Wednesday, August 10, 2011

Antibiotic resistance, a ticking bomb of industrial animal keeping.

I am hardly surprised that a new study published in the journal Environmental Health Perspectives demonstrate that poultry farmers who adopt organic practices and stop giving their birds antibiotics significantly reduce the resistance of bacteria to antibiotics in their flocks.  Amy Sapkota of the University of Maryland School of Public Health and colleagues studied 10 conventional farms and 10 farms that had recently become organic in 2008. They tested for the presence of a bacteria known as enterococci in poultry litter, feed and water and for whether the organisms were resistant to 17 commonly used drugs.
All the farms tested positive for the bacteria. But the farms that had recently become organic had significantly lower levels of resistance. For example, 67 percent of enterococcus faecalis from conventional farms were resistant to the drug erythromycin compared to 18 percent of the organisms from the organic farms. Forty-two percent of the bacteria from conventional farms were resistant to multiple drugs, compared to only 10 percent from the organic farms (this according to a good summary in the Washington Post).



One wonder if conventional animal production should not be classified as an act of bio-terrorism.
According to the U.S. Centers for Disease Control and Prevention (CDC):
A bioterrorism attack is the deliberate release of viruses, bacteria, toxins or other harmful agents used to cause illness or death in people, animals, or plants.


I have argued persistently that the use of antibiotics in animal keeping is one of the major reasons for the development of bacteria that are resistant to antibiotics. First time I raised it was more than ten years ago. Since then, antibiotic resistance has become a widely acknowledged problem, even the subject of an EU-US summit, resulting in a transatlantic task force.

In Garden Earth I write

The development of antibiotics revolutionised the treatments of infections; thanks to antibiotics, disease caused by bacteria could to a very large extent be treated and cured, cheaply and effectively. This opportunity is now threatened by increased resistance to antibiotics by bacteria. Every year, 25,000 people in the EU are hit by multi-resistant bacteria. Only the health care costs for them are in the range of 1.5 billion Euro (SvD 2009b). There are already some bacteria that are resistant to all know antibiotics. Many of the antibiotics used for animals are badly absorbed by the animals and go through them. Via manure and urine they are spread in the environment. A study of US Geological Survey found antibiotic residues in half of the surveyed waterways. Off the coast of Norway there is 200 ton of chinolones in sediments originating from fish-farming, These antibiotics are not readily biodegradable and will stay for years (Apoteket 2005). The carpet of antibiotics that we roll out in our environment, purposely, like for own medication and medication of animals, and inadvertently, as in the drinking water is most certainly a reason for the increased resistance of some bacteria to antibiotics, a resistance that threatens to nullify the gains of one the most important medicine ever found

The Strama web site has an excellent list of links regarding antibiotic resistance for those who want to read more.

Old post from March

Friday, March 25, 2011

Less Salmonella in Organic Chicken

We are always scared with that organic is less safe. The argument goes that because organic farmers don't use pesticides, parasiticides, fungicides or antibiotics, organic crops or animals will be a risk for health. I always thought that it is nonsense, but it is hard to convince folks just from your gut feeling. But again and again you find evidence that organic is even safer. The latest survey of that kind says:The results of our study suggest that within this poultry company, the prevalence of fecal Salmonella was lower in certified-organic birds than in conventionally raised birds, and the prevalence of antimicrobial-resistant Salmonella was also higher in conventionally raised birds than in certified-organic birds.

What is perhaps more alarming is that 39.7 percent of the salmonella found in the conventional birds had resistance to no fewer than six different antibiotics. None of the salmonella from the organic birds showed antibiotic resistance.
read more

Also there is a nice blogpost on this at grist

Tuesday, August 9, 2011

Do the math!

I read the other day a post about how electric cars could be useful at distributed energy storages for a solar-powered economy (another version of this was the idea of Lovins that we could use hydrogen powered cars as distributed power generators - totally ignoring that hydrogen is just a carrier of energy and not a source of primary energy, which is the same for electricity).

