Showing posts with label forestry. Show all posts
Showing posts with label forestry. Show all posts

April 14, 2009

Join ACORE's Biomass Coordinating Council

The Biomass Coordinating Council of the American Council of Renewable Energy is an ever-present resource and meeting place for biomass professionals - or anyone who wishes to be engaged in the issues at the heart of emerging biomass renewable energy industries. At the helm of the council is the renowned Bill Holmberg. Below is his recent appeal for members that explains the scope and objectives of this group for 2009. I highly recommend attendance at their events where you can meet many of the most respected movers and shakers of this industry.

The Biomass Coordinating Council (BCC) is formed under the auspices of the American Council On Renewable Energy (ACORE), a 501(c)(3), non-profit organization based in Washington, D.C. BCC is working to accelerate the adoption of renewable biofuels, biopower, and biobased products into mainstream American society through work in policy initiatives, convening, networking, and communications. BCC's goals include reducing America's dependence on oil, creating a cleaner environment, and expanding markets for rural America.

Scope

BCC promotes all renewable and sustainable uses of biomass. BCC supports sustainability measures such as water conservation and soil enhancement, and the use of all biomass feedstocks including waste streams.

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Biomass Coordinating Council (BCC)

In 2007 and 2008 biofuels and biopower represented about half of the renewable energy produced in the United States. It is certain biomass will play a fundamental role in “Renewing America” in 2009. However, we must unite biomass stakeholders to ensure biomass sustainability through optimized land use, vitalized soil and water management.

To do this we need to properly enhance and sustain the 6Fs of the Biomass Wheel, in addition to four major spokes; Project Development and Finance, Advanced Fuel Vehicles, Plug-in Hybrids with multi-fuel engines and Land Use Management. To do this, the BCC intends to engage its members - working collaboratively in advancing all involved individuals, businesses and pertinent organizations in developing informational and political support systems.

The BCC understands the importance in integrating this effort to unify and organize members of the BCC and other biomass stakeholders.

To strengthen this integrated effort, the BCC has set the following goals for 2009:

• Establish co-chairs representing biomass stakeholders corresponding to the 6Fs of the Biomass Wheel; food, feed, fuel, fiber, fertilizer and feedstock for chemicals, Project Development and Finance, Advanced Fuel Vehicles and Plug-in Hybrids with multi-fuel engines and Land Use Management
• Hold monthly webinars similar to the American Bar Association
• Submit foundation grants to expand the capacity of the BCC program
• Continue to support the formation of additional Councils throughout the world on Renewable Energy, with a focus in developing countries
• Continue to expand and enhance bioenergywiki.org
• Continue to support the Admiral Thomas H. Moorer Forum on Energy Security
• Advance the concept of uniting Veterans in support of the “Green Revolution” as articulated by Thomas Friedman
• Launch a Biomass Power and Thermal Energy Committee under the BCC
• Support the launch and development of an ACORE National/Energy Security Committee
• Fully support ALL of ACORE’s contingences
• Double the membership of the BCC
• Overall, enhance membership, functions and opportunities of the BCC

Accomplishments in 2008

The BCC met twice in 2008–both at the Washington International Renewable Energy Conference (WIREC) in March 2008 and at the Phase II Policy Conference on Capitol Hill in December 2008. The topics of both meetings featured the development of the great need for more integrated biomass industries. It was also decided to proceed with a committee structure as outlined in the Goals for 2009.

Made extensive efforts to counter the GMA/ADI funded PR attacks on the ethanol industry. Today, the issue is less volatile due rising fuel costs and the hard work of a number of our members, but it is far from resolved.

On December 9th 2008, we helped host the Thomas H. Moorer Military Energy Security Forum at the National Defense University which determined the need for continued advancement of Renewable Energy and energy efficiency in the Department of Defense and the military services at home and abroad.

We continued our tradition of helping small non-profits get off the ground, contributing our support and time to the Latin American and Caribbean Council On Renewable Energy, Renew the Earth, Remineralize the Earth, International Biochar Institute, and others.

The BCC provided extensive support for ACORE’s Washington’s International Renewable Energy Conference (WIREC), Wall Street Renewable Energy Finance Forum (REFF-Wall Street), Renewable Finance Conference in Seattle (REFF-West) and Phase II on Capitol Hill.

We also continued the support of the bioenergywiki.org and a series of Biomass Committees under the BCC.

BCC Membership increased by 48% in 2008.

How to Join the Biomass Coordinating Council: To Join this committee contact Taylor Marshall at marshall@acore.org.

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February 12, 2009

"Fuel" is a Galvanizing Vehicle

"Fuel" is a film for our time - and also winner of the 2008 Sundance Audience Award for Best Documentary (see trailer here). It may help America wake up to the inexorable consequences of its fossil fuel addiction the way that "An Inconvenient Truth" did to global warming.

"Fuel" is the end product of an eleven year odyssey by Director Josh Tickell in his sunflower festooned, diesel Winnebago called Veggie Van. The traveling show that accompanies the movie release promises to capture attention and stimulate grassroots demand to replace fossil thinking, process, and fuels with renewable energy. "Fuel" could become the communications vehicle that educates the public at large of the liabilities associated with fossil fuels and the benefits of home grown alternatives.

The current film is 111 minutes long and full of geology, biology, physics, politics, and history - most of it personal. It is first and foremost the perspective of a 34 year who grew up not knowing any better. He didn't know that he couldn't use the balance of his college student loans to buy a diesel vehicle. He didn't know whether there would be a low-budget, sustainable way to convert restaurant grease and vegetables into fuel to power his transport. He couldn't have imagined that he would spend the next eleven years RVing America. To what end? To what purpose? Quite frankly, when you're 22, who cares.

All he knew was that he wanted to find out if there was a clean alternative to the paradigm that has resulted in the environmental and health disaster of the bayous of his family's native Louisiana. This region, once home to Cajun culture and bayou ecology, is now dominated by the brown fields of the petro-industry with air, land, and water quality contamination that more than likely will never return to normal. In a stark section of the film about hurricane Katrina, Josh shows an on-land oil spill the size of the Exxon Valdez that was left in the hurricane's wake - yet never reported in the mainstream media. Why not? Clearly, the petro industry is a "sacred cow" in the state.

