"In a sustainable community, resource consumption is balanced by resources assimilated by the ecosystem. The sustainability of a community is largely determined by the web of resources providing its food, fiber, water, and energy needs and by the ability of natural systems to process its wastes. A community is unsustainable if it consumes resources faster than they can be renewed, produces more wastes than natural systems can process or relies upon distant sources for its basic needs."
Showing posts with label permaculture. Show all posts
Showing posts with label permaculture. Show all posts

Friday, May 30, 2014

Can GM and organic farms coexist?

Writing for the Guardian, Australian Research Council future fellow Matthew Rimmer said the ruling raised the prospect of "biotrespass" laws to protect organic farmers.

The decision in Marsh v Baxterwill no doubt reignite the debate over GM crop liability. A number of scholars have argued that there is a need to revise liability regimes in respect of biotechnology. Professor Jeremy de Beerfrom the University of Ottawa has argued that there is a need to adapt the legal principles of trespass to accommodate recent developments in biotechnology, nanotechnology, and synthetic biology. He has called for the creation of a cause of action for "biotrespass".

No doubt the agricultural biotechnology industry would resist such efforts at law reform. From their perspective, GM crops should be subject to the same liability regimes as other forms of farming and agriculture.

At an international level, there will be further debate over the position of GM crops in the sweeping regional agreements under negotiation – including the Trans-Pacific Partnership. There is an intense struggle between organic farmers and the biotechnology industry at a number of levels in these international agreements.

The Marsh's lawyer, Mark Walter, said the case would have ramifications for Australia's organic industry and raised the possibility of appeal:

"This is a disappointing result for Mr Marsh and leaves Australia’s non-genetically modified food farmers with no legal protection against contamination from nearby properties ... We will closely examine the judgement of this complex and unique case and advise our client of his legal options, including his right to appeal."

The Safe Food Foundation, which helped bankroll Marsh's case, said the future for organic food in Australia was now "uncertain". The Foundation said the judge had erred by criticising Australia's organic food regulators for stripping Marsh's organic status.

The court in its judgment stated the decision by NASAA (National Association of Sustainable Agriculture Australia) to decertify Steve was erroneous. Given the extent of the contamination of Steve’s farm we fail to see how NASAA could have taken any other decision. Certainly 100% of organic consumers would support the NASAA decision.

Because the court did not recognise the NASAA decertification the court did not recognise the economic loss Steve suffered, and dismissed the case that Steve had brought for negligence and nuisance.

Foundation director, Scott Kinnear, said:

“This is a huge setback for organic and Non GM farmers and their choice to remain GM Free. This has been an important test case, of interest to many parties, locally and globally.

“We also call on our legislators to work on finding a solution to this vexed issue. State and Federal governments have continuously stated that the solution to any GM contamination events is common law. This has clearly failed today and demonstrates that the law has not kept up with new technologies such as GM.”

NASAA general manager Ben Copeman said the decision highlighted the need for legislative change for the sector and that it had opened up a "Pandora box" of conflict between the GM and organic farming sectors.

“We found GM canola growing on organically certified land. The court found that there was no risk of GM contamination. While tolerance thresholds for GM contamination are governed by the Federal Government under the National Standard for Organic and Biodynamic Produce, it is not a legislated standard and is not recognised by the courts." More


 

Thursday, May 29, 2014

Allan Savory: How to fight desertification and reverse climate change

"Desertification is a fancy word for land that is turning to desert," begins Allan Savory in this quietly powerful talk. And it's happening to about two-thirds of the world's grasslands, accelerating climate change and causing traditional grazing societies to descend into social chaos.Savory has devoted his life to stopping it. He now believes — and his work so far shows — that a surprising factor can protect grasslands and even reclaim degraded land that was once desert.

Allan Savory works to promote holistic management in the grasslands of the world.

Sunday, July 21, 2013

Can a collapse of global civilization be avoided?

