mining News http://paguntaka.org/
    22. MIT-led panel backs ‘heat mining’ as key US energy source A comprehensive new MIT-led study of the potential for geothermal energy within the United States has found that mining the huge amounts of heat that reside as stored thermal energy in the Earth’s hard rock crust could supply a ... GREENIRVANA http://greenirvana.com/
    23. MIT Finds Vast Untapped Geothermal Energy for Electricity The United States already has geothermal systems operating in the West, but MIT concludes that the technology can be used broadly and be economical. Learn more about it. MIT-led study finds geothermal energy potential untapped. Local Cooling for Global Warming http://localcooling.blogspot.com/index.html
    24. Heat Mining' as energy source MIT-led panel backs 'heat mining' as key US energy source A comprehensive new MIT-led study of the potential for geothermal energy within the ... and economic viability of using enhanced geothermal system (EGS) technology to greatly ... Universal Jellyfish http://universaljellyfish.blogspot.com/
    25. MIT: Hot Rocks could provide significant power source Jeffrey Technology Review: Abundant Power from Universal Geothermal Energy: by Kevin Bullis -- August 1, 2006 "An MIT chemical engineer explains why new technologies could finally make 'heat mining' practical nearly anywhere on earth." Energy Answers http://energyanswers.blogspot.com/

    Day 2

    Blog Search Results (Wednesday, January 24)

    1. A New Look at Geothermal Energy's Vast Potential A comprehensive new MIT-led study on the potential for geothermal energy within the United ... HDR geothermal power utilizes the hot temperatures (up to 570 C) of ... This HDR or EGS technology differs from traditional geothermal energy ... WattHead http://watthead.blogspot.com/index.html
    2. MIT Studies Geothermal Energy “Now that energy concerns have resurfaced, an opportunity exists for the US to pursue the enhanced geothermal system option aggressively to meet long-term national needs,” said panel head Jefferson Tester, a chemical engineer at MIT. ... Reporting on the Middle East, Science... http://cnpublications.net/
    3. Hot Promises of Geothermal Energy A Massachusetts Institute of Technology-led study of geothermal energy within the ... Tester [the HP Meissner Professor of Chemical Engineering at MIT] said. ... the development of EGS by increased investments by these two industries. ... MotherJones.com MoJo Blog - Social Issues... http://www.motherjones.com/mojoblog/
    4. MIT-Led Study Says Geothermal Energy Is Viable Amigoro writes to tell us about a study for the US Department of Energy, led by MIT, indicating that geothermal energy could account for 10% of energy production in the US by 2050. The study concludes that geothermal is proven, ... Slashdot http://slashdot.org/
    5. Geothermal for the US This article points to a study sponsored by the Massachusetts Institute of Technology says that the US could generate large electric capacity by tapping into heat locked below the Earth's surface. According to MIT's Jefferson Tester... IfEnergy http://www.ifenergy.com/
    6. Earth Power is Cheap and Clean The MIT scientists looked at the economic and environmental costs and benefits of using enhanced geothermal system (EGS) technology, and found that the technology would provide quick returns on investment. The US is already the largest ... aboutMyPlanet.com http://www.aboutmyplanet.com/
    7. Drilling for geothermal power Yesterday, MIT released an expert panel's report (PDF) evaluating the potential use of geothermal energy within the US. Typically, geothermal energy has involved extracting hot water from geologically active areas (such as geyser ... Peak Oil News & Message Boards http://peakoil.com/
    8. MIT-led panel backs 'heat mining' as key US energy source Massive study of hot rocks in the USA. The Newest Searchles Posts http://www.searchles.com/
    9. Ars Technica // Drilling for geothermal power An analysis by MIT suggests that geothermal energy could supply up to 10 percent of the US's current power needs by 2050, but only if we get aggressive about extracting it. More... PC Apex Forums http://forums.pcapex.com/
    10. MIT releases major report on geothermal energy A comprehensive new MIT study of the potential for geothermal energy within the United States has found that mining the huge amounts of heat that reside as stored ... Channel: Science Tags: Geothermal energy electricity science US MIT. Netscape.com Science Stories http://www.netscape.com/

    Day 3

    Blog Search Results (Thursday, January 25)

