When evaluating the effect of pretreatment and especially enzymatic hydrolysis of biomass, we normally measure the monomeric sugar produced. At most time, quite a lot of soluble oligomers existing in the hydrolyzates that could not be measured by the standard HPLC analysis, which will lead to lower hydrolysis yield. This can be confirmed by post-dilute acid hydrolysis, showing several fold increase in monomeric sugars (glucose and xylose) yield. The reason for this is that most of the commercial enzyme cocktails are not for global use and need customization for a specific biomass substrate. Some new technology ends up with strains than can work on low DP soluble sugars. Therefore, measurement of the degree of biomass solubilization after pretreatment or/and enzymatic hydrolysis will be useful information for the estimation of the treatments. A weight loss is rough, but quick method.
This blog will talk about the issues about biomass, biofuels and biochemical production from lignocellulosic biomass.
Sunday, April 15, 2012
Tuesday, November 8, 2011
Moderate pretreatment: a practical approach for bioconversion of cellulosic biomass
When pretreating biomass under harsh conditions (extreme pHs and high temperatures), biomass chemical components will degrade into by-products that become inhibitors for the subsequent processing. However, moderate pretreatment can be developed to avoid sugar degradation and toxic compounds formation during pretreatment. As a result, a whole slurry process without inter-stage washing/detoxification can be used, which can significantly reduce capital/operational cost. A moderate pretreatment must remove some lignin but do not break down lignin to simple compounds.It should achieve some defibrillization without much sugar degradation. In a word, It is enough as long as cell wall pores/channels are opened. "Over pretreatment" may improve cellulose accessibility but inevitably cause other chemical components degradation. The right degree of pretreatment is the key.
Thursday, November 3, 2011
The solution to 7 Billion Consuming Resources
On 11/01/2011, the world population hit 7 billion, a warning to the world’s resources: limited food, absolute water scarcity, increasing consumption of non-renewable oil.
One solution: technological advancements and a free market.
One solution: technological advancements and a free market.
- Desalination: to get fresh water from the sea!
- Hybrid and high yield food: Transgenic plants?
- Alternative energy- biofuels,natural power sources like solar and wind may be an alliterative before our fossil fuels run out.
Wednesday, November 2, 2011
Biomass particle size
It is agreed that biomass feedstock particle sizing can impact the economics of cellulosic ethanol commercialization through its effects on conversion yield and energy cost. Physical size reduction can not always achieve expected effect of biomass enzyme digestibility. For example, the thickness of woody biomass play more critical role in chemical pretreatment of wood chips than its length. Defibrillation of grass biomass is more efficient than size reduction in terms of enzymatic hydrolysis.
Therefore, for practical application, an appropriate size reduction needs to be selected based on the biomass type,what chemicals to be used for pretreatment. The smaller does not mean the best!
Monday, October 31, 2011
Xylooligomers are strong inhibitors of cellulose hydrolysis by enzymes
It has been known that xylooligomers are the inhibitors to enzymatic hydrolysis. An customized enzyme cocktails have to be developed and applied on specific biomass substrates. Here are two recently published papers reported their research results on this issue.
Sunday, October 30, 2011
The dominating factor for biomass cellulose accessibility to external enzymes:
To improve biomass cellulose accessibility to external enzymes, pretreatment is often required, which seems to plat the following roles depending on the processing conditions:
Since enzymatic hydrolysis follows the tunneling mechanism: eroding glucose from the inside of cell wall to the outside. Therefore, the pores or channels in cell wall are the dominant factor for the efficiency of enzymatic hydrolysis, i.e. control the rate of diffusion/transport of enzymes and sugar dissolution.
Size reduction by mechanical milling before themo/chemical pretreatment is the worst scenario although the surface area are improved.
- lignin or hemicellulose removal
- destroy cellulose crystal structure,
- open channels/cell wall pores
- increase cellulose surface exposure.
Since enzymatic hydrolysis follows the tunneling mechanism: eroding glucose from the inside of cell wall to the outside. Therefore, the pores or channels in cell wall are the dominant factor for the efficiency of enzymatic hydrolysis, i.e. control the rate of diffusion/transport of enzymes and sugar dissolution.
Size reduction by mechanical milling before themo/chemical pretreatment is the worst scenario although the surface area are improved.
Saturday, October 29, 2011
Direct one-step conversion of ligninocellulosic biomass to hydrogen-enriched biofuel
The common ways for thermal conversion are fast pyrolysis and hydrothermal liquefaction.
· The bio-oils obtained by fast pyrolysis are highly oxygenated complex mixtures, which are viscous, corrosive, and relatively unstable. The high contents of water and oxygenated compounds lead to the low HHV and the significant change of the combustion characteristics. They are not miscible with petroleum-based liquids. There is no efficient route for the upgrading needed to produce a motor fuel.
· The bio-oils obtained by hydrothermal liquefaction are a complex mixture of ketones, aldehydes, phenols, alkenes, fatty acids, esters, aromatics, and nitrogen-containing heterocyclic compounds with high oxygen content and low heating value.
