Sunday, July 29, 2012

Shortage of Resources for Renewable Energy.

UK Government Report Calls for “Strategic Metals” Plan.

Not only are supplies of oil and natural gas under imminent threat of failing to meet demand for them, but so is a whole range of precious metals, along with indium, gallium and germanium and other vital elements such as phosphorus and helium, as is discussed throughout this Commentary. A report1 from the Science and Technology Committee, advised by the Royal Society of Chemistry, warns that if the U.K. does not secure supplies of strategic metals, its economic growth will be severely jeopardized. Of particular concern are indium, used in touch screens and liquid crystal displays, and rare earth elements (REEs) particularly neodymium and dysprosium, used to fabricate highly efficient magnets for electric cars and wind turbines. Platinum group metals are an issue too, used in catalytic converters and fuel cells. As is true of oil and gas, and indeed world population, such resources are not evenly distributed around the globe, and for example 80% of available new platinum is extracted from just two mines in South Africa. 92% of the niobium used in the world (for superconducting magnets and highly heat-resisting superalloys e.g. in jet-engines and rocket subassemblies) is exported from Brazil, and 97% of REEs are presently supplied from China. In developing a low-carbon transport infrastructure, it is proposed that biofuels should be used principally for aviation where there is no practical alternative to liquid fuels. Thus, it is ventured, electric cars will become increasingly important in providing personalised transport while avoiding the use of petroleum or natural-gas based fuels. The knock-on effect is that new sources of lithium must be found along with the means to mine and process the metal, plus the inauguration of recycling technology for lithium. One can immediately take issue with the practicalities of both arms of this scheme, however. Roughly one fifth of all fuel in the UK is used for aircraft, or around 13 million tonnes. At a yield of 952 L/ha and a density of 0.88 g/cm3, to produce this much biodiesel would take 15.5 million hectares of arable land, of which the UK has only 6.5 million hectares. Thus if we were to stop growing food crops entirely and just rapeseed, we could still only fuel 42% of our aviation fleet. It is obvious that just a few percent at best of our current number of planes can be kept in the air by means of biofuels. Clearly, the days of cheap air-travel are numbered and this may be one reason why the coalition government has scrapped plans to build the controversial and vexed third runway at Heathrow Airport. Given the 30 million cars on the roads here currently fuelled by oil, the case for a wide-scale implementation of electric-cars might appear compelling. However, the lead-in time to make a dent in that number of vehicles and the 60 million tonnes of crude oil used for fuel would be decades at best, even if the necessary supplies of REEs, lithium and overall manufacturing capacity for them could be achieved. The most practical use for electricity is to power mass transportation, e.g. tramways and railway networks rather than individual vehicles.

Endangered Elements: Threat to Green Energy.

Underpinning the above political agenda, a list2 of "endangered elements" has been published in a new report, including the rare earth elements (REEs), in particular neodymium, production of which, it is reckoned3, will have to increase five-times to build enough magnets for the number of wind-turbines deemed necessary for a fully renewable future. Nonetheless, my rough calculations indicate that this would still take 50 - 100 years to implement, depending on exactly what proportion of the renewable electricity budget would be met from wind-power, and if the manufacturing capacity and other resources of materials and energy needed for this Herculean task will prevail.

Neodymium is a rare earth metal used extensively to produce permanent magnets found in everything from computer hard disks and cell phones to wind turbines and cars. Neodymium magnets are the strongest permanent magnets known, and a neodymium magnet of a few grams can lift a thousand times its own weight. The magnets that drive a Toyota Prius hybrid’s electric motor use around 1 kilogram of neodymium, while 10 - 15 kg of lanthanum is used in its battery3. Interestingly, neodymium magnets were invented in the 1980s to overcome the global cobalt supply shock that occurred as the result of internal warfare in Zaire (now Congo). Around one tonne of REE-based permanent magnets is needed to provide each MW of wind-turbine power.

Of the other REEs, demands for dysprosium and terbium, which are harder elements to extract than their lighter relatives, are such that supply will be outpaced within a decade. The latter have been described as "miracle" ingredients for green energy production since small quantities of dysprosium can result in magnets with only one tenth the weight of conventional permanent magnets of similar strength, while terbium can be used to furnish lights that use as little as 20% of the power consumed by normal illumination. By alloying neodymium with dysprosium and terbium, magnets are created that more readily maintain their magnetism at the high temperatures of hybrid car engines3.

However, far more dysprosium relative to neodymium is required than occurs naturally in the REE ores, meaning that another source of dysprosium must be found if hybrid cars are to be manufactured at a seriously advancing rate. As noted, almost all REEs come from China whom it appears will run out of dysprosium and terbium within 15 years, or sooner if demand continues to soar, notwithstanding that Chinese hegemony for its own future energy projects may mean that the current amount of REEs being released onto the world markets will be severely curbed. Almost certainly, new sources of REEs will be sought, given their vital importance to providing future renewable energy, and Japanese geologists have reported that there may be 100 billion tonnes of REEs in the mud of the floor of the Pacific Ocean.4 Since the minerals were found at depths of 3,500 to 6,000 metres (11,500-20,000 ft) below the ocean surface, the undertaking required to recover them will not be trivial, however, and the practicalities of the enterprise remain to be seen.

Peak Oil - Peak Minerals.