    1. Heat Mining: A New Energy Source for the US While working on the Environment section of the new World Almanac for Kids, however, I came across an interesting new MIT report, which suggests that geothermal energy could commercially supply 10% of the United States’ electrical ... The World Almanac http://www.worldalmanac.com/blog/
    2. Who's Blogging About the MIT Geothermal Study? On Monday, MIT announced the publication of "The Future of Geothermal Energy: Impact of Enhanced Geothermal Systems (EGS) on the United States in the 21st Century." As of this writing, Atlantic Geothermal has tracked more than 35 blog ... Geothermal Power Blog http://irblog.blogs.com/geothermalpower/
    3. MIT-led panel backs 'heat mining' as key US energy source A comprehensive new MIT-led study of the potential for geothermal energy within the United States has found that mining the huge amounts of heat that reside as stored thermal energy in the Earth's hard rock crust could supply a ... This And That (And Is It Getting Hot In Here?) http://allthisandthat.blogspot.com
    4. MIT-led panel backs ‘heat mining’ as key US energy source A comprehensive new MIT-led study of the potential for geothermal energy within the United ... An 18-member panel led by MIT prepared the 400-plus page study, ... viability of using enhanced geothermal system (EGS) technology to greatly ... TragicPlanet.org http://tragicplanet.org/
    5. Environmental News: Environmental News from Grist Report encourages investment in safe, clean geothermal energy ... researchers say: generating steamy geothermal electricity by circulating water down into hot rocks ... An MIT study commissioned by the US … Umbra on burning yard waste ... Global Warming is Real http://www.globalwarmingisreal.com/blog
    6. Update on Geothermal Energy Now, there is a massive report published by MIT, at the behest of the US Dept. of Energy. It is a big report, a 14MB PDF download: The Future of Geothermal Energy. It is mentioned in an MIT news release:. MIT-led panel backs 'heat ... The Corpus Callosum http://scienceblogs.com/corpuscallosum/
    7. MIT-Led Study: Geothermal Could Supply Substantial Portion of ... Green Car Congress: Schematic of a conceptual two-well Enhanced Geothermal System in hot rock in a low-permeability crystalline basement formation. Click to enlarge. A comprehensive new MIT-led study of the potential for geothermal ... Power Supply - Uttaruk.com http://powersupply.uttaruk.com/
    8. Geothermal Energy Solar, wind, biofuels, hydro and nuclear energy are the main possibilities right now, but a new report from MIT suggests that geothermal energy may soon supply up to 10% of the nation's electrical needs. Geothermal power plants are ... Primordial Blog http://primordial-blog.blogspot.com/index.html
    9. Let the Earth Do the Work Of all the alternative energy solutions out there, geothermal is the one that seems to get the least attention. Now, in what is hailed as the 'first new look at geothermal in 30 years,' an MIT-led, Energy Dept. ... Sierra Club Compass http://www.sierraclub.org/compass/index.asp
    10. Geothermal Heat Mining Promises Abundant, Cheap Energy MIT professor, Jefferson Tester, believes that mining this energy could be exceedingly economical in the short run, given the rapid increase in deep-drilling and reservoir stimulation technology. “The study shows that drilling several ... Environmental Geography http://environmentalgeography.wordpress.com/
    11. Thermal Under Where? An MIT study commissioned by the US Energy Department says geothermal energy can be accessed affordably, sustainably, and large-scale-ably with an investment of as little as $800 million over 15 years. Gristmill http://gristmill.grist.org/
    12. Enhanced Geothermal beats clean coal So-called “clean coal” plants can’t hold a candle to geothermal electrical generation ... EGS [enhanced geothermal systems] technology could be deployed ... to the total R&D investment made in the past 30 years to EGS internationally, ... Mark Wells http://www.markwells.ca/
    13. A New Look at Geothermal Energy's Vast Potential MIT-led Panel Backs Geothermal as Key US Energy Source [From MIT via Renewable Energy Access.com:] A comprehensive new MIT-led study on the potential for geothermal energy within the United States has found that mining the huge amounts of ... Inveslogic Geothermal Power http://www.inveslogic.com/inveslogic_Latest_News?cid=45
    14. [Geothermal Power] MIT study: Get more energy from Earth's heat 2 An opportunity exists for the US to pursue the enhanced geothermal system option aggressively to meet long-term national needs," said panel head Jefferson Tester, a chemical engineer at MIT. People who don't know how Geothermal power ... eco-texts http://ecoenglish.blogspot.com/index.html