I doubt if Forest Gump traveled as far as Josh did crisscrossing America, but both engendered the same kind of popular fascination. It's a great story that captures the imagination of all generations. Talk about "the audacity of hope" - Josh's trek is it. A personal journey that is an affront to Luddite thinking and entrenched interests.

While the duplicity of the oil industry is on display, this isn't a rant against their lack of integrity and responsibility. It is a call to action for people to seek alternatives and support them with their purchases. To hold their leaders to a higher standard. To demand research, development, and deployment of an infrastructure that will support a paradigm shift to renewable fuels and power.

It is also a great example of the power of the individual to become a "one man army." By using event and modern media, the tools are at hand for creative, insightful individuals to leverage profound effect with relatively little means.

It is no surprise that such an individual collected such a following among celebrity activists who are recorded in the film - Woody Harrelson, Julia Roberts, Sheryl Crow, Larry "JR" Hagman, Vinod Khosla, Willie Nelson, Robert F. Kennedy Jr., Larry David, Sir Richard Branson, and others. Are they experts? Most aren't, but they want to use their celebrity to advance causes they believe receive too little attention. And our energy options are perhaps the most important discussion in the country.

In one of the more educational parts of the movie, an animated treatment spells out the many ways we can substitute sustainable fuel alternatives for oil. Josh is clearly a biodiesel advocate, but he doesn't stop there. An oil barrel is carved into sections that are replaced by other alternatives - biomass, solar, wind, tidal, energy efficiency, and others.

Speaking of education, the "Veggie Van" that educated America as it toured the highways and byways now has a big brother - the BIG GREEN ENERGY BUS. According the the www.thefuelfilm.com website:

The Big Green Energy Bus is a mobile education laboratory featuring the latest interactive technology in sustainable energy including solar, conservation, energy efficiency, water recycling, thermal heat and green appliances.

FUEL’s Big Green Bus Project gives students hands on experience with green energy - providing them with fundamental understanding of how they can use green energy in their homes, in schools and in vehicles.

Upon entering the bus, students are greeted with a member of our certified “Green Team.” The Green Team takes students through each “Learning Station” explaining the function of the systems in the bus. Students have the opportunity to switch on and off components of the solar display and see how much energy is saved by using energy efficient lightbulbs, how to turn sewage into fuel, how solar panels work, how to use the internet to access green energy information, how to make and use biodiesel, how to compost, how to build a simple grey water recycling system, and how to turn America’s unhealthy school buses into clean green buses like this one!

Plans are in the works to pare the original movie to 45 minutes and distribute it for free through schools whose students can view the shorter film during class time or assemblies.

I recommend that readers watch for this film as it is slowly introduced at theaters around the country. You will witness a consequential film with character, credibility, and relevance too rarely seen in American cinema.

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September 23, 2008

Comments on Friedman's "Hot, Flat, and Crowded"

Thomas Friedman has a terrific platform from which to interview energy experts globally, write opinion pieces that are distributed through the New York Times, and participate in the production of cable television documentaries. Occasionally he pumps out a book that coalesces all of his research and synthesizes his prescriptions for solving the energy, environment, and global warming challenges that face us.

His The World is Flat book documented the changes in demographics and economic parity that will define the global rise of the middle class. Wonderful on the face of it, the consequences of this metamorphosis could challenge America's position and security as the leading consumer nation in the world - leading to competition for resources with developed and currently under-developed countries worldwide.

Since the release of that book (in 2005) the stakes have risen with an acceleration of demand for fossil energy, heightened concern about the global warming impacts of human behavior, and the sharp spike in gas prices - not to mention the crisis on Wall Street.

This book Hot, Flat, and Crowded takes on a broader perspective and a sharper call to action. The broader perspective intends to address the dual-headed energy and environment challenge with the clean tech alternatives he particularly espouses - solar, wind, and energy efficiency. His call to action compares the energy lethargy of the fractious U.S. policymaking machine with the frantic and command structured action of the Peoples Republic of China.

My primary reservation about the book is that it has a typically urban perspective on the problems without giving rural world economies (particularly in developed countries) their due. Friedman believes that ethanol subsidies are bad policy - in spite of the fact that the ethanol producers of America reflect the most immediate example of entrepreneurism contributing and innovating new solutions. He also doesn't distinguish between corn ethanol and cellulosic regarding the value of subsidies.

And then he decries policymakers for not committing to long-term guarantees like the production tax credit for solar and wind. What's bad for the goose is bad for the gander. Pulling the ethanol subsidies out from under any kind of ethanol developments would set a bad precedent impacting investor confidence.

Chapter 18

That being said, Friedman's website allows readers to contribute to the next edition of the book! A project he calls "Chapter 18" seeks reader input:

Hot, Flat, and Crowded has seventeen chapters. What's Chapter 18? Chapter 18 will be a completely new chapter that I’ll add to the next edition of the book: Version 2.0. In it I hope to include the best ideas and proposals sent in from readers: ideas about clean energy, energy efficiency, and conservation; about petropolitics and nation-building in America; about how we can help take the lead in the renewal of our country and the Earth alike by going Code Green. I am eager for your suggestions — please post them here.

So I sent in my two cents worth and I suggest you do the same. Here's what I wrote:

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Loved your new book - I recommend that all of my colleagues read it.

My only disappointment is that you almost completely left out discussion of biomass conversion technologies (CTs) - the single biggest source of renewable power in the U.S. today (more than hydroelectric, solar, wind, and geothermal combined).

Wind and solar are carbon neutral. Plants are carbon negative and their biomass can be converted to directly replace fossil liquids for fuels and fossil solids for baseload power.

Wind and solar will not revive the decentralized rural economies of the world the way that bioenergy will (reference 25x'25 and ACORE's Biomass Coordinating Council).