According to the Hubbert theory5, all resources are finite and will ultimately be extracted only to the limit where it is feasible to do so, whereupon either financial costs or those of energy dictate that to proceed further only yields diminishing returns. The Hubbert theory was originally applied to oil, in which the production curve "peaks" at the point of maximum output (when half the original resource has been used), beyond which it falls remorselessly. Similar fits can also be made to gas and coal production data and a recent analysis was reported using the approach to a study6 of 57 different minerals by Ugo Burdi and Marco Pagini. These authors have fitted both logistic and Gaussian functions to mineral production data from the United States Geological Survey (USGS), and it is interesting that for mercury, lead, cadmium and selenium, there is good accord found between the "ultimate recoverable resources" URR determined from the curve-fitting to the data and those reported as remaining in the USGS tables (plus the amount of each already extracted). For tellurium, phosphorus, thallium, zirconium and rhenium, the agreement is quite close but tends to smaller values than are indicated from the figures for cumulative production plus the USGS reserves. For gallium, the figure obtained from the fitting analysis is significantly lower than the USGS estimate (by about a factor of seven).

Evidence of peaking is found for a number of minerals, e.g. mercury around 1962; lead in 1986; zirconium in 1990; selenium in 1994; gallium in 2000. The results for gallium are significant, both in that the peak occurred seven years ago and in the size of its total reserve, which when compared with the amount used worldwide by the electronics industry, implies that we may run short of gallium any time soon. Tellurium and selenium are two other minerals that underpin the semiconductor industry and it appears that their fall in production may also impact negatively on future technologies that are entirely reliant upon them, since there are no obvious substitute materials with precisely equivalent properties.

For vanadium, although a production peak is indicated in 2005, the data in the "mineral commodities handbook" show a later and sudden surge in production, which is not fully explained but thought may potentially relate to uncertainties in reporting from countries like China. So, there may be a real and ongoing upsurge in production from particularly the Chinese economy which is quoted as being "out of sync" with the rest of the world, such is its massive expansion, or it might be a red herring.

Hafnium, another metal whose days are numbered, is an essential component of computer-chips and is also employed as a thermal-neutron absorber in nuclear control-rods, is thought may literally run-out within 10 years. Peak oil we all know about, but peak gas, peak uranium and peak coal will follow. There is in fact a peak in the production of all materials that were laid down in the distant past, and we are using them up at an expanding rate.

Interestingly, copper, zinc, tin, nickel and platinum show an almost exponential increase in production; however, the stocks of some metals may be insufficient to supply the technological demands of the modern developed world into the far (or even near) future. There is also the issue of how quickly a rare and difficultly extractable metal such as platinum might be produced in comparison with an overall demand for it. Copper production can be fitted with an exponential function up to 2006, while a logistic function provides about the same quality of fit, yet indicates a peak in about 2040. The latter agrees reasonably well with the USGS estimated copper reserves of 0.5 - 1.0 Gigatons, while the fit gives 2 Gigatons. Notably, the world price of copper has skyrocketed during the past few years, which is again attributed to demand in China, as was the cost and shortage of wood earlier in the year.

The above analyses rest upon the case that the determined "peaks" represent actual global production maxima. Indeed, more reserves of all minerals may yet be found if we look assiduously enough for them; but herein lies the issue of underpinning costs, both in terms of finance and energy. It is the latter that may determine the real peaking and decline of minerals, which extend beyond the simple facts, say, of mining and refining a metal from its crude ore. There is also the cost-contribution from the energy needed to garner energy-materials such as oil, gas, coal and uranium, and thence to turn them into power and machinery; and since fossil fuels are being relentlessly depleted, it takes an inexorable amount energy to produce them, resulting in a cumulative and rising energy demand overall.

The whole "extractive system" is interconnected through required underpinning supplies of fossil fuels, and it is perhaps this that explains why the production of so many minerals seems to be peaking during the period between the latter part of the 20th century and the start of the 21st, in a virtual mirror-image of the era when troubles in the production of fossil fuels were experienced across the globe. Hence, it may be the lack of fossil fuels which determines the real amount of all other minerals that can be brought onto the world markets6. Even if we manage to solve our energy problems, we may not have enough "stuff" to make things from. Some salient points about potential metals shortages are apparent from the list of elements in Table 17, which gives the world total reserve of each, the expected time of exhaustion based on current rates of production, and their principal uses. The figures therein are based on known reserves, noting that more might be found if they were explored for with sufficient assiduousness. However, emerging new technologies and a growing world population mean that some key-metals are likely to be exhausted more quickly, as indicated in Table 27. The reserve lifetime of a resource (also known as the R/P ratio) is defined as the known economically recoverable amount (R) divided by the current rate of use (P) of it, hence the values in Table 1 and Table 2. Economics predicts that as the lifetime of a reserve shortens so its price increases. Consequently, demand for that reserve decreases and other sources, once thought too expensive, enter the market. This tends to make the original reserve last longer, in addition to the volume of the new reserves. For example, there is enough bauxite reckoned to provide aluminium for 70 years, but the latter is an abundant element and there are many alternative known sources of it, thought to add-up to over 1000 years worth. In practice many other factors are involved, particularly geopolitical situations, but the basic geological fact remains: reserves are limited and hence their present patterns of consumption and growth are not sustainable over the longer term. While some elements are very plentiful compared to the total amount of them required, the rate at which they can be recovered sets a limit on how quickly a given reserve can be exploited. The R/P ratio analysis is of course a gross approximation, as the Hubbert-type fits to production show, since a given amount of a resource/year cannot be produced up to the bitter end. Production must eventually decline, mainly as the Energy Returned on Energy Invested (EROEI) falls.