Then I found Tom Murphy's excellent blog Do the Math where he explains that if the US would be run on solar and one would use lead batteries to have the necessary storage capacity:
"our national battery occupies a volume of 4.4 billion cubic meters, equivalent to a cube 1.6 km (one mile) on a side. The size in itself is not a problem: we’d naturally break up the battery and distribute it around the country. This battery would demand 5 trillion kg (5 billion tons) of lead."
This is some hundred times the known US reserves and many times the global reserves. Not to speak about the cost. Even with current lead prices only the lead would cost 13 trillion dollars, but obviously the prices would sky-rocket if there was such a demand....Now there is other battery technologies - but they are all more expensive, and there are certainly other ways to store solar energy. Nevertheless, even if I am non mathematician, I do appreciate that people do the math before launching to many bright ideas for solving the energy crunch.

In another post Tom says:
"No matter what the technology, a sustained 2.3% energy growth rate would require us to produce as much energy as the entire sun within 1400 years. A word of warning: that power plant is going to run a little warm. Thermodynamics require that if we generated sun-comparable power on Earth, the surface of the Earth—being smaller than that of the sun—would have to be hotter than the surface of the sun!"
 Thanks Tom

Why the separation of "Humans" from "Nature" is a dangerous one

"When the choice is framed as Humans versus Nature, it turns out that most people will choose Humans." wtites James K Boyce in http://triplecrisis.com/environmentalisms-original-sin/
It is an excellent post with ides that coincides with many of my previous posts.

Today, more than ever, we need to realise that there is no nature separate from humans, all we do change nature much more than people understand, and have been doing it for millennia. I wrote:
“While most ecologists classify the biomes (nature types or ecosystems) of the world largely as if they were not touched by humans, the truth is that humans now influence most parts of the world, even to the extent that some scientists speak about the Antropocene as a geological era; that we actually change both the geology and climate”
in a recent blog post, http://gardenearth.blogspot.com/2011/04/welcome-to-antropocene-and.html
Other posts on similar themes are:
http://gardenearth.blogspot.com/2010/04/reminder_17.html
http://gardenearth.blogspot.com/2009/09/we-are-part-of-nature.html
The solution to our ecological crisis is to further develop the human nature in intelligent ways, something I promote in the book Garden Earth, http://gardenearth.blogspot.com/2011/05/finally-satisfied-with-garden-earth.html

Friday, August 5, 2011

Agriculture: How cheap energy (and capitalism) increased the gaps between rich and poor

And how increasing energy prices will shift things to the better....


The simple agriculture equation has always been that one has to get substantially more energy out of the food than one has put into the production of it. As long as in-energy is human labour it is an iron law that can only be skipped for shorter periods. The agriculture worker should not only feed herself or himself but also other family members who are too young, too old or too sick to work, as well as some few others that supply services. Finally, in almost all society there have been rulers that have taken a great share of the production. In pure agrarian societies, around 80 percent of the population is engaged in farming.

250 billion energy slaves

One can contrast the energy embedded in human labour with the external energy sources we have conquered, to give us an idea how important the deployment of external energy sources are. If we make a back-of-the-envelope-calculation we see that the 7.71 tons of oil equivalents (toes)[1] of energy the American uses (the average Senegalese 0.25), corresponds to the food consumption of 400 people. They are the “energy slaves” (in the form of fossil fuel) working for him or her. Another way of looking at it, and also to put in an economic perspective, is that a barrel of oil represents the energy of 25,000 hours of human toil, i.e. 14 persons working a year with normal labour standards. Even with an oil price of many hundred dollars per barrel, it is very cheap compared to human labour (Rundgren 2011). 
According to FAO, 6,000 MJ of fossil energy (corresponding to a barrel of oil) is used to produce one ton of maize in industrial farming, while for the production of maize with traditional methods in Mexico only 180 MJ (corresponding to 4.8 litre of oil) is used. This calculation includes energy for synthetic fertilizers, irrigation and machinery, but not "shadow energy", i.e. energy used for making machinery, transporting products to and from the farm, and for construction of farm buildings. The energy return on energy input is below 1 (i.e. there is more energy consumed than produced) for modern rice farming and just above 1 for modern maize farming, while traditional production of rice and maize give a return of 60 to 70 times on energy used (FAO 2000).