I have come to the opinion that the key to sustainably sourcing biomass for CTs is finding waste streams and disaster debris that has a social cost attached to it (and very often a tipping fee or government incentive to remove it). This biowaste needs to be cleaned up before it decays into methane, CO2, and other GHGs. I include in these waste streams (1) wildfire salvage wood in CA, (2) hurricane debris and forest knockdown in the Gulf states, (3) mountain pine beetle infested wood in British Columbia and Colorado, and (4) unrecycled MSW at all the major cities. These problem accumulations of biomass are massive and will get much worse with "global weirding."

California's AB32 - the Global Warming Solutions Act - has entrusted its Air Resources Board to devise and execute solutions to reduce GHG emissions in California. CARB has fashioned a Scoping Plan and sought comments from Californians at large. I have written an article with links to the three comments I made based on my research and travels and invite you to check them out.

One comment advocates reducing significant amounts of GHG by thinning forests to preempt unprecedented "megafires", salvage carbon laden tree remains for conversion, and replant forests to sequester CO2 anew. You should interview Sen. Feinstein about the pitifully low amount of forest management work that has been accomplished since the passage of her Healthy Forest Initiative Act of 2003. Only 77,000 acres have been treated out of 20 million acres funded. This institutional lethargy is largely because there is no forest products industry left in those forests to buy the wood which would fund the programs. (BIOstock Blog)

Another comment focuses on diverting unrecyclable wastes (40 million tons/year in CA alone) from landfills by instead using CTs to produce biopower and biofuels at the Municipal Sorting Facilities (as L.A. is planning to do with its RENEW L.A. plan). (BIOwaste Blog)

My third comment is titled Challenge the Status Quo which aligns with your BANANA (Build Absolutely Nothing Anywhere, Not Anytime) lament. Too much current policymaking and regulations handicap initiative for action. For instance, thermochemical CTs are hogtied with the same EIA and LCA impediments as landfills (which means that it takes 5 to 10 years to permit them). As a consequence, the status quo wins.

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May 31, 2008

May 2008 Digest

Sustainability: The New Frontier of Renewable Energy

To shift the energy paradigm from fossil fuels to renewable sources of energy will require changes that will impact every tier of society and every acre of the environment. It is clear that skeptics from a broad array of stakeholders will earnestly try to evaluate each new development for its environmental sustainability with Life Cycle Assessments (LCAs) and Environmental Impact Assessments (EIAs).

Concurrently, venture capitalists and Wall Street investors will be assessing their economic sustainability and risk factors. As Barbara Bramble of the National Wildlife Federation and the Roundtable on Sustainable Biofuels concedes "We recognize that we can't achieve environmental sustainability without economic sustainability." It is simply not realistic to expect governments to fund the changes. To be truly economically sustainable, private enterprise will have to be incentivized to do the heavy lifting.

Some of these assessments will result in time consuming and expensive court challenges leading to decision making inertia. In the meantime, urgent problems like forest health and its impact on climate change will spiral out of control while court challenges will negatively impact stakeholder confidence in these projects.

For example, looking at the past 50 years of wildfire acreage in the U.S. shows the growing cost of forest management inertia and delay aggravated, to a great degree, by incessant environmental lawsuits.

According to the Society of American Foresters there were 729 cases brought against the Forest Service during the thirteen years between 1989 and 2002! Out of 20 million acres identified and funded for thinning (through the bipartisan 2003 Healthy Forests Restoration Act) only 77,000 acres have been treated. One could say that the will of the people is being subverted systematically.

The real challenge is not technological - it is building communication links that will enable solutions to be developed, funded, and deployed. Without open dialog the status quo will persist because litigation will create delays and increase the economic cost of implementation.

During the early stages of change the threshold standards for determining sustainability need to be the most flexible. We can't really arrive at ideal solutions without deployments of promising technologies to measure, evaluate, and modify. As each threshold is met, it can be succeeded by more challenging ones.

We need to foster an awareness by all sectors that a balance between environmental and economic sustainability will be required for each phase of implementation.

The following stories highlight the risks of the status quo, demonstrate the need for communications bridge-building, and document examples of stakeholder engagement.

BIOstock Blog--------------
· Woody Biomass: Fuel for Wildfires
· Senators: "Wildfires are a climate change issue, too."
· Ending Obstructive Environmental Lawsuits
· Hurricane Katrina's greenhouse gas legacy
· Forest Service and Sierra Club mark trees together
· Logging trees to save forests from development
· No incentives for national forest waste-to-biofuels
· Senator Wyden: Thinning Forests to Save Them
· Woodchip prices now and in the future
· Links between California Wildfires and GHG emissions
· Up in Smoke: Reforesting California after wildfires
· Engaging Forest Stakeholders through Stewardship Contracting
· Sustainable Forestry for Bioenergy and Bio-based Products

BIOconversion Blog--------------
· Woody Biomass: Feedstock for BioEnergy
· Bioenergy's "Top Five" List
· Coskata and GM partner on syngas to ethanol technology
· WIREC Side Events: Communicating the Truth about BioEnergy
· Responses to Time's unbalanced biofuels bashing
· Coskata to build demonstration plant near Pittsburgh

BIOoutput Blog--------------
· Surprising MPG results for low blends of ethanol

BIOwaste Blog--------------
· Capturing energy from unrecycleable waste

Please forward a link to this digest to anyone you know who would be interested in keeping track of change that will affect us all. They can add their name to the mailing list on the BioConversion Blog.

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November 30, 2007

#1 Bioenergy Can... Convert Solar Energy into Liquid Fuel

Bioenergy is the ONLY renewable technology that can convert solar energy into LIQUID fuel.

If we expect to substitute renewable energy for fossil fuel energy, we are going to have to tackle the challenge of liquid fuels - how do we replace our dependence on oil, diesel, and gasoline with functionally equivalent biofuels? So much of the positive press about renewables focuses on the urban non-liquid technologies - wind and solar - while negative press focuses on rural liquid technology concerns - the ethanol food vs. fuel dilemma, farm subsidies, water consumption, the net energy balance debate, etc.

My suspicion is that the press is catering to an urban readership that is disconnected from the opportunities, concerns, and sensibilities of rural America. Wind and solar are seen as pristine "clean" and "technological" whereas crops and forests are seen as dirty, wasteful, corporate, manipulative, etc. Anyone coming from a rural orientation could say that wind and solar are "unnatural", inefficient, ugly, irrelevant, and not deployable.