The Role of Recycling.
In the face of resource depletion, recycling looks increasingly attractive. In this stage of development of the throw-away society, now might be the time to begin "mining" its refuse. It has been shown that there are part-per-million (p.p.m.) quantities of platinum in road-side dust8, which is similar to the 3 p.p.m. concentration in South African platinum ore. It is suggested that extracting platinum from this dust, which originates in catalytic converters, might prove lucrative and would expand the limited amount of platinum available, which even now does not meet demand for it. Discarded cell-phones too, might be a worthwhile source. For metals such as hafnium and Indium, recycling is the only way to extend the lifetime of critical sectors of the electronics industry. This is true also of gallium, tellurium and selenium, since all of them are past their production peak, which forewarns of imminent potential production shortages and escalating prices. While recycling of base-metals from scrap is a mature part of an industry worth $160 billion per year, current efforts to recover and recycle rare-metals are far less well advanced. However, in view of its present high-price, rhenium is now recovered from scrap bimetallic catalysts used in the oil refining industry. I expect to see an expansion of this top-end of the metals-market since rising demand for rare-metals will confer highly lucrative profits. It might be argued that we will never "run-out" of metals because their atoms remain intact, but the more dispersion that occurs in converting concentrated ores into final products, the more difficult and hence energy intensive it becomes to reclaim those metals in quantity. In a sense the problem is the same as deciding which quality of ore to mine in the first place: we now need to either find richer sources to recycle from or arrange how we use these materials in the first place to facilitate recycling. Ultimately, recycling needs to be deliberately designed into an integrated paradigm of extraction, use and reuse, rather than treating it as an unplanned consequence.


Table 1. Metals under threat: the world total reserve of each, and the expected time of exhaustion based on current rates of production and their principal uses.7

Aluminium, 32,350 million tonnes, 1027 years (transport, electrical, consumer-durables)
Arsenic, 1 million tonnes, 20 years (semiconductors, solar-cells)
Antimony, 3.86 million tonnes, 30 years (some pharmaceuticals and catalysts)
Cadmium, 1.6 million tonnes, 70 years (Ni-Cd batteries)
Chromium, 779 million tonnes, 143 years (chrome plating)
Copper, 937 million tonnes, 61 years (wires, coins, plumbing)

Gallium 1000 - 1500 tonnes, 5 - 8 years (semiconductors, solar cells, MRI contrast agents).
Germanium, 500,000 tonnes (US reserve base), 5 years (semiconductors, solar-cells)
Gold, 89,700 tonnes, 45 years (jewellery, "gold-teeth")
Hafnium, 1124 tonnes, 20 years (computer-chips, nuclear control-rods)
Indium, 6000 tonnes, 13 years (solar-cells and LCD's)
Lead, 144 million tonnes, 42 years (pipes and lead-acid batteries)
Nickel, 143 million tonnes, 90 years (batteries, turbine-blades)
Phosphorus, 49,750 million tonnes, 345 years ( fertilizer, animal feed)
Platinum/Rhodium, 79,840 tonnes, 360 years for Pt (jewellery, industrial-catalysts, fuel-cells, catalytic-converters)
Selenium, 170,000 tonnes, 120 years (semiconductors, solar-cells)
Silver, 569,000 tonnes, 29 years (jewellery, industrial-catalysts)
Tantalum, 153,000 tonnes, 116 years, (cell-phones, camera-lenses)
Thallium, 650,000 tonnes, 65 years (High Temperature Superconductors, Organic Reagents)
Tin, 11.2 million tonnes, 40 years, (cans, solder)
Uranium, 3.3 million tonnes, 59 years (nuclear power-stations and weapons)
Zinc, 460 million tonnes, 46 years (galvanizing).


Table 2. It is predicted that the growth in world population, along with the emergence of new technologies will result in some key-metals being used up quite rapidly7, e.g.

Antimony, 15 - 20 years.
Gallium, 5 years.

Hafnium, 10 years.
Indium, 5 - 10 years.
Platinum, 15 years.
Silver, 15 - 20 years.
Tantalum, 20 - 30 years.
Uranium, 30 - 40 years.
Zinc, 20 - 30 years.

Stolen Catalytic Convertors and Platinum Prices.

The price of platinum has just hit $1,722 an ounce9, in consequence of fears that the major producers of the metal in South Africa will be unable to keep pace with rising demand for it and that it is seen as an “investment” commodity, along with gold. Around 40% of "new" platinum, extracted at a rate of close to 150 tonnes annually, is used for jewellery which is about the same as is used to make catalytic converters (“cats”). It is reckoned that scrapping one million such cats would yield 40,000 ounces of platinum (which works out at 40,000 x 31.10 g/Troy ounce = 1.244 tonnes or 1.244 g per cat, as an average). It is thought that the worldwide "scrap-platinum" market might eventually provide 1 million Troy ounces per year, or 31.1 tonnes; meanwhile, those unwilling to wait have resorted to stealing cats, which we can reckon to be worth $69 each. Equivalent to £43, this is not quite a pedigree beast, but since the devices are quite easily stolen from parked cars (if you know where and how) this is now an increasing phenomenon.

There is a considerable limitation in the rate at which platinum can be recovered in relation to the amount of it we would need to make fuel cells for vehicles powered by hydrogen on any significant scale. I have assumed there are 600 million "cars" on the highways of the world, but this does in fact err on the side of caution. At the end of 2004, the figure was closer to 500 million cars and 200 million trucks etc., (up from around 40 million vehicles altogether in 1945), and 500 million of that total are fitted with cats. It is less demanding in terms of platinum to make a cat than a fuel cell, since the latter use up to 100 g of platinum per unit, e.g. that employed by Daihatsu.