Direct One-Step Conversion of Lignin to Hydrogen-Enriched Biofuel involves in using solvent as the reaction medium and hydrogen donor with/without other catalysts, which can result in gasoline-like hydrocarbon product with high heating value and low char.
Monday, October 24, 2011
Promising New Accomplishments by Biofuel Vehicles
Written by Alan Parker, an active blogger out of New York City whose writing covers green technology, the environment, and the great outdoors. You can follow him on Twitter @AGreenParker.
It isn't news to anybody that our oil supplies are disappearing rapidly, forcing car companies to develop new technologies that harness the power of alternative energy sources. Although most companies have been working on electric cars, several have also been dabbling in biofuels like ethanol, as a main fuel source for combustion engines. In order to demonstrate the effectiveness of biofuels and increase support for them, some independent research teams have succeeded in some exceptional feats with biofuel vehicles of their own. These accomplishments are showing that greener forms of energy can be used in a practical and effective way to eliminate our reliance on oil and make the environment a healthier place.
Cross-Continental Journeys
At the end of 2010, the first ever ground-based trans-Antarctic expedition was completed using only biofuels. The vehicle, called the Bio-inspired Ice Vehicle or BIV, was funded by biofuel advocate Winston Wong and is the world's first vehicle to complete a trans-Antarctic expedition using this type of power. The BIV was engineered to not only display the potential of alternative energy, but also to stand up to some of the harshest conditions on the planet while carrying researchers across an entire continent.
At the end of 2010, the first ever ground-based trans-Antarctic expedition was completed using only biofuels. The vehicle, called the Bio-inspired Ice Vehicle or BIV, was funded by biofuel advocate Winston Wong and is the world's first vehicle to complete a trans-Antarctic expedition using this type of power. The BIV was engineered to not only display the potential of alternative energy, but also to stand up to some of the harshest conditions on the planet while carrying researchers across an entire continent.
Setting Land Speed Records
A man named John Petsche set out to modify a Kawasaki motorcycle, aiming to create a vehicle that ran on an alternative fuel source, wasn't complicated or costly, and was designed for fuel efficiency. His result? A homemade motorcycle powered by biofuel. The bike set a land speed record for the 350cc alternative fuel motorcycles at the Loring Timing Association in Maine. The most astounding thing is that John Petsche's motorcycle was built using parts already in existence. Therefore, it should be a simple task for manufacturers to replicate and possibly improve upon the design for mass manufacture.
Distance Records in the Sky
It isn't only land vehicles that are making use of biofuels. Airlines are now beginning to look for alternative means of powering their planes. In fact, Finnair recently set a record for the longest commercial flight powered by biofuel, over 900 miles. Despite this incredible achievement, the airline openly admits that, since biofuel-powered air travel is still in its infancy, it isn't financially practical to convert biofuel just yet. However, they are continuing to experiment with it in hopes of reducing their impact on the environment.
When speaking of the grounds for creating the BIV to cross Antarctica, Winston Wong said that it was necessary to "do something that people can take notice [of] and say this is the future, the future of human endeavor” in an effort to reduce harm to the planet. The teams involved in the efforts above evidently placed stock in that same way of thinking, selecting rigorous ways to test different forms of alternative power. If we combine each of these cleaner energy forms and forward ideas, it is possible that we could soon see the beneficial impact that biofuels will have on our nation.
Friday, October 21, 2011
What is next of biofeuls and biochemicals?
Recently I have been in AIChE annual meeting at Minneapolis, MN. There I sensed a different atmosphere compared to what I felt last year: Less attendance and pessimistic in biofuels.
Indeed, in the past twenty years, DOE and other government agents spent tons of money to support technology development in biofuel production from biomass. People are expecting a sun-rising industry like IT in the past to boost the economy. Therefore, green technology once became a hot green waves hitting every aspects of people’s life, especially for biofuels. Unfortunately, the current dominant technologies claimed in patents and highlighted for biofuel production from biomass have actually been existing there for hundreds of years; none of them seems to solve the cheap sugar problem. Therefore, some anti-biofuel people even anticipate that there would be no biofuels in the next 20 years.
It is true that at least cellulosic bioethanol will be dead if these technologies continue to control the government funding for 10 years. It really needs game-changing technology. Among all of the highlighted technologies, Agrivida technology recently stands out from nowhere and looks like a real solution for cheap sugar production from if it works as it claims. Therefore, hope is still shining somewhere as long as creativity is alive.
In addition, more interests and attention are shifting toward hydrocarbon fuel production from lignocellulosic biomass. And more value-added biochemicals are being produced from biomass although not heavily funded by government funding. Although a lot of uncertainty still exists for biofuels and biochemicals, one thing that never changes is that they are from renewable resources. Biodegradable materials and chemicals may become leading green products in the near future.