The fact is that we need ALL renewable energy technologies because each region has its own climate, resources, liabilities, and energy opportunities. The waste and subsidies of all of them will reduce as they develop and net energy balance will certainly improve (as they have in Brazil). Renewable energy lobbies on Farm and Energy legislation are necessary to move timetables forward against the obstruction coming from fossil energy lobbies.


Before the invention of solar cells, nature developed its own way of capturing solar energy. Photovoltaic solar arrays are good at converting light to electricity but are incapable of storing the electricity. Here are listed some of their other drawbacks:
• Solar cells are expensive to produce & install.
• Their manufacture requires fossil energy and exotic materials.
• Their production is centralized and requires long distance distribution.
• Arrays conduct and radiate the heat they absorb.
• They do not function efficiently on overcast days or at night.
• They are only efficient in certain climates and regions of the world.

Utilizing photosynthesis, leaves are nature’s own “solar cells.” Plants are nature’s “solar arrays” with big advantages over photovoltaic arrays.

• They store solar energy (as sugars).
• They are self-replicating - requiring no fossil fuels in their manufacture.
• They create shade and absorb heat.
• They function 24 hours a day either respiring oxygen or transpiring water.
• They sequester half their weight in carbon from the carbon dioxide they absorb from the atmosphere.
• They create animal and insect habitats and protect streams.
• They enhance landscapes.
• Their roots prevent erosion.
• They are adaptable to various climates and terrains.

In short, bioenergy using photosynthesis offers a much more natural and flexible solution to energy capture than solar energy using photovoltaics.

We now have four ways to convert this stored energy into biofuels.


Besides transesterification to produce biodiesel and sugar fermentation to produce ethanol, we are now deploying two new commercial-scale platforms for creating biofuels from the solar energy stored in biomass.

Cellulosic biomass (plants, wood, and their wastes) can be separated into its component sugars and lignin using enzymatic or acid hydrolysis biochemistry. The sugars can be fermented into ethanol and the lignin combusted to generate heat, steam, and electricity.

A more robust decomposition of feedstock can be achieved through thermochemical means – pyrolysis and gasification. The range and kind of feedstock is vast. Besides biomass it can include municipal solid waste, sludge, tires, petcoke, autofluff and blends of various feedstock. Industrial BioOils are already being produced from woody biomass through pyrolysis. Distilled alcohols like ethanol and methanol can be produced through fermentation or catalysis of the synthesis gas resulting from gasification. These are clean, low-emission technologies.

If we want to replace fossil fuels, no renewable industry other than bioenergy produces liquid fuels.

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This article is the first in a series of five about the unique capabilities of bioenergy.

On November 28th I made a presentation at the Capitol Hill Club to the Biomass Coordinating Council (BCC) of the American Council on Renewable Energy (ACORE) titled "BioEnergy Can Do." My aim was to list what I considered to be the top five unique capabilities of bioenergy that should drive legislative action on Capitol Hill. The five capabilities are:
1. Bioenergy can convert solar energy into liquid fuel.
2. Bioenergy can reduce greenhouse gas emissions.
3. Bioenergy can remediate ecological disasters.
4. Bioenergy can revive depressed economies.
5. Bioenergy can expand energy freedom of choice.

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#2 Bioenergy Can... Reduce Greenhouse Gases

What are the capabilities of bioenergy technologies that make them unique as a means of reducing greenhouse gases?

Bioenergy comes from the processing of biomass. Biomass "refers to living and recently dead biological material that can be used as fuel or for industrial production. Most commonly, biomass refers to plant matter grown for use as biofuel, but it also includes plant or animal matter used for production of fibres, chemicals or heat." (Wikipedia)

The carbon cycle is the sustained transfer of carbon between the atmosphere, geosphere, and hydrosphere and then back again. The current concern about fossil fuels is that they are corrupting the carbon cycle by adding below ground carbon to the above ground cycle. NASA estimates the worldwide amount of fossil fuel carbon added to the atmosphere each year to be a colossal 5.5 billion metric tons (see red graphic above). These are the dread greenhouse gases blamed for global warming. This addition of subterranean carbon to the atmosphere is termed "carbon positive."

It is possible to use fossil fuels in the production of electricity, capture most of the carbon dioxide from the process, and inject it back into the ground. This is called carbon geo-sequestration and it is used primarily to increase oil production by using gas pressure to force deposits of oil to the surface. However, most carbon dioxide from fossil resources - car emissions for example - can't be captured and returned underground (see orange graphic representation above).

One characteristic of renewable energy is that they are, by definition, "carbon neutral" (see gray graphic) - neither adding nor reducing the amount of above carbon used in the carbon cycle. Most forms of renewable energy - solar, wind, hydroelectric, tidal, and geothermal - don't involve the use or conversion of carbon at all.

In contrast to other renewable energy processes, bioenergy involves the conversion and combustion of the carbon content of biomass. Through photosynthesis carbon dioxide is pulled out of the air and stored as sugars (see green cycle above). As long as the carbon stays in the plant or in plant products, the biomass is essentially a carbon sink, temporarily removing the carbon out of the carbon cycle. Through roots, which are not harvested, a good portion of each plant's carbon capture is left in the ground.

If the carbon emissions from combustion are captured and injected into oil fields, then this would be "carbon negative." Unlike fossil fuel emissions, any emissions from biofuel is "carbon neutral" because the carbon was derived from carbon already converted into sugars and cellulose in the biomass. The net effect of bioenergy is at worst carbon neutral but, through best practices of the forest products industry, often carbon negative.

One other option for subterranean sequestration is being researched by agronomists. There is an ancient practice of using the char from burned biomass as a fertilizer or soil amendment for growing crops. This is variously termed terra preta, biochar, or agrichar.

A recent article in the Biopact Blog discusses the four generations of biofuels. It describes recent research into ways to maximize the "carbon negative" impact of bioenergy:

In fourth generation production systems, biomass crops are seen as efficient 'carbon capturing' machines that take CO2 out of the atmosphere and lock it up in their branches, trunks and leaves. The carbon-rich biomass is then converted into fuel and gases by means of second generation techniques. Crucially, before, during or after the bioconversion process, the carbon dioxide is captured by utilizing so-called pre-combustion, oxyfuel or post-combustion processes. The greenhouse gas is then geosequestered - stored in depleted oil and gas fields, in unmineable coal seams or in saline aquifers, where it stays locked up for hundreds, possibly thousands of years.