The total energy harvested per hectare can increase substantially with increased use of ancillary energy. This energy can come in the form of better (and timelier) soil preparation, irrigation, (chemical) fertilizers etc. The ratio between energy return and energy input, i.e. efficiency in use of energy, seems to be fairly constant to a certain level after which it rapidly deteriorates. In industrial farming systems we have since long passed this level. Harvested energy per labour unit increases dramatically with increased input of energy with a factor of between ten and hundred, allowing the most advanced agriculture systems to have one farmer per hundred persons. Here we see no similar threshold or limit as for energy efficiency per hectare (Bayliss-Smith 1982).

Why the oil price and the grain price will follow each other

Farming uses energy in many different forms: diesel for tractors and pumps; electricity for pumps; fans and in-door machinery such as milking machines. Fertilizers represent a big energy use. Energy represents 90 percent of the production costs for nitrogen fertilizers, 30 percent for phosphorus fertilizers and 15 percent for potassium fertilizers. For production in the USA energy costs represented between 22% and 27% of the production costs for wheat, maize and cotton and 14% of the production costs for soy beans[2] (US CRS 2004). These figures do not include embedded costs in buildings, machinery etc. so the actual share of the costs is substantially higher. In Argentina, energy costs were calculated to account for 43% of production costs in 2006 (Baltzer et al 2008). In a situation with rising energy prices, agriculture prices will follow suit. This could also be seen in the food price – and oil price hike 2007-2008[3]. Increased energy prices influence food prices in four different ways:
-       by making the production more expensive
-       by making biofuel more interesting to produce and therefore reduce the production of food, leading to higher prices
-       increased transport costs which directly reflect on food prices
-       reduced competition in the food sector, i.e. increased transport costs means that the pressure of global competition is reduced (Rundgren 2011).

Many people are still totally dependent on firewood for their supplies of energy, Solomon Island 2010.

It takes more energy to eat than to farm
The increase of energy use in agriculture was particularly rapid in the period between the Second World War and the first oil price chock 1973; while labour force was reduced to half between 1952 and 1972 in England, energy use tripled (Bayliss-Smith 1982). In the USA energy use decreased from mid 1970s to mid 1980s as a response to increased oil prices, thereafter it has stabilized (Hendricksson 1994).
Looking at the whole food chain however, energy use has constantly increased. Use of energy along the food chain for food purchases by or for U.S. households increased between 1997 and 2002 at more than six times the rate of increase in total domestic energy use. As a share of the national energy budget, food-related energy use grew from 12.2 percent in 1997 to 14.4 percent in 2002. (US CRS 2004). In pre-industrial and semi-industrial agriculture systems, most of the food is sold, eaten and prepared close to where it is produced, but the modern food chains are highly centralized and globalized. And it is just getting worse and worse. In industrial countries between 10 and 15 times more energy is used in the food system than what is contained in the food we end up eating (Hendricksson 1994).  
A big part of the energy consumption is caused by the consumers buying, storing and preparing food. In Sweden 1997, agriculture production represented 15-19 percent, processing 17-20 percent; distribution and retail 20-29 percent and consumption 38-45 percent of the total energy use in the food chain. 7-11 percent of the total energy is consumed by the much discussed transports, and here it is in particular the final stretch that counts. A person driving a car 5 kilometres for shopping uses a lot more energy per food unit than a ship with meat or soy from another continent. Also in some developing countries, consumption takes the lion's share of energy use; in this case, it is mainly cooking over an open fire that takes energy. 1,500 kWh (corresponding to a bit more than a cubic meter of firewood) is used per capita for cooking[4], which is somewhere between half and one third of what is used per capita for cooking in Sweden or the USA (Uhlin 1997). Cooking represents more than a fifth of the total energy consumption in Africa and Asia[5] and in some countries, cooking represent up to over 90% of household energy consumption (IEA 2006). The use of energy for cooking is more than the total energy in the food. So while farming in developing countries and traditional systems is energy efficient, cooking is not.