Virtually every past civilization has eventually undergone collapse, a loss of socio-political-economic complexity usually accompanied by a dramatic decline in population size [1]. Some, such as those of Egypt and China, have recovered from collapses at various stages; others, such as that of Easter Island or the Classic Maya, were apparently permanent [1,2]. All those previous collapses were local or regional; elsewhere, other societies and civilizations persisted unaffected. Sometimes, as in the Tigris and Euphrates valleys, new civilizations rose in succession. In many, if not most, cases, overexploitation of the environment was one proximate or an ultimate cause [3].

But today, for the first time, humanity's global civilization—the worldwide, increasingly interconnected, highly technological society in which we all are to one degree or another, embedded—is threatened with collapse by an array of environmental problems. Humankind finds itself engaged in what Prince Charles described as ‘an act of suicide on a grand scale’ [4], facing what the UK's Chief Scientific Advisor John Beddington called a ‘perfect storm’ of environmental problems [5]. The most serious of these problems show signs of rapidly escalating severity, especially climate disruption. But other elements could potentially also contribute to a collapse: an accelerating extinction of animal and plant populations and species, which could lead to a loss of ecosystem services essential for human survival; land degradation and land-use change; a pole-to-pole spread of toxic compounds; ocean acidification and eutrophication (dead zones); worsening of some aspects of the epidemiological environment (factors that make human populations susceptible to infectious diseases); depletion of increasingly scarce resources [6,7], including especially groundwater, which is being overexploited in many key agricultural areas [8]; and resource wars [9]. These are not separate problems; rather they interact in two gigantic complex adaptive systems: the biosphere system and the human socio-economic system. The negative manifestations of these interactions are often referred to as ‘the human predicament’ [10], and determining how to prevent it from generating a global collapse is perhaps theforemost challenge confronting humanity.

The human predicament is driven by overpopulation, overconsumption of natural resources and the use of unnecessarily environmentally damaging technologies and socio-economic-political arrangements to service Homo sapiens’ aggregate consumption [1117]. How far the human population size now is above the planet's long-term carrying capacity is suggested (conservatively) by ecological footprint analysis [1820]. It shows that to support today's population of seven billion sustainably (i.e. with business as usual, including current technologies and standards of living) would require roughly half an additional planet; to do so, if all citizens of Earth consumed resources at the US level would take four to five more Earths. Adding the projected 2.5 billion more people by 2050 would make the human assault on civilization's life-support systems disproportionately worse, because almost everywhere people face systems with nonlinear responses [11,2123], in which environmental damage increases at a rate that becomes faster with each additional person. Of course, the claim is often made that humanity will expand Earth's carrying capacity dramatically with technological innovation [24], but it is widely recognized that technologies can both add and subtract from carrying capacity. The plough evidently first expanded it and now appears to be reducing it [3]. Overall, careful analysis of the prospects does not provide much confidence that technology will save us [25] or that gross domestic product can be disengaged from resource use [26].

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2. Do current trends portend a collapse?

What is the likelihood of this set of interconnected predicaments [27] leading to a global collapse in this century? There have been many definitions and much discussion of past ‘collapses’ [1,3,2831], but a future global collapse does not require a careful definition. It could be triggered by anything from a ‘small’ nuclear war, whose ecological effects could quickly end civilization [32], to a more gradual breakdown because famines, epidemics and resource shortages cause a disintegration of central control within nations, in concert with disruptions of trade and conflicts over increasingly scarce necessities. In either case, regardless of survivors or replacement societies, the world familiar to anyone reading this study and the well-being of the vast majority of people would disappear.

How likely is such a collapse to occur? No civilization can avoid collapse if it fails to feed its population. The world's success so far, and the prospective ability to feed future generations at least as well, has been under relatively intensive discussion for half a century [3340]. Agriculture made civilization possible, and over the last 80 years or so, an industrial agricultural revolution has created a technology-dependent global food system. That system, humanity's single biggest industry, has generated miracles of food production. But it has also created serious long-run vulnerabilities, especially in its dependence on stable climates, crop monocultures, industrially produced fertilizers and pesticides, petroleum, antibiotic feed supplements and rapid, efficient transportation.