According to scientists who looked at this concept of 'bio-energy with carbon storage' (BECS) within the context of a strategy to counter 'abrupt climate change', these systems, if applied on a global scale, can take us back to pre-industrial levels of atmospheric CO2. The concept would be more efficient than techniques that are limited to scrubbing CO2 out of the atmosphere without tackling the source of the problem: the combustion of fossil fuels. BECS intervenes at the source and replaces fossil fuels with renewable biomass; the systems scrub CO2 out of the atmosphere while delivering clean energy. As such, they are seen as one of the only low-risk geo-engineering methods that could help us tackle climate change without powering down our societies.

In summary, Bioenergy is the only renewable energy technology that can reduce greenhouse gases.

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This article is the second in a series of five about the unique capabilities of bioenergy.

On November 28th I made a presentation at the Capitol Hill Club to the Biomass Coordinating Council (BCC) of the American Council on Renewable Energy (ACORE) titled "BioEnergy Can Do." My aim was to list what I considered to be the top five unique capabilities of bioenergy that should drive legislative action on Capitol Hill. The five capabilities are:
1. Bioenergy can convert solar energy into liquid fuel.
2. Bioenergy can reduce greenhouse gas emissions.
3. Bioenergy can remediate ecological disasters.
4. Bioenergy can revive depressed economies.
5. Bioenergy can expand energy freedom of choice.

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#3 Bioenergy Can... Remediate Ecological Disasters

There are biomass waste streams throughout the world that could provide the feedstock for future biomass conversion to biofuels. These waste streams are creating some of the most acute environmental problems afflicting society -
Excess biomass in forests – forest density that is 4 to 10 times historic norms – creates conditions that exacerbate droughts leading to forest fires and bug infestations
Excess biomass in urban areas - municipal solid wastes – is getting out of control necessitating bigger landfills that are further away from our urban centers. This excess waste contributes to land, water, and air pollution
• Rural agricultural residues and damaged crops could have a higher value as soil amendments and biomass feedstock.

Add to this list the steadily growing millions of tons of disaster debris from floods, hurricanes, wildfires, etc. that require cleanup. This has become the focus of a federal interdepartmental initiative called the Woody Biomass Utilization Group coordinated by the Departments of Energy, Agriculture and Interior.

To restore forests to a healthy condition, the Forest Foundation recommends a three step, economically sustainable solution that involves private industry who would restore and maintain forest stewardship as part of their operating overhead.
1. First they would be contracted to harvest and sell decaying biomass to pay for forest management
2. Then reforest to a historic model specific to the forest, and
3. They could then mechanically thin vulnerable forests of woody biomass to prevent pronounced exposure to new fires and infestations.

The Forest Service would provide regulatory oversight of the program.

We need to be better stewards of our natural resources. Biomass conversion from waste to energy is a win win that can help to fund proper stewardship. It is clear that government funding without private enterprise will never be sufficient for the task.

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This article is the third in a series of five about the unique capabilities of bioenergy.

On November 28th I made a presentation at the Capitol Hill Club to the Biomass Coordinating Council (BCC) of the American Council on Renewable Energy (ACORE) titled "BioEnergy Can Do." My aim was to list what I considered to be the top five unique capabilities of bioenergy that should drive legislative action on Capitol Hill. The five capabilities are:
1. Bioenergy can convert solar energy into liquid fuel.
2. Bioenergy can reduce greenhouse gas emissions.
3. Bioenergy can remediate ecological disasters.
4. Bioenergy can revive depressed economies.
5. Bioenergy can expand energy freedom of choice.

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#4 Bioenergy Can... Revive Depressed Economies

Bioenergy can revive depressed economies - local, national, and worldwide.

Depressed economies need private investment in healthy industries to build lasting employment.

Fossil energy - with all its societal costs and impact on the environment - is no longer viewed as "cheap." It is seen as an addiction - a wedge that is coming between our communities and their environment. In contrast, a burgeoning bioenergy industry is a way to revive communities by providing businesses that cannot be outsourced while creating purposeful work that brings people together with their natural resources.

Here is a regional snapshot of the renewable energy patchwork that is currently developing thoroughout the continental U.S. The revitalization of the Corn Belt illustrates what could happen in other regions if we choose to expand our bioenergy infrastructure - for example, cellulose-based renewable energy from forests and hybrid crops in the Southeast and marginal lands of the country…

We could develop hundreds of biorefineries, produce billions of gallon of liquid fuel, generate thousands of megawatts of electricity, save billions of dollars in imports, create tens of thousands of jobs, and raise land values enough to revitalize communities.

These are developments that are based on the economy of local supply and logistical support - generally we think in terms of a 75 mile biomass supply radius for each plant. Instead of the existing overly centralized energy paradigm, we would be developing regionally based energy solutions which greatly enhances security.

The forest products industry is already the biggest provider of renewable energy in the country - bigger than hydroelectric - supplying roughly 44% of current bioenergy. This change was initiated during the last major oil crisis in the 70’s but the boilers are not as efficient and clean as they could be. After thirty years they are due for replacement. The capital outlays for upgrading these facilities may mean the closure and outsourcing of much of our forest products industry to other countries.

A year and a half ago the American Forest and Paper Association published a study as part of its forward thinking 2020 Agenda Initiative. It was titled the Forest Products Industry Technology Roadmap. It outlines what alternative technologies are available and develops a scenario for how its members could insert new biochemical and thermochemical conversion technologies into their existing infrastructure to generate new and cleaner profit streams.

The TAPPI conference in Atlanta last May focused industry attention on these new ways to convert wood to biofuels and high value bioproducts like bioplastics and furfural, while cogenerating electricity and centralized heat to power their operations and local communities.