Increasing energy prices will revert some of the developments that were made possible by cheap fossil fuel. It poses a challenge for society, but also an opportunity to steer into a path of true sustainability. It will lead us towards more sustainable agriculture methods, such as organic farming and more localised food production webs. In general, in a world with rapidly increasing human population and a simultaneous depletion of natural resources, the obsession with replacing human labour with oil and other nature resources makes little sense. That those changes also will serve to mitigate climate change is just another argument in favour of such a shift in our societies' metabolism.  Notably, to abolish the use of external energy and rely solely on manual labour is not the desired situation, it is rather about finding a new balance that works on a global scale and is sustainable. Renewable energy, such as bio-energy, windmills and watermills have since thousands of years already been used in farming. They can be enhanced and solar energy and biogas can be added to the mix. But it is not likely that renewable energy will allow such wasteful systems that we have today. For example,  with very cheap energy it pays to use that energy to bind atmospheric nitrogen instead of using natural nitrogen fixation. With electricity prices of solar energy, or by they use of biogas it is cheaper to use natural nitrogen fixation than using chemical fertilizers. 


Unequal energy access and the unequal terms of trade
Commercialisation is promoted as the recipe for development for the almost half a billion smallholders in the world. Peasant farming is built on a rather high degree of autonomy and it regenerates most of its needed resources, such as labour, capital, soil fertility and pest control, within the farming system. By nature, peasants resist commercialisation because they want to minimize risk and dependency (v.d. Ploeg 2009). If all the forces of coercion are brought to play and farmers try to commercialise their production, most farmers will simply not survive in this struggle for modernisation. If they did, there would be enormous over-production. European farms had difficulties to cope with competition from North America especially after the introduction of steamship transport. The response was to introduce protectionist measures. Still the pressure of competition was a lot lower for them than it is for poor farmers in developing countries today. In addition, because of the productivity gains in developed countries, agricultural prices dropped with some 60 percent in the period 1960 to 2000 (Dorward et al 2002). As the productivity, and energy use, of the poorest farmers remained much the same, it is obvious that they lose out. At current prices, it would require one life of labour for a manual farmer to acquire a pair of oxen and small animal drawn equipment, and ten generations of labour to buy a small tractor (Mazoyer and Roudart 2006). The productivity gap has widened over the last decades, both relatively and in absolute numbers. 

Table 1 Agricultural labour productivity, dollar per man-year

1990-1992
2001-2003
Agriculture as share of GDP
Low income countries
315
363
20%
Middle income countries
530
708
9%
High income countries
14,997
24,438
2%
France
22,234
39,220
2%
United Kingdom
22,506
25,876
1%
USA
20,797
36,216
1%
Brazil
1,507
2,790
5%
India
332
381
4%
China
254
368
12%
Malawi
72
130
36%
Source: World Bank 2007

To believe that low resourced smallholder farmers would be able to compete on staple food in free world markets - with energy access being the main factor of competitive advantage - is simply very far from reality. In reality, we instead see how country after country become net food importers. Cheap energy could be seen as their way out of the situation, but the reality is quite different: it is cheap energy that has pressed down the prices of agriculture products - and thereby the market value of their labour to a dollar per day; it is cheap energy that has allowed the gaps to increase to unprecedented heights because the rich could always use more cheap energy than the poor, and the gap between those relying on their own labour and those relying on use on fossil fuel has just increased. Energy scarcity, higher energy prices will result in less global competition and higher food prices. While being painful for many societies and for net food buyers in the short run, is still better for the smallholder farmers in developing countries than the opposite. Policy-makers should better grab this opportunity for a turn of agriculture development, instead of promoting continued or increased external input dependency (fertilizers, GMOs, credits) and continued global competition in a market where the big players are all on steroids in the form of cheap oil.