    Day 4

    Blog Search Results for Friday, January 26 (FINAL)

    1. MIT back ‘Heat Mining’ as energy source A comprehensive new MIT-led study of the potential for geothermal energy within the United States has found that mining the huge amounts of heat that reside as stored thermal energy in the Earth's hard rock crust could ... TimesToCome Blog http://timestocome.com/wordpress2
    2. Environmentalism Present Technologies such as wind, solar, biomass, geothermal, and small hydro projects now provide 160 gigawatts of electricity generating capacity, about 4 percent of the world total," the US-based Worldwatch Institute said Sunday in a press ... Environment and the Psychology of Behavior http://environmentalpsych.blogspot.com/index.html
    3. MIT-led panel backs 'heat mining' as key US energy source MIT-led panel backs 'heat mining' as key US energy source January 22, 2007 A comprehensive new MIT-led study of the potential for geothermal energy within the United States has found that mining... NoNuke.org - MySpace Blog http://blog.myspace.com/nonuke
    4. MIT: Major Report on Geothermal Energy + Live radio interview 6pm A comprehensive new study of the potential for geothermal energy within the US has found that mining the huge amounts of heat that reside as stored thermal energy in the Earth's hard rock crust could supply a substantial portion of the ... Digg / Science / digg http://digg.com/view/science
    5. Environmental News: Environmental News from Grist Report encourages investment in safe, clean geothermal energy ... researchers say: generating steamy geothermal electricity by circulating water down into hot rocks ... An MIT study commissioned by the US … Global Warming is Real http://www.globalwarmingisreal.com/blog
    6. Heat Mining: A New Energy Source for the US While working on the Environment section of the new World Almanac for Kids, however, I came across an interesting new MIT report, which suggests that geothermal energy could commercially supply 10% of the United States’ electrical ... The World Almanac http://www.worldalmanac.com/blog/
    7. Pantagraph.com Letters Wind-farm opponents should help everyone A Massachusetts Institute of Technology-led study of geothermal energy within ... W.] Tester [the HP Meissner Professor of Chemical Engineering at MIT] said. ... the development of EGS by increased investments by these two industries. ... Wind Power Blog http://wind-power.bucks-today.com/
    8. Drilling for geothermal power Ars Technica: An analysis by MIT suggests that geothermal energy could supply up to 10 percent of the US’s current power needs by 2050, but only if we get aggressive about extracting it. Original post by Ars Technica and software by ... Power Supply - Uttaruk.com http://powersupply.uttaruk.com/
    9. Heat Mining A comprehensive new MIT-led study of the potential for geothermal energy within ... And unlike wind and solar systems, a geothermal plant works night and day, ... drilling for oil could be applied to enhanced geothermal systems (EGS). ... Muck and Mystery http://www.garyjones.org/mt/
    10. Geothermal Heat Mining Promises Abundant, Cheap Energy MIT professor, Jefferson Tester, believes that mining this energy could be exceedingly economical in the short run, given the rapid increase in deep-drilling and reservoir stimulation technology. “The study shows that drilling several ... Environmental Geography http://environmentalgeography.wordpress.com/
    11. A New Look at Geothermal Energys Vast Potential MIT-led Panel Backs Geothermal as Key US Energy Source[From MIT via Renewable Energy Access.com:]A comprehensive new MIT-led study on the potential for geothermal energy within the United States has found that mining the huge amounts of ...Uranium Stock Reports http://www.uraniumstockreports.com/

    Monday, January 22, 2007

    MIT Study: Enormous Potential for Geothermal Power

    Jefferson Tester, Team Leader (MIT news photo)

    The U.S. has the capacity to meet 10% of its energy needs from geothermal sources within the next 50 years. This projection is part of a new MIT-led study that outlines the future impact of Enhanced Geothermal Systems (EGS) in the United States.