The US based consulting firm TIAX have concluded that world platinum will not run-out, and certainly if the amount of Pt required in fuel cells falls (as is claimed, to perhaps one third of the amount currently used, and there are far more optimistic claims too of about one sixth), there would be enough of it in existing mine-holdings to make those 680 million fuel cells, but it is a rare metal which is only laboriously wrestled from its ore, usually over a period of about 6 months. As noted earlier, 80% of world Pt comes from two mines in SA and most of the rest from another mine in the Urals. Enhancing new Pt output will be very difficult if not impossible in any significant amount.

It is highly unlikely that we will give-up all our jewellery and we need the existing cats to keep nitrogen oxide pollutants (NOx) and other traffic exhaust-emissions within acceptable limits. It is difficult to predict the date of breakthroughs in research and even more so to predict timelines for their commercial development. Notwithstanding, I am looking at a period of about 10 years, by when according to almost all estimates we will be past the point of peak oil production, and oil-supplies worldwide will be down, probably to 90 % of current levels, which is really going to hurt our lifestyle.

In this interim of the "Oil Dearth Era", we cannot expect fuel-cells to help us much, and even if we surrendered half the world's new platinum (100 tonnes) plus another 30 tonnes (which would involve taking 24 million vehicles off the road once their cats had been scrapped) from recycled platinum, we could introduce an optimistic 130 x 106 g/say 60 g/vehicle = 2.17 million fuel cells per year. If we could do this starting now, in a 10 year period, we could have 21.7 million new "fuel cell" cars, but we would have taken 240 million off the road for their cats. This would leave us with 680 - 240 = 440 oil-powered vehicles left (having scrapped their cats for the Pt they contain, and ignoring those that had been stolen) plus 21.7 million hydrogen-powered cars, making 68%, or two thirds of the current number.

Rising fuel prices and shortages of fuel will force that number down significantly, and in 25 years we would be left with 54 million hydrogen vehicles, but if the cats are scrapped for their Pt, that will require the loss of 600 million oil-powered vehicles, or most of the current number, leaving us with just 9% of the current level of car transport power by oil, then powered by hydrogen. These sums are merely illustrative and are open to criticism, but I am simply trying to stress the point that the hydrogen economy, if it could be implemented will provide for less than 10% of current levels of transportation, while the shortages of oil expected over that same 25 years and the inexorably rising monetary and energy costs of its extraction and processing will force the great majority of current vehicles off the roads.

In the immediate future (a period of 10 years, starting now) we can forget about a hydrogen-based transport infrastructure. While making diesel from biomass and from algae by so-called second generation processes offers some hope (and does not compromise food production, unlike first generation biofuels, which ultimately must do), probably only 15% of current transport levels can be so maintained. The notion that we can simply change-over almost overnight to hydrogen or to anything else on a scale that will allow us to preserve our current measure of energy profligacy is simply wrong. Accordingly, society will begin to relocalise into smaller self-sustaining communities - if people can't move around so easily they will stay where they are, and will need to find a means for living at the local level. Deconstructing populous cities will be the most testing effort, and may prove impossible, but the world needs a clear plan of cooperative transformation and not further war and bloodshed over relentlessly depleting resources.

Agricultural Phosphorus Shortage Made Worse by Biofuels?

I read an article a few years ago on the subject of “Peak Phosphorus”10 which was called to mind again by a more recently published article.11 Phosphorus is an essential element in all living things, from plants to you and me, along with nitrogen and potassium - known collectively as, P, N, K, in the form of micronutrients that drive growth. Global demand for phosphate rock is predicted to rise at 2.3% per year, but this is likely to increase in order to produce biomass for biofuel production. If the transition is made to cellulosic ethanol as a fuel, because whole plants are consumed in the process, not merely the seeds etc., yet more phosphorus will be required and less of the plant (the "chaff") will be available to be returned as plant rubble after the harvest, which is a traditional and natural provider of K and P. However, the resource of phosphate rock is in decline, posing a threat to global food production. Similarly to the well-known Hubbert Peak analysis which predicts that individual oil wells or indeed the global production of oil reaches a maximum, beyond which it declines relentlessly, a similar function can be fitted to world phosphate production.10 The method can be adapted in terms of the Hubbert Linearization, which was used recently to predict that only around half the proven world coal reserve (903 Gt) will actually be extractable at some 435 Gt.12 This involves plotting the annual production (P) divided by total production to date (Q), i.e. the ratio, (P/Q), against total (cumulative) production to date (Q), yielding an intercept on the x-axis which corresponds to the ultimate recoverable reserve.

The result indicates that the peak for phosphate production happened in the US in 1988 and for the world in 1989. The really telling aspect of the article is the inclusion of a plot of world oil production versus world population, for which the two quantities can be seen to follow one another closely. The conclusion is that we literally eat oil, since it underpins almost all agriculture, certainly in the developed nations, but also N and P, as required by the Green Revolution, which has preserved us from a Malthusian die-off scenario - so far, at least. Population has only grown as it has because of cheap phosphate deposits and cheap energy to produce the mineral and to get it onto farms around the world. The timing of the production peak for phosphorus has been challenged by another analysis which instead predicts that it will occur in 2034.11 In analogy with the peaks for oil production in the 1970s, it is concluded that the observed peak at the end of the 1980s was not a true maximum production peak, and was instead a consequence of political factors such as the collapse of the Former Soviet Union and a decreased demand for fertilizer from Western Europe.11 In any event, it is clear that the reserve of phosphate rock will at some point fail demand for it and without an alternative source of phosphorus fertilizer humanity will begin to starve, let alone produce biofuels.