References
Baltzer, Kenneth; Hansen, Henrik; Lind, Kim Martin 2008, A Note on the Causes and Consequences of the Rapidly Increasing International Food Prices, Institute of Food and Resource Economics, University of Copenhagen
Bayliss-Smith, T. P. 1982, The Ecology of Agricultural Systems, Cambridge University Press
Dorward, Andrew, Jonathon Kydd, Jamie Morrison and Ian Urey, A Policy Agenda for Pro-Poor Agriculteal Growth, Imperial College at Wye, accessed at http://www.sarpn.org.za/wssd/agriculture/policy_agenda/Policy_Agenda_long.pdf
FAO 2000, The Energy and Agriculture Nexus
FAO 2007, The State of Food and Agriculture
Hendrickson, John 1994, Energy Use in the U.S. Food System: A Summary of Existing Research and Analysis, Center for Integrated Agricultural Systems
Hoffmann, Ulrich, 2011, Assuring food security in developing countries under the challenges of climate change: key trade and development issues of a fundamental transformation of agriculture, UNCTAD discussion paper 201, February 2011
IEA 2006, World Energy Outlook, OECD/IEA
IEA 2008, Key Energy Statistics 2008, International Energy Agency
Mazoyer, Marcel & Roudart, Laurance 2006, A History of World Agriculture: From the Neolithic Age to Current Crisis, transl. James H. Membrez, Monthly Review Press
McDonald's 2008, Vårt Miljöengagemang
Ploeg, Jan Douwe van der, 2009, The New Peasantries: struggles for autonomy and sustainability in the era of empire and globalization.
Rundgren, Gunnar, 2011, Garden Earth - From hunter and gatherer to capitalism - and thereafter, forthcoming
Uhlin, Hans Erik 1997, Energiflöden i livsmedelskedjan, Naturvårdsverket
US CRS 2004, Energy Use in Agriculture: Background and Issues, 19 november 2004, US Congressional Research Services
USA Today 2008, http://www.usatoday.com/news/nation/2008–03–10-drugs-tap-water_N.htm, 16 March 2009
WHO 2006, Fuel for Life: Household Energy and Health, World Health Organisation
World Bank 2007, World Development Report 2008



[1]       a toe is a common unit for energy and express the amount of energy released when a ton of oil is burnt. 1 toe = 42 GJ = 11 MWh = 10 Gcal.
[2]       Who can be grown without nitrogen fertilizers as they have natural nitrogen fixation.
[3]       There were also other factors driving this, such as biofuels, increased meat consumption and speculation. Increased oil price was doubtless one main driver.
[4]       As an interesting comparison, McDonald's Sweden states that they use 1 kWh per meal (McDonald's 2008).
[5]       The introduction of energy-saving stoves or the use of other fuels that are easier to regulate should be a prioritized measure. It is not only about conservation of forest and saving energy; soot and smoke indoors is a health hazard and one of the bigger killers. Between 1.5 million (WHO 2006) and 4 million (Pimentel et al 1998) people are killed by this every year.

Thursday, August 4, 2011

The Market is not a management system for the planet

Olle harvesting cabbage at Torfolk



Even the most convinced proponents of a free market realise that there are things that can't be left to the market to sort out. Human rights, law and order, security, basic social security have, in almost all societies, been regulated by some other institution than the market, often by a state. Most of our social relations are within the context of family, kinship, communities, etc. and thus also are not regulated by markets. And even for those things that are, mostly, regulated by markets there are many government rules. Even in the market-oriented United States there are supposedly 130,000 regulations for how economic agents may, or may not, behave. And the more central an issue is to our society, the more regulations there are. For example, all countries have labour regulations. They are there because we realize that the workers are a weaker party in an alleged "free" labour market: they need some kind of protection. There is no doubt, in my view, that some market regulations go too far, and that governments should refrain from micro-managing economic activity. A bigger threat, however, is when governments want markets to regulate things that are not at all suitable for market regulation.



Agriculture is a very complex activity. It provides us with our most essential need, food.  Throughout history, food supply has always been subject to political intervention. The Romans tried to regulate prices, although they failed, like most other subsequent efforts; the record of government interventions in food markets is rather poor. Faced with the prospect of food shortages, we now see country after country making bilateral food deals. They no longer trust the global trading system to safeguard their food supplies. The fact that we have major famine, e.g. in the Horn of Africa, while lots of food is wasted in other parts of the world is also an indication that markets in food don't work very well in safeguarding the survival of fellow humans. Agriculture is also largely the foundation of society. Human relations in the farming system shaped social structures over millennia. Even modern industrial societies have grown out of a context where agriculture played a pivotal role. The preservation of farming is not only about food production but also about culture, society and heritage.



Scientists now speak about the Anthropcene, the era in which planet Earth's big systems, hydrological, biological, climatic and even geological, are mainly shaped by humans. Farming already occupies around forty percent of the planet's terrestrial surface and with the urban and peri-urban areas, human activity covers perhaps sixty percent. We also know that farming and land-use accounts for around one third of the greenhouse gas emissions, the second largest source after fossil fuels. This means that farming is the most significant human management system of the planet; that the future of humans on the planet largely rests upon how we manage the farmscape. And markets are not the right tool for managing the planet.