Despite those food production miracles, today at least two billion people are hungry or poorly nourished. The Food and Agriculture Organization estimates that increasing food production by some 70 per cent would be required to feed a 35 per cent bigger and still growing human population adequately by 2050 [41]. What are the prospects that H. sapiens can produce and distribute sufficient food? To do so, it probably will be necessary to accomplish many or all of the following tasks: severely limit climate disruption; restrict expansion of land area for agriculture (to preserve ecosystem services); raise yields where possible; put much more effort into soil conservation [3]; increase efficiency in the use of fertilizers, water and energy; become more vegetarian; grow more food for people (not fuel for vehicles); reduce food wastage; stop degradation of the oceans and better regulate aquaculture; significantly increase investment in sustainable agricultural and aquacultural research; and move increasing equity and feeding everyone to the very top of the policy agenda.

Most of these long-recommended tasks require changes in human behaviour thus far elusive. The problem of food wastage and the need for more and better agricultural research have been discussed for decades. So have ‘technology will save us’ schemes such as building ‘nuclear agro-industrial complexes’ [42], where energy would be so cheap that it could support a new kind of desert agriculture in ‘food factories’, where crops would be grown on desalinated water and precisely machine fertilized. Unhappily, sufficiently cheap energy has never been produced by nuclear power to enable large-scale agriculture to move in that direction. Nor has agriculture moved towards feeding people protein extracted from leaves or bacteria grown on petroleum [43, pp. 95–112]. None of these schemes has even resulted in a coordinated development effort. Meanwhile, growing numbers of newly well-off people have increased demand for meat [44], thereby raising global demand for feedgrains.

Perhaps even more critical, climate disruption may pose insurmountable biophysical barriers to increasing crop yields. Indeed, if humanity is very unlucky with the climate, there may be reductions in yields of major crops [45], although near-term this may be unlikely to affect harvests globally [46]. Nonetheless, rising temperatures already seem to be slowing previous trends of increasing yields of basic grains [45,47], and unless greenhouse gas emissions are dramatically reduced, dangerous anthropogenic climate change [48] could ravage agriculture. Also, in addition to falling yields from many oceanic fish stocks because of widespread overfishing [49], warming and acidification of the oceans threaten the protein supply of some of the most nutritionally vulnerable people [50], especially those who cannot afford to purchase farmed fish.

Unfortunately, the agricultural system has complex connections with all the chief drivers of environmental deterioration. Agriculture itself is a major emitter of greenhouse gases and thus is an important cause of climate disruption as well as being exceptionally vulnerable to its consequences. More than a millennium of change in temperature and precipitation patterns is apparently now entrained [51], with the prospect of increasingly severe storms, droughts, heat waves and floods, all of which seem already evident and all of which threaten agricultural production.

Land is an essential resource for farming, and one facing multiple threats. In addition to the serious and widespread problems of soil degradation, sea-level rise (the most certain consequence of global warming) will take important areas out of production either by inundating them (a 1 m rise would flood 17.5% of Bangladesh [52]), exposing them to more frequent storm surges, or salinizing coastal aquifers essential for irrigation water. Another important problem for the food system is the loss of prime farmland to urbanization, a trend that seems certain to accelerate [53] as population growth steadily erodes the per capita supply of farmland.

The critical importance of substantially boosting the inadequate current action on the demographic problem can be seen in the time required to change the trajectory of population growth humanely and sensibly. We know from such things as the World War II mobilizations that many consumption patterns can be altered dramatically within a year, given appropriate incentives [54]. If food shortages became acute, then a rapid reaction would ensue as hunger became much more widespread. Food prices would rise, and diets would temporarily change (e.g. the number of meals consumed per day or amount of meat consumed) to compensate the shortage. Over the long term, however, expanding the global food supply and distributing it more equitably would be a slow and difficult process. Even though a major famine might well provoke investment in long-needed improvements in food production and distribution, they would take time to plan, test and implement.