In contrast to fossil fuels, say, phosphorus can be recycled, but if phosphorus is wasted, there is no substitute for it. The evidence is that the world is using up its relatively limited supplies of phosphates in concentrated form. In Asia, agriculture has been enabled through returning animal and human manure to the soil, for example in the form of sewage sludge, and it is suggested that by the use of composting toilets, urine diversion, more efficient ways of using fertilizer and more efficient technology, the potential problem of phosphorus depletion might be circumvented. It all seems to add up to the same thing, that we will need to use less and more efficiently, whether that be fossil resources, or food products, including our own human waste. We are all bound on this planet and depend mutually on the various provisions of her. There are now so many of us that we will be unable to maintain current profligacy. In the form of localised communities as the global village will devolve into by the inevitable reduction in transportation, such strategies would seem sensible to food production at the local level. "Small is beautiful" as Schumacher wrote those many years ago, emphasising a system of "economics as if people mattered"13.

Running Low on Gas.

Helium is a remarkable material, with some unique properties, especially in liquid form in which it is used as a coolant, for example to run superconducting magnets inter alia in MRI (magnetic resonance imaging; the safer alternative to x-ray body scanners) applications. It is also used as a blanket-gas to shield sensitive materials from atmospheric oxygen, and enable certain chemical reactions to be performed, and in specialist welding operations in which the weld is stronger when the metal surface has not been exposed to reactive atmospheric gases. Helium finds further application in gas-cooled nuclear reactors, as a heat-transfer agent.

Most of the world's helium is found in the United States, and it is recovered by separating it from natural gas with which it is coincident. Helium arises from the decay of radioactive elements like thorium and uranium, whose atomic nuclei decay to form alpha-particles - helium nuclei - which form elemental helium by capturing a couple of electrons from their surrounding media. The majority of helium - since it is a material of low mass - simply rises into the atmosphere and escapes the Earth's gravitational pull to dissipate into outer-space, but some of it becomes trapped in the rocky formations of gas-wells, from which it may be recovered in concentrations of up to 7%.14

As is the case for all fossil-materials, natural gas was laid-down in long times past and we will eventually use it up, especially against current rising demand for it. It is the same story for oil, ultimately coal, and indeed uranium, so most of our current energy production methods are living on borrowed time. Helium is also a fossil material, but it can be recycled, as I recall from working at the Paul Scherrer Institute (PSI) in Switzerland, which uses huge amounts of liquid helium to cool the vast array of magnets used to steer beams of charged particles, particularly muons, toward particular experimental arrangements. At PSI, the helium is recovered and liquefied on site so it can be recycled, since it is a comparatively expensive substance, and another recollection about it is that it diffuses through the steel walls of cylinders in which it is stored under high pressure. If you get a new helium cylinder and don't use it for say, 6 months, when you attach the pressure valve, about half of it has gone!

While the world would certainly not grind to a complete halt if all its particle physics institutes had to close-down in the absence of helium, modern medicine would be disadvantaged and need to return to using x-rays as a means to "photograph" the inside of human bodies as in the CT-scanner alternatives to MRI. If we run short of natural gas, however, the world won't run on with this fact largely unnoticed, and peak gas looks to hit at around 202515... a mere 10 years time, and more and more of it is used each year, along with all other sources to slake a dust-dry thirst for energy.

References.

(1) http://www.parliament.uk/business/committees/committees-a-z/commons-select/science-and-technology-committee/news/110517-sims-report-published/

(2) Davis, E. (2011) "Critical Thinking.” http://www.rsc.org/chemistryworld/Issues/2011/January/CriticalThinking.asp

(3) Inman, M. (2011) "Going "All The Way" With Renewable Energy?" http://news.nationalgeographic.com/news/energy/2011/01/110117-100-percent-renewable-energy/

(4) http://www.bbc.co.uk/news/world-asia-pacific-14009910

(5) Hubbert, M.K. (1956) “Nuclear Energy and the Fossil Fuels.” Presented before the Spring meeting of the Southern District, American Petroleum Institute, Plaza Hotel, San Antonio, Texas, March 7-9.
(6) Bardi, U. and Pagani, M. "Peak Minerals”. http://www.theoildrum.com/node/3086.

(7) Rhodes, C.J. (2010) Sci. Prog. 93, 37.

(8) Cohen, D. (2007) "Earth Audit", New Scientist, 26th May, p. 35.
http://minerals.usgs.gov/minerals/pubs/commodity/

(9) http://platinumprice.org/

(10) http://www.energybulletin.net/node/33164

(11) http://phosphorusfutures.net/peak-phosphorus

(12) http://www.scitizen.com/future-energies/the-coal-question-revisited_a-14-1397.html

(13) Schumacher, E.F. (1973) Small Is Beautiful: A Study of Economics as if People Mattered. Vintage, London.

(14) http://ergobalance.blogspot.com/2009/05/short-on-gas.html

(15) De Sousa, L. (2006) "Natural Gas: how big is the problem?" http://www.theoildrum.com/story/2006/11/27/61031/618

Sunday, July 08, 2012

Responses to article "Can solar fuels prevent an imminent petroleum fuels crisis?"