The challenge of reviving dying industries and communities is a major reason that people with tremendous financial resources (like venture capitalists Vinod Khosla, Bill Gates, and others leaders from previous paradigm shifts) are motivated to accept the risks of bioenergy investments. Part of the challenge is making sure that consistent governmental policies will make these investments economically sustainable over the long haul.

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This article is the fourth in a series of five about the unique capabilities of bioenergy.

On November 28th I made a presentation at the Capitol Hill Club to the Biomass Coordinating Council (BCC) of the American Council on Renewable Energy (ACORE) titled "BioEnergy Can Do." My aim was to list what I considered to be the top five unique capabilities of bioenergy that should drive legislative action on Capitol Hill. The five capabilities are:
1. Bioenergy can convert solar energy into liquid fuel.
2. Bioenergy can reduce greenhouse gas emissions.
3. Bioenergy can remediate ecological disasters.
4. Bioenergy can revive depressed economies.
5. Bioenergy can expand energy freedom of choice.

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November 7, 2007

Range Fuels cellulosic ethanol plant groundbreaking

On November 6th, 2007 a who's who of federal and state public servants, alternative energy business representatives, and technologists from all of the country came to the tiny rural town of Soperton, Georgia to participate in the groundbreaking of the country's first commercial-scale cellulosic ethanol facility. It was a milestone for the facility owner, Range Fuels, Inc., and it promises to be the first of many such milestones for the ethanol industry, thermochemical biofuel production, forest-based rural communities, and the U.S. Departments of Energy and Agriculture.

Besides the organizers, the roster of speakers included local elected politicians, Georgia Governor Sonny Perdue, and Secretary of Energy Sam Bodman - whose agency is providing $76 million in funding grants for the installation as part of the 932 Grant program announced last February. Tom Doerr, the Undersecretary of the Department of Agriculture also attended.

Hosting the groundbreaking was the President of Range Fuels, Mitch Mandich (pictured at right with Vinod Khosla), who assured the audience of his company's commitment to sustaining Soperton's forest assets and ecology.

"The environmental sensitivity of renewable resources are key to our country. So for every tree removed here in Georgia, two trees are planted. When you put millions of dollars in the ground in a plant, it's important that it have the feedstock to support it and we have it here. That plant will have a minimal impact on land. We have 281 acres here of which we will probably be using less than 15. The rest of the acreage will be open space and wildlife habitat. Behind me we have already built an environmental trail and an ecology trail through the wetlands so when we have visitors to the plant we will also have a nature tour for them."

He cited and thanked numerous business partners in the audience who have helped with the siting, environmental compliance, logistics, and construction of the final plant. These include CH2M Hill and Price BIOstock Services.

Mandich introduced the principal investor of the company - venture capitalist Vinod Khosla.
"For a few years now I have said that we need to declare a war on oil. Corn ethanol started that war and without corn ethanol we wouldn't be making the investments that make cellulosic ethanol possible. As the war has escalated in my view, we need better weapons. Cellulosic ethanol is the weapon we need to scale this wall and finally replace oil. Every assumption about oil and petro-based fuel is based on the fact that we have cost-effective alternatives to oil. Within a few years ethanol from this plant, unsubsidized, will be cheaper than oil even after it drops to half its current price. Renewable fuels will be cheaper than their fossil alternatives and we will create competition for oil and will balance the monopoly of oil.

Construction will start immediately with approximately 200 workers involved over the next 4 to 5 months.

Here is the entirety of the Range Fuels press release about this event:

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Range Fuels Breaks Ground on the Nation’s First Commercial Cellulosic Ethanol Plant
U.S. Secretary of Energy and Georgia Governor Attend Groundbreaking Celebration

Broomfield, CO and Soperton, GA – November 6, 2007 – Range Fuels, Inc. announced today that it is breaking ground on the nation’s first commercial cellulosic ethanol plant located in Treutlen County, Georgia, near the town of Soperton. Range Fuels, one of six companies selected by the Department of Energy (DOE) for financial support in building a commercial cellulosic ethanol plant, will be the first to break ground.

The groundbreaking event is being hosted on the future site of Range Fuels’ Soperton Plant. The event will feature federal, state, city and county officials, including the U.S. Secretary of Energy, Samuel W. Bodman, and the Governor of Georgia, Sonny Perdue.

Range Fuels’ Soperton Plant will use wood and wood waste from Georgia’s pine forests and mills as its feedstock and will have the capacity to produce over one hundred million gallons of ethanol per year. Construction of the first 20 million-gallon-per-year phase is expected to be completed in 2008.

As part of its $76 million Technology Investment Agreement with the DOE, Range Fuels will receive $50 million based upon the project construction schedule for the first 20-million-gallon-per-year phase of its Soperton Plant. The remainder of the grant, $26 million, will be provided for construction of the next phase of the project.

Range Fuels selected Georgia for its first plant based upon the state’s robust wood products industry supported by Georgia’s vast sustainable and renewable forest lands. The state’s environmental sensitivity and responsible stewardship of its forest lands have created resources that allow Georgia to support up to two billion gallons per year of cellulosic ethanol production through the application of Range Fuels’ technology.
"Range Fuel's production of cellulosic ethanol from wood materials will make Georgia a national leader in innovative alternative energy production," said Georgia Governor Sonny Perdue. "This project, and others like it, will boost economic development in rural Georgia and reduce our state's dependence on foreign oil."

“The state of Georgia has provided us with an excellent opportunity to locate our first plant using its abundant, renewable forest resources as feedstock. Our technology transforms the wood and wood waste from Georgia’s millions of acres of woodlands into ethanol, a key source of transportation fuel,” said Mitch Mandich, CEO of Range Fuels. “Range Fuels’ focus on green, renewable energy will ultimately reduce greenhouse gases, promote energy independence, and create new jobs.”

Range Fuels’ approach is aimed at helping our planet restore its environmental balance. Range Fuels’ technology is self-sustaining and uses the same feedstock to make ethanol as it does to operate its plant, minimizing its reliance on fossil fuels and the consequent production of greenhouse gases. Through Range Fuels’ innovative process for producing cellulosic ethanol, the Soperton Plant will use a quarter of the average water required by corn-based ethanol plants.