Column in upcoming issue of ecology and farming 

Tuesday, August 2, 2011

Richard Heinberg: End of growth - we're already there

I like to share this educational video from Post Carbon Institute



As it is very short and simple it has some simplification which I am less convinced about, in particular I am not certain of the direct link between debt and nature resources. But the main tenet, that growth largely is driven by cheap fossil fuel, I agree totally with. It is also one of the bearing thoughts in my book Garden Earth. I stated the same in the case of Japan in a recent post. This video also concurs with my analysis that we should see growth not as THE PROBLEM but as a symptom. 


How quality Management can result in low quality....

"In 2004, a new FSC [Forest Stewardship Council] accreditation standard was introduced in order to bring FSC’s certification system in accordance with ISO’s international standards for certification. Now after 6 years there is clear evidence that this ISO-fixation is undermining the integrity of the FSC system, by shifting the focus away from improving field performance to evaluating systems. Stakeholders, however are not interested in systems, but verification that good forest management is happening and that claims are really trustworthy."
writes Peter Feilberg, CEO of NEPCon in a recent post.  

I concur in his critical view on the ISO "quality management systems approach".In theory it sounds good, but the reality is quite different. 


Micheal Power has written a book: The Audit Society: Rituals of Verification which draws largely from financial audits. His conclusions are largely that the audit explosion is driven by vested interest and a failed attempt to minimize risk by focusing systems rather than actual performance. (a review of the book can be found on http://www.developmenteducationreview.com/issue11-review2 )

I have myself criticized the ISO inspired development of organic certification for almost twenty years now. And it is certainly an area I have a lot of insight in. I have helped a handful organic certification bodies to get accreditation and helped another handful to install "quality management systems". I have also worked as an auditor for the same period of time. I summarised some impressions of the accreditation process in a Leader in The Organic Standard November 2009

How valuable is accreditation?
A survey on accreditation, recently conducted by TOS, shows that there is considerable discontent with how accreditation systems are operated. In particular, respondents criticised national accreditation bodies within the EU for their high fees, the poor correlation between fees charged and work done, bad service and the low level of competence. Compulsory accreditation for organic certification bodies is fairly new in the EU system. The EU has maintained a policy of national monopoly in accreditation. The logic behind this policy is that if there was competition between accreditation bodies, a super accreditation system would be needed to monitor them – another body that determines which are reliable. Many question the wisdom of this monopoly. A critical voice in the TOS survey described the EU model as having ‘only God above the accreditors and God doesn’t care a lot about accreditation’.

Controversially, the EU has never been able to explain why a single monopolistic accreditation body is more reliable than competing ones. Admittedly the accreditation bodies have a certain self control, peer-review, in the International Accreditation Forum. But it is hard to understand why the EU policy can accept the  relevance of peer-review on the accreditation level and not on the certification level? All the arguments for maintaining an accreditation monopoly can be applied just as well to certification, making accreditation itself redundant. There is one question that was never asked, and which the TOS survey did not answer: ‘is there value in the accreditation?’. Such a question has many facets. One is whether accreditation is of direct value to the development of the organic market. Most likely the answer to this is ‘no’. Consumers have no understanding about these issues, and the fact that the certification body is accredited is of no relevance in the marketplace.

Regarding competition between certification bodies, in situations where accreditation is not compulsory, accreditation might bestow a certain market advantage. This would not be towards consumers, but towards the clients, who might want to know that their certification body is reputable and reliable. IFOAM accreditation has its main function here. If accreditation improves the credibility and reliability of the certification process it might have long-term positive effects. But in reality does it? We do not know. It is obvious that some kind of supervision of certification organisations provides a certain guarantee against direct fraud, but it is an untested assumption that accreditation is the most efficient process. Other untested options include direct control by the authorities and a peer-review system, or even much simpler measures such as increased transparency in the certification process.