Furthermore, agriculture is a leading cause of losses of biodiversity and thus of the critical ecosystem services supplied to agriculture itself (e.g. pollination, pest control, soil fertility, climate stability) and other human enterprises. Farming is also a principal source of global toxification, as has been clear since the days of Carson [55], exposing the human population to myriad subtle poisons. These pose further potential risks to food production.

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3. What needs to be done to avoid a collapse?

The threat from climate disruption to food production alone means that humanity's entire system for mobilizing energy needs to be rapidly transformed. Warming must be held well below a potential 5°C rise in global average temperature, a level that could well bring down civilization [56]. The best estimate today may be that, failing rapid concerted action, the world is already committed to a 2.4°C increase in global average temperature [57]. This is significantly above the 2°C estimated a decade ago by climate scientists to be a ‘safe’ limit, but now considered by some analysts to be too dangerous [58,59], a credible assessment, given the effects seen already before reaching a one degree rise. There is evidence, moreover, that present models underestimate future temperature increase by overestimating the extent that growth of vegetation can serve as a carbon sink [60] and underestimating positive feedbacks [61].

Many complexities plague the estimation of the precise threats of anthropogenic climate disruption, ranging from heat deaths and spread of tropical diseases to sea-level rise, crop failures and violent storms. One key to avoiding a global collapse, and thus an area requiring great effort and caution is avoiding climate-related mass famines. Our agricultural system evolved in a geological period of relatively constant and benign climate and was well attuned to twentieth-century conditions. That alone is cause for substantial concern as the planet's climates rapidly shift to new, less predictable regimes. It is essential to slow that process. That means dramatically transforming much of the existing energy mobilization infrastructure [62] and changing human behaviour to make the energy system much more efficient. This ispossible; indeed, sensible plans for doing it have been put forward [63,64], and some progress has been made. The central challenge, of course, is to phase out more than half of the global use of fossil fuels by 2050 in order to forestall the worst impacts of climate disruption, a challenge the latest International Energy Agency edition of World Energy Outlook makes look more severe [65]. This highlights another dilemma. Fossil fuels are now essential to agriculture for fertilizer and pesticide manufacture, operation of farm machinery, irrigation (often wasteful), livestock husbandry, crop drying, food storage, transportation and distribution. Thus, the phase-out will need to include at least partial substitution of non-fossil fuels in these functions, and do so without greatly increasing food prices. More

 

 

Friday, July 12, 2013

Re-Mineralizing Soils with Bio-Fertilizer

Working with damaged soils can be a huge challenge. In the world we live in today, it’s hard to find soils that haven’t been damaged through agricultural or urban misuse.

If you are one of those lucky few who stumbled on a piece of land that already had pristine, rich deep and loamy soils than rejoice because you need not read any further… Still here? Yea, thought so. Most of us in permaculture design are working with or at least, have started out with, damaged, desiccated, mineral depleted, lifeless soils. One way or another, we have been tasked with reviving our soils from generations of abuse. But how do we return the basic building blocks of life to the soil quickly and efficiently so that we can get on with the high yielding polycultures we keep dreaming about? Enter — Bio-Fertilizer!

While interning at the Permaculture Research Institute Zaytuna Farm, I got my first taste (I did not actually taste it… and I don’t recommend anyone else try to taste it – it’s for the soils not the gut) of soil remineralization through Bio-Fertilization. During a Soil Biology course with Paul Taylor, we learned about compost, compost tea, and the relationships between various soil microorganisms. One piece that clearly stuck out for me was the understanding of the role of anaerobic versus aerobic microbes within this complex life web.

Working with damaged soils can be a huge challenge. In the world we live in today, it’s hard to find soils that haven’t been damaged through agricultural or urban misuse. If you are one of those lucky few who stumbled on a piece of land that already had pristine, rich deep and loamy soils than rejoice because you need not read any further… Still here? Yea, thought so. Most of us in permaculture design are working with or at least, have started out with, damaged, desiccated, mineral depleted, lifeless soils. One way or another, we have been tasked with reviving our soils from generations of abuse. But how do we return the basic building blocks of life to the soil quickly and efficiently so that we can get on with the high yielding polycultures we keep dreaming about? Enter — Bio-Fertilizer!