In addition, the Soperton Plant has been permitted as a minor source of emissions. Its proximity to both wood supplies and ethanol markets will minimize energy expended in supplying the facility with feedstock and providing ethanol to consumer markets, further demonstrating the low-impact, environmentally-friendly nature of Range Fuels’ technology.

Range Fuels has won the support of many industry and environmental groups including the Renewable Fuels Association, the American Coalition for Ethanol, the Clean Fuels Development Coalition and General Motors.
“Range Fuels’ groundbreaking on its first commercial-scale cellulosic ethanol plant presents an extraordinary opportunity to move the country into the next generation of biofuels that will help improve the environment and secure America’s energy independence,” said Brian Jennings, Executive Vice President for the American Coalition for Ethanol. “Now, more than ever, it is critical for us to pursue clean-burning, homegrown, and cost-effective alternatives to foreign oil. Range Fuels is among the leaders in the biofuels industry and is poised to help us achieve these goals. I congratulate Range Fuels on this important day.”

“This groundbreaking clearly demonstrates that the next generation of biofuels are possible and reinforces that achieving the President’s goal of displacing 20 percent of the nation’s gasoline consumption with alternative fuels by 2017 can become a reality,” said Bob Dineen, President and CEO of the Renewable Fuels Association. “Progress like this will additionally help the environment by reducing greenhouse gas emissions and increasing ethanol production from processes that utilize sustainable supplies of biomass, like residue from timber harvesting and agricultural wastes.”

“On behalf of all the members of the Clean Fuels Development Coalition (CFDC), we congratulate Range Fuels as they take this significant step forward in the development of cellulosic ethanol,” said Doug Durante, Executive Director of the CFDC. “This project will demonstrate that commercial production of cellulosic ethanol made from biomass or plant matter can be a reality. This facility will be one of many helping the country reduce greenhouse gas emissions and move toward energy independence.”

"Range Fuel's investment in this ethanol production facility is an important step toward the next generation of renewable fuels. Cellulosic ethanol has enormous potential for displacing gasoline and reducing emissions," said Beth Lowery, General Motors Vice President of Environment, Energy, and Safety Policy.


About Range Fuels, Inc.
Range Fuels, Inc., is focused on green energy and the production of cellulosic ethanol. The company does not use food products like corn, but rather uses waste materials and other non food sources and turns them into valuable products. The company's innovative technology uses wood chips, municipal waste, paper pulp, olive pits, and more, and converts those materials to ethanol. The company's system, named K2, uses a two step thermo-chemical conversion process. The first step converts the biomass to synthesis gas and the second step converts the gas to ethanol. The company's business model is to design, build, own and operate its plants. The company is privately held and funded by Khosla Ventures, LLC, arguably the top venture firm in the U.S. focusing on alternative, green energy systems. The leadership team melds experience from Silicon Valley's fast-paced, high-tech world, and the technologically intense coal, coal gasification, and gas-to-liquids industries. Range Fuels' vision is to introduce the world to a fuel that's renewable, sustainable, and eco-friendly in its production.

See also the Cleantech Interview with Mitch Mandich, CEO of Range Fuels, Inc.

NPR radio report on cellulosic ethanol and the Georgia groundbreaking.

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September 29, 2007

Woody Biomass: Feedstock for BioEnergy


This article contains the text and some images from the second half of a speech I presented at the Energy from Biomass and Waste conference in Pittsburgh, PA on September 27. It follows from the first half of the presentation titled Woody Biomass: Fuel for Wildfires which shows recent increased wildfire activity and the consequent greenhouse gas emissions from public forests. It suggests that private industry has a strong role to play to help deploy the necessary woody biomass harvesting processes and infrastructure of biomass conversion facilities to make proper forest management economically sustainable.

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Woody Biomass: Feedstock for BioEnergy

I believe that the conversion of biomass to energy represents not only a sustainable, clean alternative to fossil fuel energy but that implementing these emerging technologies can help us solve environmental and ecological challenges of the new millennium.

How can we capture forest fuels to lessen the threat of megafires while simultaneously generating clean, renewable bioenergy?

U.S. Patchwork of Renewable Energy
Right now we are seeing a surge in the development of many decentralized renewable energy installations (click map to enlarge). Wind energy on the coast and wind corridors of the interior, solar energy in the Sun Belt, corn ethanol in the Corn Belt.

But what about the unfilled regions on our patchwork of regional renewable energy projects? What technologies will fit there?

The revitalization of the Corn Belt is illustrative of what could happen in the forest regions of the country-
hundreds of biorefineries, billions of gallon of liquid fuel, stronger feedstock prices, revitalized communities, tens of thousands of jobs, rising land equity and stronger communities.

Photovoltaic vs. Photosynthesis arrays
I come from Studio City, California which is also the home to the environmentalist Ed Begley, Jr. I have had lunch with Ed and seen him give several presentations. At one he stunned his audience. He said “It may surprise many of you to hear that I am a BIG supporter of nuclear energy…" “...as long as it is kept 93 million miles away from Earth.”

Sure enough, Ed has some solar arrays on the roof of his home which convert sunlight into electricity. Here is a picture of him cleaning the arrays because otherwise their efficiency drops dramatically.

I am all for solar cell research to help lower their manufacturing expense and raise their energy conversion efficiency. Solar arrays are good at converting light to electricity but not good at storing the electricity. Here are listed some of their other drawbacks:
• Cells are not renewable
• Expensive to manufacture & install
• Dormant at night
• Cannot store electricity
• Limited climate and regional applicability

I submit that leaves are natures also “solar cells” using sunlight, carbon dioxide, and water to create stored energy in the form of sugar. Trees are “solar arrays” that have many advantages over photo voltaic arrays. They reproduce. They work in many more climatic regions of the world, produce and recycle their own solar collectors (leaves), store their energy in the form of sugars, clean the air of greenhouse gases, transpire water at night, and sequester half their dry weight in combustible carbon.

In so many ways, trees are the perfect solution to global warming and the effort to produce renewable energy.

Woody biomass availability
Let me be clear, when we talk about collecting woody biomass we aren’t talking about logging trees.