These follow an article that I posted on the Forbes blog: http://www.forbes.com/sites/energysource/2012/06/21/can-solar-fuels-prevent-an-imminent-petroluem-fuels-crisis/

Comments

fredlinn fredlinn 2 weeks ago

——-” Producing millions of electric cars is just not a practical proposition, and the only realistic means to move people around in number using electrical power is with light railway and tram systems.”——-

Diesel/electric railroad locomotives are hybrids—and have been for over 70 years. Build out overhead lines and deliver electric directly to the locomotives, and there is no need to use the diesel engines. You would however, still have them available for use if the need should arise.

——–” The fabrication of electric cars runs into similar resource difficulties, especially in terms of rare earth metals, and so a strategy based on liquid fuels would seem most sensible. Liquid fuels are furthermore entirely compatible with the prevailing transportation infrastructure, in regard to the distribution of fuels and their deployment in internal combustion engines.”——–

Any internal combustion engine can be run on methane. All you do is adjust the intake and air/fuel mix. We’ve been able to do it for over 90 years. There are over 14 million vehicles that can run on CH4 worldwide right now—and most of those a bi-fuel, they can run on petroleum or CH4 at the flip of a switch. Some, like the Fiat Siena Tetrafuel can run on a range of fuels—the Siena can run on petroleum gasoline, gasoline and ethanol mixtures, pure hydrous ethanol, and/or methane. Existing engines can be converted to bi-fuel engines at a fraction of the cost of building new vehicles.

——-” The notion of personalised transport will be relegated to history by massive fuel prices, and an absence of any cheaper “car ownership” option. “——-

In general, renewable fuels, ethanol, biodiesel and CH4 have significantly higher comparative octane ratings than petroleum. This means they can be used in high compression engines. Compression ratio is the key to thermal efficiency with ICEs. Smaller displacement engines that can generate as much or more power than large displacement engines that are dictated by the low octane rating of gasoline—-and get significantly better mileage per BTU of fuel used. Using ethanol, you can have more power than you get from the largest V8 engine using gasoline—from a 4 cylinder engine the size commonly used for small super economy cars. We’ve been doing it for over 60 years, and it is being done today.

——-” Liquid fuels are furthermore entirely compatible with the prevailing transportation infrastructure, in regard to the distribution of fuels and their deployment in internal combustion engines. The Fischer-Tropsch (FT) process is a well-established technology for converting syngas to liquid hydrocarbons, but the means to obtain H2 + CO on a large scale without using fossil fuels is not. Even when (or if) those clean technologies based on artificial photosynthesis are developed, a whole new generation and scale of FT plants will need to be installed, which at the level envisaged would take decades.”——-

During WW2, after the loss of North Africa, and the bombing of Ploesti left Germany with virtually no petroleum reserves at all—-they turned to synthetic fuels produced by F-T and the Scholler process from wood and coal, mainly wood. Coal was needed for steel production—-and also, coal contains sulphur which contaminates the reforming catalysts, shutting down the hydrocarbon rebuilding process from the synthgas.

They ran everything from submarines, panzers, trucks, jet aircraft(like the Me-262 Swallow-the world’s first operation jet fighter)—-even V1 and V2 rockets with synthetic fuels. And they did it in a matter of months, not decades. Even under wartime conditions of shortages, logistic problems and round the clock, day and night Allied bombing.

There is not one single “problem” in this entire article that hasn’t been met and dealt with before—-some as long as over a century ago. I see no reason why we can’t do the same things again today. And I don’t think it will take us decades to do it. We already know what works and what doesn’t work from past experience. And in most cases, we come out far better off if we deal with the problems using the technology and tools we already have at our disposal.

Most of this is something we need to be doing anyway. It is not something we should be deluded into thinking it is something we are being forced to accept. We should be think of it all as the next logical step to moving forward into a world that works with nature, by nature’s game plan.

We’ll all be better off, richer, healthier and happier when we do.


My Response - which I am having trouble posting on the Forbes site:

"
"Dear Fred,

as the title of the article suggests, I am trying to answer the question of whether the current emphasis on solar fuels is likely to fill the hole created by falling production of conventional crude oil, according to the IEA and a recent US Army analysis. My conclusion is that it almost certainly cannot.

We seem to agree that electrifying the train network is the way forward, since it can be powered by different kinds of fuel to make electricity. In the UK, there are plans to electrify the western side of the country - the east has been electric for many years. I am sure the UK government is aware of the peak oil problem. I don't think you envisage millions of electric cars any more than I do?

If I understand you correctly, you mean that we don't need petroleum derived fuels since we can run vehicles on natural gas and other renewable fuels - and indeed I take your point about the higher octane ratings and high compression engines. OK, but there are limits on biofuels, ethanol and indeed the diversion of (or creation of a new) methane supply on a scale corresponding to the predicted loss of around 3 million barrels of oil per day/year, and a loss of more than half the present supply by 2030, which must be supplanted by their means.

The ersatz fuels are well known, as a triumph of Germany during WWII whose ingenuity enabled their mobilization throughout that war. It has been noted that the bombing of the FT plants, among others, helped the Allies to win the war. The raw material is of course coal - coal was liquefied by means of both gasification/FT (indirect) and a direct method based on the earlier Bergius process.

There were however, only 40 million or so cars across the world then, to be compared with over one billion now. Since much of the fuel was used by the military, over one million "Gasogene" units were created, which you are clearly familiar with, but for the benefit of those who don't know, these were able to gasify wood and run cars and even tractors on the fuel gas so produced.