While interning at the Permaculture Research Institute Zaytuna Farm, I got my first taste (I did not actually taste it… and I don’t recommend anyone else try to taste it – it’s for the soils not the gut) of soil remineralization through Bio-Fertilization. During a Soil Biology course with Paul Taylor, we learned about compost, compost tea, and the relationships between various soil microorganisms. One piece that clearly stuck out for me was the understanding of the role of anaerobic versus aerobic microbes within this complex life web. More

 

Thursday, June 20, 2013

SASSI Representative Attending International Development & Social Entrepreneurship Permaculture Course

International Development & Social Entrepreneurship Permaculture Course at home at Quail Springs

Permaculture is an integrated design system that provides a framework for consciously designed landscapes that provide diversity, stability, and resilience for individuals and communities. Permaculture is in 160 countries with many thousands of grassroots projects on-the-ground. This course will assist individuals and organization with integrating the following topics into your development projects:

  • Increased Food Security
  • Community-Based Development
  • Waste Cycling
  • Sustainability Education
  • Clean Water and Drought Proofing
  • Health and Nutrition
  • Sustainable Vocations & Enterprise

We’re pleased that Warren Brush will be teaching with us back home at Quail Springs in Southern California, coming up June 24 - July 7, for our annual Permaculture Design Course for International Development & Social Entrepreneurship.
There are so many opportunities right now in the conscious redesign of our human living systems so that they harmonize with nature. The future is bright for ecoprenuers who can see and creatively meet the converging patterns in restoring and making vibrant our bio-regional natural and social capital that has been so heavily denuded by a globalized system of irresponsible commerce. It is my hope and life’s work to support individuals in stepping into their inherent gifts and to become a part of the (r)evolution that is essential for us to support the health and well being of all future generations through living life now in a sustainable and equitable manner."
Warren Brush

Joining Warren is Joseph Lentunyoi of PRI Kenya, a practitioner of organic agriculture and permaculture advisor/trainer from Kenya and the Maasai tribe. This course is bringing together a stellar array of guest instructors including Cathe Fish, Jeremiah Kidd, Jeanette Acosta, Loren Luyendyk, Brenton Kelly, and Thomas Cole. The participants in this course include professional and students from around the US and the world (including the Cayman Islands), with a diverse set of experiences, projects and interests to share. More



 

Monday, June 10, 2013

Istanbul: Here I come

I am off to Istanbul tomorrow to join the Climate Reality Leadership Corps with former Vice-President Al Gore. I want to help change the world and raise awareness of climate change. After four years of trying I have finally been invited to undertake the training.

All around the world, members of the Climate Reality Leadership Corps trained by Chairman and former Vice President Al Gore are standing up and making a difference on the climate crisis. They’re leading by example, speaking to their communities about how climate change affects their daily lives—and what we can do to solve it. They’re appearing in the media, activating social networks, and—most of all—inspiring people everywhere to join us in confronting the defining issue of our time.


I have not been in Istanbul since 1976 so it will be good to be back and revisit some of the wonderful places to see. I am staying in the old city close to the Blue Mosque. One of the other places I want to see is the Basilica Cistern given my interest in water harvesting and storage.