The USDA identified woody biomass as small diameter trees and underbrush, the residues of the logging and forest products industries, and urban wood waste. In their Billion Ton Report they estimated that there was over 367 million tons of woody biomass produced each year in the U.S. Here, as abroad, it is the number one renewable energy technology for creating steam, heat, and electricity. And it is growing.

With woody biomass being produced at so many locations throughout the country it is easy to see that their conversion to electricity and biofuels could fill significant patches on our national renewable energy “quilt.”

In fact, for generations, the forest products industry has utilized burning woody biomass to generate steam, heat, and electricity. The biggest drawback with combustion is the emissions it generates - but modern systems include scrubbers for removing toxins and particulate matter. New wood burning systems are being installed to replace coal burning facilities.

As concerns about global warming grows, many companies are looking at gasification systems for more efficient heat recovery and cleaner emissions control. The whole point of gasification systems is to capture emissions so they can be converted into synthesis gas - a clean burning, renewable alternative to natural gas (which is a fossil fuel).

If we add to forest biomass the potential biomass tonnage from growing hybrid poplar and other energy crop trees we could easily see in excess of half a billion tons of woody biomass available for bioenergy conversion each year. Efforts are underway to create new fast growing hybrid trees specifically designed to maximize carbon sequestration, bolster pest, drought, and fire resistance - and streamline processing efficiency.

There is plenty of marginal land throughout the U.S. where hybrid crops could be grown - supplying new energy crop options where other alternatives are not workable. Such “plantations” would help fix the land against erosion, improve water and air quality, and provide enhanced carbon sequestration capacity.

Furthermore, the sugar storage capacity of woody biomass and hybrid trees is a potent source of feedstock for conversion to biofuels. But how do we do that?

Woody biomass conversion technologies
Let’s compare the three generations of conversion technologies for creating biofuels from biomass.


Generation 1 - Sugar Fermentation In sugar fermentation the corn, sugar, or starch is warmed in water with yeast and fermented into an alcohol that is then distilled into pure ethanol. It is a batch process moving from vat to vat that takes approximately 2 days to complete. The primary residues of the process are converted into livestock feed called distiller dried grains (or DDG).

There are concerns about this method of creating ethanol:
1. The feedstock cannot be blended with any other feedstock.
2. The feedstock could be used as food .
3. The amount of energy contained in the ethanol is only slightly more than the energy expended producing it (a factor of 1.3).
4. It is a water-intensive process when you consider the cultivation of the feedstock and the inputs during fermentation.

But, the yield is high and it is a mature technology with over 100 commercial-scale biorefineries in operation and dozens more coming online each year.

Other conversion processes involve converting cellulosic feedstock (like woody biomass) into biofuels. The way that wood stores energy is by photosynthesizing sugars stored in two forms - hemicellulose and cellulose - with a combustible called lignin supplying the fibrous support of the tree.


Generation 2 - Biochemical Cellulosic Conversion The second generation of biomass conversion technologies involves breaking down wood’s molecular bonds using biochemical agents.

The difference between this process and sugar fermentation is the simple addition of the two-day breakdown step (represented in the blue zone). Here enzymes and acids separate the sugars from the lignin - the sugars are fermented and distilled into ethanol while the lignin is combusted to generate steam to heat fermentation. Principal research is focused on developing more efficient enzymes that can be produced at low cost.

Here is how Generation 2 compares with Generation 1.
1. The feedstock can include woody biomass, industrial and urban waste wood.
2. It takes longer but because the sources of cellulose do not require much cultivation and are usually already exist as residues of other processes, so the energy return is roughly five times that of sugar fermentation.
3. It uses more water during the multi-vat process - but there isn’t much water use during forest growth.
4. A major expense is the price of producing the enzymes which include high research overhead and royalties. That price will come down.

There are pilot plants in operation at private and educational research facilities around the world.


Generation 3 - Thermochemical Cellulosic Conversion The 3rd generation technologies use thermochemical processes - primarily gasification or pyrolysis - to break down the biomass into a synthesis gas, or syngas (composed mostly of carbon monoxide and hydrogen), which is converted into ethanol.

Again, a gasifier heats up the feedstock, which can be a blend, with high heat (2,500°F) to create the syngas. Instead of the syngas being sold as a product of gasification, it is exposed to a catalyst or fermented using bacteria that convert it into ethanol and and water.

Range Fuels uses a catalyst to enact the conversion. BRI uses a patented microorganism to ferment the syngas to ethanol.


1. Unlike Generation #1 and #2, the feedstock for generation 3 can be blended with all sorts of alternative raw materials - tires, autofluff, pet coke, municipal solid wastes, etc. - which makes feedstock procurement much more sustainable over the long haul.
2. The specific blend affects the yield with higher energy-content feedstock producing higher yields.
3. It is continuous requiring mere minutes for processing rather than days for generations #1 and #2.
4. It uses very little water - in fact it captures extra water as a product of fermentation.

The Agenda 2020 Technology Alliance of the American Forest and Paper Association recently published the” Forest Products Industry Technology Roadmap.” It illustrates where two conversion steps - one using biochemical and the other thermochemical processes - could be inserted into a standard pulp mill workflow to create new profit streams.

It also forecasts the return the plant management could expect for a typical tons per day volume. This could revitalize the paper and pulp industry. The real key to economic feasibility the commitment of the marketplace to renewable fuels.

In summary …
1. We can limit wildfires by thinning forests
2. Woody biomass stores abundant energy
3. We can use woody biomass to create heat, produce steam, and generate electricity
4. Emerging technologies will produce ethanol from woody biomass
5. Successful deployment of new wood-based technologies can revive stagnant industries
6. New industries can strengthen new communities

Here’s a final thought:

In 1803, Thomas Jefferson signed the Louisiana Purchase - effectively doubling the land area of the United States. He predicted it would take 1,000 years to settle the new territory. We laugh at his miscalculation - after all, it seems that we have settled his land and started to retreat from it - preferring urban life over rural.

But he might have been right. Maybe we are about to engage in renewed settlement of the nation’s rich rural midsection. We have 800 years to go and renewable energy made from woody biomass can play a big role in supplying renewable energy for that future while providing us with the means to manage our environmental sustainability.

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