One aspect that influences the reliability and usefulness of accreditation are the norms that are the basis for accreditation. The norms currently in use, such as the ISO 65, have been developed with quality management systems as models. However, it is not difficult to find ISO 9001 certified companies that offer very poor services or produce inferior products, and it is not difficult to find ISO 14001 certified companies that are damaging their environment. It is also not at all hard to find ISO 65 accredited certification bodies that are doing a bad job and whose certification decisions are dubious. The TOS survey indicates that part of the problem might be the competence of the accreditation bodies to interpret the norm. But the problem is probably deeper than that. The adoption of the quality system model in organic certification has hardly led to a measurable increase in reliability. At least thereis no research to support the claim – admittedly there is also no research that points to the contrary. While a quality management perspective and procedures certainly can be valuable, there are three disadvantages. First, these systems are resource-intensive, and to design, implement and maintain such a system would take a lot of resources away from other necessary work. Secondly, attempting to correct everything by stressing the system and the procedures disregards the human factor. It expresses a view of humans as automata. But we are not that, and real people simply do not always follow procedure. Sometimes they cheat and other times they have a bad day. Finally, a quality management perspective takes the focus away from what is actually happening and emphasises the written plans and procedures. The accreditation process is mainly designed to identify missing policies or procedures and not to detect faulty certification decisions, or sloppy inspections. The focus on the quality management system needs to be put under scrutiny, and those that promote it should come up with evidence that it delivers what we want at a reasonable cost.
(from The Organic Standard)

Monday, August 1, 2011

Climate labelling is a good cure for climate anxiety - but not for climate change.


 As a response to the huge attention to the devastating effects of climate change some five years ago, many organic standard setters rushed into making proposals for how to address this in standards. Those efforts range from simplistic and symbolic issues like a ban on air freight to complex scientific approaches based on life cycle assessment. We have discussed many times before (in this paper) how simplistic and symbolic actions such as an air-freight ban can have unfair and undesirable effects, e.g. on smallholders in developing countries, or how in general, the desire to regulate all and everybody sometimes is an example of how the best can be the enemy of the good.

Product labelling is a delicate tool. Thirty years of organic labelling and eco labelling have given us some experiences of what works and what doesn't work. Simple things like "chlorine free paper" and "grown without chemical fertilisers" work very well. More complex criteria are more difficult. Their credibility is mostly more depending on who is behind the label than the actual content of the label. For instance, most consumers of fair trade products probably have little knowledge of what those standards really mean, and even less of how they are certified.

Climate labelling tries to boil down very complex matters into one simple message. And also matters for which science are still struggling to give simple answers. Methane emissions from ruminants is one such issue where the scientific basis is very thin; there are not many measurements of methane emissions in field conditions. Similarly nitrous oxide emissions caused by farm methods and methane emissions from cultivation of rice are not researched sufficiently to allow for very clear answers to our questions. The choice will be between very simplistic, and therefore not very relevant and potentially counter-productive, standards and a scientific approach which is impossible to communicate in the market place, very expensive to implement and not predictable in how it will work, to the detriment of the producer, who might fail even if she or he did the right thing.

It has a bigger effect on the climate how your overall consumption pattern is than if you chose a climate labelled steak over a non-climate labelled steak. And even the perfect "climate neutral product" will have a bad climate effect if you drive half an hour by car in order to get it. There are also some conflicting demands emerging from the emphasis on climate effects. Supposedly slowly growing livestock emits more methane - per kg meat - than livestock the grows rapidly. But rapid growth is mainly accomplished by the use of concentrates, which is against the nature of ruminants and therefore not as natural or healthy.

To offer "climate labelling" as the response to people with climate anxiety may also make people believe that they are solving the problem with small changes in their consumption pattern, and divert them from taking other necessary actions, such as political demands to their governments. The same holds for "climate offsetting" by which a certain product is rendered "carbon neutral" by means of paying for carbon offsetting somewhere else. It results in the interesting effect that your bicycle trip is worse for the climate than taking a round the world trip by airplane. It is like your emissions never happened. But of course they have. There are not enough offset opportunities to counteract all greenhouse gas release. All in all climate change is too serious a threat to be mainly left for consumer choice to deal with. Organic standard-setters should not participate in making veils for covering up this inconvenient truth.

leader The Organic Standard issue 124 (forthcoming)

You can read more about climate anxiety at: http://www.theboywhodeniedwolf.com/