This cathedral-size cistern is an underground chamber approximately 138 metres (453 ft) by 64.6 metres (212 ft)[5] - about 9,800 square metres (105,000 sq ft) in area - capable of holding 80,000 cubic metres (2,800,000 cu ft) of water. The ceiling is supported by a forest of 336 marble columns, each 9 metres (30 ft) high, arranged in 12 rows of 28 columns each spaced 4.9 metres (16 ft) apart. The capitals of the columns are mainly Ionic and Corinthianstyles, with the exception of a few Doric style with no engravings. One of the columns is engraved with raised pictures of a Hen's Eye, slanted braches, and tears. This column resembles the columns of the Triumphal Arch of Theodosius I from the 4th century (AD 379-395), erected in the 'Forum Tauri' Square. Ancient texts suggest that the tears on the column pay tribute to the hundreds of slaves who died during the construction of the Basilica Cistern. The majority of the columns in the cistern appear to have been recycled from the ruins of older buildings (a process called 'spoliation'), likely brought to Constantinople from various parts of the empire, together with those that were used in the construction of Hagia Sophia. They are carved and engraved out of various types of marble and granite.[6]

Fifty-two stone steps descend into the entrance of the cistern. The cistern is surrounded by afirebrick wall with a thickness of 4 metres (13 ft) and coated with a waterproofing mortar. The Basilica Cistern's water came from the Eğrikapı Water Distribution Center in the Belgrade Forest, which lie 19 kilometres (12 mi) north of the city. It traveled through the 971 metres (3,186 ft)-long Valens (Bozdoğan) Aqueduct, and the 115.45 metres (378.8 ft)-long Mağlova Aqueduct, which was built by the Emperor Justinian.[7]

The cistern has the capacity to store 100,000 tons of water, despite being virtually empty today with only a few feet of water lining the bottom.

The weight of the cistern lies on the columns by means of the cross-shaped vaults and round arches of its roof.


The Basilica Cistern has undergone several restorations since its foundation. The first of the repairs were carried out twice during the Ottoman State in the 18th century during the reign of Ahmed III in 1723 by the architect Muhammad Agha of Kayseri. The second major repair was completed during the 19th century during the reign of Sultan Abdulhamid II (1876–1909). Cracks to masonry and damaged columns were repaired in 1968, with additional restoration in 1985 by the Istanbul Metropolitan Museum. During the 1985 restoration, 50,000 tons of mud were removed from the cisterns, and a platforms built throughout to replace the boats once used to tour the cistern. The cistern was opened to the public in its current condition on 9 September 1987. In May 1994, the cistern underwent additional cleaning.

I believe that water security is going to be a large issue in the future and have been unfertaking a sturdy of of traditional methods of harvesting and storing water, methods with do not require huge amounts of energy.

 

Sunday, June 9, 2013

Our Name and URL

Water is the essence of sustainability in an arid climate and hence I have named this blog in honor of this amazing and ancient Iranian method for transporting water.

A qanāt (from Arabic: قناة, in Persian: کاریز kariz) is a water management system used to provide a reliable supply of water for human settlements and irrigation in hot, arid and semi-arid climates.

Qanat Niavaran in Iran

Qanats are also called kārīz (or kārēz from Persian: كاريز) (Iran, Afghanistan, Pakistan and Central Asia, derived from Persian: كاهریز), kahan(from Persian: کهن), kahriz/kəhriz (Azerbaijan); khettara (Morocco); galería (Spain);falaj (United Arab Emirates and Oman); Kahn (Baloch) or foggara/fughara (North Africa). Alternative terms for qanats in Asia and North Africa are kakuriz, chin-avulz, and mayun. Common variants of qanat in English include kanat, khanat, kunut, kona,konait, ghanat, ghundat.

The qanat technology is known to have been developed by the Persian people sometime in the early 1st millennium BC and to have spread from there slowly west- and eastward.

The value of a qanat is directly related to the quality, volume and regularity of the water flow. Much of the population of Iran and other arid countries in Asia and North Africa historically depended upon the water from qanats; the areas of population corresponded closely to the areas where qanats are possible. Although a qanat was expensive to construct, its long-term value to the community, and thereby to the group that invested in building and maintaining it, was substantial.1

Water is the first sustainer of life, human life, wild life and the biosphere. It sustains agriculture and thereby food security. The purpose of this blog is to advocate, teach and demonstrate holistic ways of designing human environments and creating self sustaining communities using Permaculture techniques.