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7 things everyone knows about energy that just ain't so (2013 Edition)
Mark Twain once said, "It ain't what you don't know that gets you into trouble. It's what you know for sure that just ain't so." And, there are many, many things that the public and policymakers know for sure about energy that just ain't so. That list is very long indeed and getting longer as the fossil fuel industry (which has little interest in intellectual honesty) continues its skillful manipulation of a gullible and sometimes careless media. Below I've listed seven whoppers that it would be charitable to call misleading. Longtime readers will recognize that I've addressed them before in various pieces. But I thought that it would be useful to review the worst of the worst of 2013 as the year ends. Here are seven things everyone knows about energy that just ain't so:
This mishmash is sometimes referred to as "total liquids," but more often "total oil supply." This redefinition, however, depends on something that just ain't so, namely, that NGPLs and biofuels are 100 percent interchangeable with oil. There is some interchangeability, but the volume is relatively small. NGPLs make up just 10 percent of total liquids. I've seen investment research that asserts that probably less than one-fifth of that (equivalent to about 2 percent of total liquids) can be directly substituted for oil, primarily in petrochemical refineries. That portion could grow, but only with extensive and costly retooling of the refinery industry, a move that seems risky with U.S. natural gas production stalled (see below). Now, the central problem with including NGPLs as part of the oil supply remains that they have only a very limited ability to be used as transportation fuel which is the main driver for oil consumption. Moreover, the energy content of NGPLs is around 65 percent of oil per unit of volume. Ethanol has about 66 percent of oil's energy, and biodiesel has slightly more than crude oil, but somewhat less than the diesel it is meant to replace. We must also consider all the energy including oil that goes into growing, harvesting, transporting and processing the crops that are feedstocks for biofuel refineries. Some studies show that more energy goes into making ethanol than ethanol produces when burned in an engine. Despite these well-known facts, the industry and government continue to count NGPLs and biofuels in barrels right alongside oil as if they were all equivalent. Ethanol and biodiesel do directly substitute for some motor fuels. But there are upper limits on what we can produce and use. We are near those limits with ethanol unless engines change to tolerate higher concentrations of ethanol. Moreover, neither ethanol nor biodiesel can be used for the wide variety of purposes that crude oil can. It turns out that 2005 was an inflection point after which supply growth for both total liquids and oil proper slowed considerably. With all this in mind, let's look at the actual numbers which come from the U.S. Energy Information Administration (EIA). Total Liquids: Growth from 1998 to 2005: 11.7 percent Growth from 2005 to 2012: 5.7 percent Oil Proper (Crude Oil Plus Lease Condensate): Growth from 1998 to 2005: 9.9 percent Growth from 2005 to 2012: 2.7 percent You can see that the real oil supply (crude oil plus lease condensate) has been growing at just over one-quarter the pace it did in the previous seven years--even with record prices, record investment and the wide deployment of new extraction technologies. Slowing growth coupled with skyrocketing demand in places such as China and India has put a lot of upward pressure on oil prices. It's one reason oil prices remain near record highs based on the average daily price of Brent Crude, the world benchmark. In 2011 the average daily Brent Crude price was a record $111.26—which was followed by another record in 2012 of $111.63. The price in 2013 through December 26 has averaged $108.52.
But, it turns out that the rate of production of these wells declines rapidly, and the numbers suggest that raising the overall U.S. rate of production is going to be very difficult and expensive. In fact, since January 2012, monthly U.S. marketed natural gas volumes have been nearly flat despite a more than doubling of natural gas prices from their April 2012 lows. The average monthly volume in 2012 was 2.11 trillion cubic feet (tcf). For 2013 the data are only available through September, but the average through that month was 2.12 tcf. It's doubtful that the average will change that much when the final three months of the year are included. The easy shale gas has been extracted. Now comes the hard stuff. We may already be on the shale gas treadmill.
But even that number vastly overstates what we are likely to get out of the ground for it includes estimates of probable, possible and speculative technically recoverable resources. Now, just because something is judged to be technically recoverable does not mean it will be economically recoverable. And, if it is further labelled possible or speculative, it seems foolish to base our public policy on such resources as if they were proven to exist and were ready to extract. Shale gas expert Art Berman suggests we focus on the probable resources category and assume generously that 50 percent of those resources will actually get turned into reserves. (Keep in mind that no resource is ever exploited to 100 percent and usually only to a fraction of that. Also, resources are what are thought to be in the ground based on sketchy evidence, while reserves are what the drill bit proves are actually there and, more importantly, amenable to extraction.) Based on these assumptions, the United States has about 550 tcf feet of probable and proven reserves which means that the country has a likely supply of about 23 years (again, assuming, improbably so, no increase in the rate of consumption during the entire period). Since Berman made those calculations, some of the probable resources have moved into the reserves category. But, the outlook has not really changed because this was expected.
The results have been impressive, lifting U.S. production of crude oil proper (crude oil plus lease condensate) from 5.2 million barrels per day (mbpd) in 2005 to 6.5 mbpd in 2012. The latest available monthly production results are for September 2013 and put U.S. crude oil production at 7.8 mbpd. But, it seems unlikely given the very steep production declines that existing tight oil wells experience--about 40 percent per year--that production will be able to scale that of the world's number one and number two oil producers. Russia currently produces 9.9 mbpd of crude oil proper. Saudi Arabia produces 9.8 mbpd. Both numbers come from the EIA. Could the United States produce more crude oil proper than these countries in the near future? Since we cannot know the future, anything is possible. But, consider that the United States has gotten most of the easy tight oil. Now, it must begin to rely on extraction of the hard-to-get oil. That oil will come out at a slower rate. Meanwhile, the tight oil wells already drilled will continue to decline at colossal rates and their output will have to be replaced before any increase in production is possible. Trying to increase oil production under these circumstances can be likened to running up a down escalator since the declining production of existing wells cancels out much of the production from newly drilled wells. If the United States were to attain the number one spot some day, it would be hard to maintain given the high production decline rates cited above.
So, it turns out that energy independence really means oil independence. On this count the country is still very far away from independence despite recent gains in domestic oil production. For the most recent week ending December 20, the United States' net crude oil imports were 7.5 mbpd. The country would have to nearly double its rate of domestic crude oil production to meet its current consumption needs. That seems very unlikely given the production dynamics discussed above for tight oil which is where nearly all the growth in production is currently taking place.
Oil is a finite resource and so, the real debate is over the timing of peak oil production for the world as a whole. Some say the peak is nearby. Others say it is two or three decades away. But no credible expert says that there will never be a peak. The cases for and against a near-term peak would be difficult to relate in detail here. But, it's worth noting that the optimists have been consistently wrong about prices and supplies in the last decade, and those predicting a near-term peak have been much closer to the mark. That doesn't mean that the peak must be nearby. But it suggests that the models and assumptions of the optimists are badly flawed. There are so many other misconceptions about energy which remain that it would take a dozen seven-item lists just to begin to address them. But, I offer these seven as a starting point for a clearer and more honest discussion of our energy future in the coming year. Pinocchio illustration is from WikiMedia Commons: "New Orleans Mardi Gras, 1916. Illustration of a "Knights of Momus" parade float with Pinocchio theme." - Resilience editor
Kurt Cobb is an author, speaker, and columnist whose novel Prelude provides a startling reinterpretation of contemporary events and a window onto our energy future. He writes a widely followed blog on energy and the environment called Resource Insights and is a regular contributor to the Energy Voices section of The Christian Science Monitor.
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