So, all in all, I accept what you are saying, and I am sure you are right that these tried-and-tested means can be brought to bear particularly in a "localised" rather than global scale. Gasogene units could be fabricated using spare parts and old tin cans, and using fairly simple tools. It is how quickly (or if) such technologies might be used to maintain the status quo that I question.

I couldn't agree more that we need to embrace the necessary changes, and to work with nature, rather than feeling coerced and hard done by, and for that reason at the end of the full article I quoted Charles Kingsley:

“We act as though comfort and luxury were the chief requirements of life, when all that we need to make us really happy is something
to be enthusiastic about.” – Charles Kingsley (1819 – 1875).

Regards,

Chris"

Saturday, June 30, 2012

Ultra-Low Sulphur Jet Fuel May Prove a Mixed Blessing.

In an effort to reduce acid emissions from the aviation industry, preventing an annual number of between 1,000 and 4,000 deaths, it is planned to burn very low-sulphur jet fuel in planes. However, although better air quality is anticipated, such low sulphur fuels might also reduce the formation of sulphate aerosols, particles of which reflect solar energy back into space and help cool the planet.

Such ultra-low sulphur jet fuels (ULSJ) contain just 15 ppm of sulphur, to be compared with a high of 3,000 ppm for some jet fuels. Indeed, the sulphur content of aviation fuel has been increasing of late, thought due to an increasing reliance on high-sulphur crude oil obtained from the Middle East and Venezuela.

There are different means for removing sulphur from crude oil and fuels, of which the industry standard in hydrodesulfurization (HDS). In HDS, the liquid oil or fuel is contacted with a catalyst under a relatively high pressure of H2 gas, in the presence of a catalyst, removing the sulphur from compounds like bezothiophene and it s higher homologues in the form of hydrogen sulphide, H2S. However, to deal with higher sulphur contents, a greater pressure of H2 must be used, and in general the contact time with the catalysts also needs to be longer, thus slowing the production process and increasing the amount of energy required to run it.

There are methods for removing sulphur from fuels, e.g. by absorption onto metal oxides such as zinc oxide (ZnO) onto which are supported various transition metals. Another route is called "oxidative desulphurisation", in which the benzothiophenes are converted to sulphones, which contain the SO2 functional group and are more easily removed. The sulphur compounds can also be removed using microporous adsorbents such as activated carbon and zeolites. Most refineries prefer to use HDS, and the other options are best regarded as fall-back, Plan-B strategies.

While there is no real disagreement that removing sulphur from jet fuel leads to better air and public health benefits, it can be argued that an additional 2% of CO2 emissions is incurred, because energy derived from fossil fuels is needed to drive process, which it is thought will add between 2 and 7 cents per gallon to the cost of the fuel. It is thought that desulphurizing the fuel might recover a health benefit of perhaps one quarter, an increased climate change impact of maybe one tenth would be incurred. While there remains some doubt as to the accuracy of the relatively simple models used to estimate health issues which are underpinned by complex mechanisms, all evidence is that to remove sulphur from fuels is a positive course of action.

Interestingly, rather than the expected cooling effect of sulphate aerosol particles, a study by Mark Jacobson, made at Stanford University, suggests that there might actually be an increase in warming because sulphate becomes coated onto carbon black particles in the exhaust and increases the warming effect of the carbon. By reducing the concentration of sulphate from the low sulphur fuels, the effect is diminished and cooling is experienced relative to the higher sulphur containing fuels, although this may refer to an uncertainly in the model used. Presumably, any such warming effect must be to some degree counterbalanced by the reflection of solar energy from sulphate particles per se, generated from free SO2, liberated into the atmosphere.

It seems most likely that it is emissions from the combustion of fuels with low sulphur content at ground level, rather than at cruising altitude that will provide the greatest health improvement, while the model and analysis made using it have revealed various factors that are likely to be of importance to mechanisms and issues of global warming and public health.

http://www.rsc.org/chemistryworld/2012/05/ultra-low-sulfur-jet-fuel-radar

Thursday, June 21, 2012

Agricultural phosphorus shortage made worse by biofuels?


This article will be published shortly in: "Australian Resources and Investment magazine".

Professor Christopher J. Rhodes, Director of Fresh-lands Environmental Actions, Reading UK. cjrhodes@fresh-lands.com

World rock phosphate production is set to peak by 2030. Since the material provides fertilizer for agriculture, the consequences are likely to be severe, and worsened by the increased production of biofuels, including those from algae.

Introduction.