    »related

    Wednesday, January 17, 2007

    COMMENTARY

    By J. David Reynolds

    We at Atlantic Geothermal think it is now possible to build the next generation of large-scale geothermal power plants suitable to meet the ever-increasing demand of clean electricity at affordable rates.

    The Hoover Dam built after World War II was a project comparable to this new type of truly massive geothermal power production. The project was well worth the initial cost ($165 million in 1935 or about $740 million in today's dollars).

    It seems clear that the dam’s value has not gone down over time, if anything it has gone up with increased cost for electricity. The technology then made it possible to build something bigger than a small water wheel on a river. Many of today’s geothermal systems are akin to a small water wheel compared to what could be done using the latest innovations.

    GEOTHERMAL FEATURE: New England Is Ready

    By Christopher Sawyer-Laucanno

    In June 2005, President Bush, made a pitch for building nuclear reactors as an alternative to coal and oil-fired generating facilities. “Nuclear power is one of America's safest sources of energy," said Bush. As usual, the president is off the mark. Even if Bush and company want to ignore that the potential for radiation leaks still exists, and that there are no viable long-term solutions for storing nuclear waste, his own Homeland Security folks have warned that nuclear plants are deemed serious targets for terrorist action. There is a reason that no new nuclear facilities have been constructed since 1979: they are neither safe, green nor reliable.

    There is a true green alternative, however, to fossil fuel generating plants (and, of course, nukes). In Northern Europe, and on the West Coast, geothermal power production--which uses heat under the earth’s surface as a natural fuel source--is increasingly proving to be a real solution. California, in fact, is the national leader in the use of geothermal energy for electricity generation. Seven percent of the state's total power production output is geothermally generated. With its 41 working geothermal plants, California accounts for almost 40 percent of the total worldwide geothermal power production. The combined production capacity of approximately 1,900 megawatts of electrical power per hour is enough to supply nearly two million typical households. And new plants are underway.

    Up until now, geothermal energy has been thought to be impractical for use in New England. In contrast to the Western United States, where massive amounts of heat lurk near the earth’s surface, in New England the heat is further underground. And yet, in New England, at just a depth of three to five miles, the earth’s temperature reaches about 300 degrees F., well above the temperature needed to boil water. As MIT professor Jefferson Tester notes, geothermal production is possible in New England due to advances in drilling technology that allow for heat extraction of depths up to 6 miles: “All the technology that goes into drilling and completing oil and gas production systems…could in principle be extended to deep heat mining. Hydraulic methods have been the ones that hold the most promise, where you go into the system and you pressurize the rock -- just water pressure.”

    While Tester is interested in the math and theory of geothermal generation, Atlantic Geothermal, in Florence, Mass, a small visionary company founded by J. David Reynolds, is actively working to prove that geothermal power is viable for New England. Reynolds, who studied engineering at Northeastern, has devised a system that uses ocean water to power the turbines for making electricity. Reynolds’ plan is ambitious but given today’s drilling technology, far from impossible.

    Reynolds calculates that a tunnel 50 feet in diameter, and some 80 to 100 miles long, would be needed to produce enough constant heat to generate 1,600 megawatts of electricity per hour

    His plan, simply put, is to bore a tunnel from the ocean inland at a depth of about three or four miles. Geologic maps of coastal New England show that at this depth the temperature reaches at least 300 degrees F. Reynolds calculates that a tunnel 50 feet in diameter, and some 80 to 100 miles long, would be needed to produce enough constant heat to generate 1,600 megawatts of electricity per hour, nearly as much as that produced geothermally in all of California, or at the giant Hoover Dam that currently outputs 1,731 megawatts hourly.

    He notes that the technology is here, the water is here, the heat is here. He also likes to point out that 100 years ago the state built a 25-mile long aqueduct from the Quabbin to Boston using mainly manual labor (his system uses robotic drilling equipment). And while he admits that it would be expensive, given the return of free power forever for a utility company, the cost could be absorbed within perhaps a decade. And it’s absolutely clean, absolutely renewable, with no waste by-products. In fact, the only by-product is desalinized water, which could also reduce dependence on the Quabbin and other reservoirs.

    If industry buys in to Reynolds’ idea, New England’s dependence on dirty, non-renewable fossil fuels for electricity generation will be a thing of the past.