The depletion of world rock phosphate reserves will restrict the amount of food that can be grown across the world, a situation that can only be compounded by the production of biofuels, including the potential large-scale generation of biodiesel from algae. The world population has risen to its present number of 7 billion in consequence of cheap fertilizers, pesticides and energy sources, particularly oil. Almost all modern farming has been engineered to depend on phosphate fertilizers, and those made from natural gas, e.g. ammonium nitrate, and on oil to run farm machinery and to distribute the final produce. A peak in worldwide production of rock phosphate is expected by 2030,1 which lends fears over how much food the world will be able to grow in the future, against a rising number of mouths to feed. Consensus of opinion is that we are close to the peak in world oil production too. Phosphorus is an essential element in all living things, along with nitrogen and potassium. These are known collectively as, P, N, K, to describe micronutrients that drive growth in all plants and animal species, including humans. Global demand for phosphate rock is predicted to rise at 2.3% per year, but this is likely to increase in order to produce crops for biofuel production. As a rider to this, if the transition is made to cellulosic ethanol production, more phosphorus will be required still since there is less of the plant (the "chaff") available to return as plant rubble after the harvest, which is a traditional and natural provider of K and P to the soil.
World rock phosphate production amounts to around 140 million tonnes. In comparison, we would need 352 million tonnes of the mineral to grow sufficient algae to replace all the oil-derived fuels used in the world.2 The US produces less than 40 million tonnes of rock phosphate annually, but to become self-sufficient in algal diesel would require around 88 million tonnes of the mineral. Hence, for the US, security of fuel supply could not be met by algae-to-diesel production using even all its indigenous rock phosphate output, and significant further imports would be needed. This is in addition to the amount of the mineral necessary to maintain existing agriculture. In principle, phosphate could be recycled from one batch of algae to the next, but how exactly this might be done remains a matter of some deliberation. e.g. The algae could be dried and burned, and the phosphate extracted from the resulting “ash”, or the algae could be converted to methane in a biodigester, releasing phosphate in the process. Clearly there are engineering and energy costs attendant to any and all such schemes and none has been adopted as yet.
Cleaning-up the Environment.
There is the further issue of the demand on freshwater, of which agriculture already struggles to secure enough to meet its needs, and in a sustainable picture of the future, supplies of water appear uncertain against the countenance of climate change. It is in the light of these considerations that algae/algal fuels have begun to look very appealing3, especially given the claimed very high yields that can be obtained per hectare as compared say with rapeseed and biodiesel. Conventional algae production can be combined with water clean-up strategies3, to remove N and P from agricultural run-off water and sewage effluent, both to prevent eutrophication (nutrient build-up in water), which causes algal blooms, and to conserve the precious resource of phosphate. Algae might also be “fed” with CO2 from the smokestacks of power stations to reduce carbon emissions. The implementation of integrated strategies such as these, where the creation of a “carbon neutral” fuel is combined with pollution-reduction is thought to be the only way that the price of algal fuels can be brought down to a level comparable with conventional fuels refined from crude oil. As the price of oil rises inexorably, they are likely to become even more attractive. “Peak phosphate” is connected to “peak oil” since phosphate is mined using oil-powered machinery, and in the absence of sufficient phosphorus, we will be unable to feed the rising global human population, since modern industrialised farming depends on heavy inputs of phosphate, along with nitrogen fertilizers. Pesticides, too, derived chemically from crude oil, are essential, along with oil-refined fuels for farm machinery. It is, nonetheless, doubtful that the world’s liquid transportation fuel requirements can be met through standard methods of algae cultivation entirely,4 though fuel production on a smaller scale seems thus feasible. An analogy for the latter might be as growing algae in a “village pond” for use by a community of limited numbers.
No solution to “fuel crops versus food crops” problem.
It is salutary that there remains a competition between growing crops (algae) for fuel and those for food, even if not directly in terms of land, for the fertilizers that both depend upon. This illustrates for me the complex and interconnected nature of, indeed Nature, and which like any stressed chain, will ultimately converge its forces onto the weakest link in the “it takes energy to extract energy” sequence. It seems quite clear that with food production already stressed, the production of (algal) biofuels will never be accomplished on a scale anywhere close to matching current world petroleum fuel use (>20 billion barrels/annum). Thus, the days of a society based around personalized transport run on liquid fuels are numbered. We must reconsider too our methods of farming, to reduce inputs of fertilisers, pesticides and fuel. Freshwater supplies are also at issue, in the complex transition to a more localised age that uses its resources much more efficiently.
In contrast to fossil fuels, say, phosphorus can be recycled, but if phosphorus is wasted, there is no substitute for it. The evidence is that the world is using up its relatively limited supplies of phosphates in concentrated form. In Asia, agriculture has been enabled through returning animal and human manure to the soil, for example in the form of sewage sludge, and it is suggested that by the use of composting toilets, urine diversion, more efficient ways of using fertilizer and more efficient technology, the potential problem of phosphorus depletion might be circumvented. It all seems to add up to the same thing, that we will need to use less and more efficiently, whether that be fossil resources, or food products, including our own human waste. We are all taking a ride on spaceship earth, and depend mutually on her various provisions to us. Our number is now so great that we cannot maintain our current global profligacy. In the form of localised communities as the global village will devolve into by the inevitable reduction in transportation, such strategies would seem sensible to food (and some fuel) production at the local level. "Small is beautiful" as Schumacher wrote those many years ago, emphasising a system of "economics as if people mattered".5
And if we try to continue with business as usual?
There is a Hubbert-type analysis of human population growth which indicates that rather than rising to the putative “9 billion by 2050″ scenario, it will instead peak around the year 2025 at 7.3 billion, and then fall. It is probably significant too that that population growth curve fits very closely both with that for world phosphate production and another for world oil production. It seems to me highly indicative that it is the decline in resources that will underpin our decline in numbers as is true of any species: from a colony of human beings growing on the Earth, to a colony of bacteria growing on agar nutrient in a Petri-dish.
References.
(1) Rhodes, C.J. (2011) Science Progress 94, 323.
(2) Rhodes, C.J. http://ergobalance.blogspot.com/2012/02/achilles-heel-of-algal-biofuels-peak.html
(3) Rhodes, C.J. in Algal Fuels: Phycology, Geology, Biophotonics, Genomics and Nanotechnology, J.Seckbach (ed.), Springer, Dordrecht, in press.
(4) Rhodes, C.J. (2012) Science Progress 95, in press.
(5) Schumacher, E.F. (I 973) Small is beautiful: a study of economics as if people mattered. Vintage, London.