Monday, October 3, 2011
Corn fiber as a raw material for hemicellulose and ethanol production
Com fiber, a byproduct of the wet milling process, has shown to be a substrate of particular interest due to its abundance, ready availability and low value. Corn fiber is primarily composed of the outer seed covering or pericarp of the kernel, along with adherent starch with typicallyl 20% xylose and 10% arabinose in the form of arabinoxylan, 18-24% cellulose and 20% starch although its apparent composition varies considerably according to its source and the method of analysis. As estimate, ethanol yields from com could be increased by approximately 10% if the constituent sugars of corn fiber could be efficiently utilized. Since the xylan in seed fiber is highly branched with arabinose and may cross-links with phenolic acids, GH 10 xylanase and ferulic acid esterases are suggested to supplement for enzymatic hydrolysis.
Thursday, September 29, 2011
The Next Wave: The game-change technology for cheap sugars and biofuels
A news from BiofuelsDigest on Sept. 29,2011.
That’s what Agrivida is up to.
“We are expressing all the cell wall degrading systems in the plant,” explains Agrivida CEO Michael Raab, “as the core part of our technology. We can control the activity of those enzymes so that in the plant we can express all the enzymes in dormant form. After harvest, we activate the enzymes in the material, so you don’t have to pretreat in the same way. It makes the process lower temperature, with a moderate PH, and takes out a lot of capital costs and those high costs of dilute acid pretreatment. Also, we really reduce the enzyme loading.”
Biomass feedstocks with hydrolytic enzymes may enable the industry to lower the cost of both pretreatment and enzyme production/loadings, potentially (hopefully) to solve the problem of producing cheap sugar from the root.
That’s what Agrivida is up to.
“We are expressing all the cell wall degrading systems in the plant,” explains Agrivida CEO Michael Raab, “as the core part of our technology. We can control the activity of those enzymes so that in the plant we can express all the enzymes in dormant form. After harvest, we activate the enzymes in the material, so you don’t have to pretreat in the same way. It makes the process lower temperature, with a moderate PH, and takes out a lot of capital costs and those high costs of dilute acid pretreatment. Also, we really reduce the enzyme loading.”
Biomass feedstocks with hydrolytic enzymes may enable the industry to lower the cost of both pretreatment and enzyme production/loadings, potentially (hopefully) to solve the problem of producing cheap sugar from the root.
Saturday, May 14, 2011
Monday, April 25, 2011
Challenges in commercialization of algal fuel
• Optimize stress conditions to obtain the highest possible yields of lipids in the cells because stress conditions can induce spontaneous mutation in cultivated strains.
• Simplify harvesting systems to utilize the separation technologies in existing industry such as food, biopharmaceutical, chemical and waste water treatment sectors.
• Utilize existing biodiesel production processes that requires a lipid material free of both water and free fatty acids
• Develop water tolerant downstream processes to avoid cost intensive drying
• Simplify harvesting systems to utilize the separation technologies in existing industry such as food, biopharmaceutical, chemical and waste water treatment sectors.
• Utilize existing biodiesel production processes that requires a lipid material free of both water and free fatty acids
• Develop water tolerant downstream processes to avoid cost intensive drying
Thursday, April 21, 2011
Tuesday, April 12, 2011
Algae oil content of some microorganisms
Microorganisms | Oil content (% dry wt) |
Botryococcus braunii | 25–75 |
Cylindrotheca sp. | 16–37 |
Nitzschia sp. | 45–47 |
Schizochytrium sp. | 50–77 |
Monday, April 4, 2011
Bioconversions of lignocellulosic biomass: the points we cannot overlook
Pretreatment
• If you pretreat biomass at alkaline conditions, be sure to separate lignin before neutralization. Otherwise, the solublized lignin will be precipitated or re-deposited when pH drops.
• If you pretreat biomass at acidic conditions, be sure the temperature does not exceed 165 C. Otherwise, the lignin will condense and re-distribute through cell wall and become gel coat on the surface of pretreated fiber
• If you pretreat biomass with organosolvents, make sure to recycle/re-use the solvents.
Post-pretreatment
• If run detoxification, make sure the methods to be used with fundamental mechanisms. It is cheap and scalable.
• Recover by-products and easily and economically deal with the chemicals if any.
Enzymatic hydrolysis
• Know what biomass you are using and their sugar composition. Woody and non-woody biomass has different chemical (especially lignin and hemicelluloses) composition.
• Know the pretreatment methods you used. The modification of cell wall structure and chemical composition differ under different thermochemical pretreatments.
• Know what substrate the enzyme cocktail development has been based on. Alkaline and acidic pretreated biomass will end up different cocktail characteristics. The enzyme cocktail may need to be customized in terms of the specific pretreated biomass.
Process
• Avoid or reduce unit operations as much as possible
• Be as simple as possible for process configuration
• Use high solids if possible
Fermentation
• Use cheap nutrients if possible
• Ferment C6 and C5 sugars if possible
• If you pretreat biomass at alkaline conditions, be sure to separate lignin before neutralization. Otherwise, the solublized lignin will be precipitated or re-deposited when pH drops.
• If you pretreat biomass at acidic conditions, be sure the temperature does not exceed 165 C. Otherwise, the lignin will condense and re-distribute through cell wall and become gel coat on the surface of pretreated fiber
• If you pretreat biomass with organosolvents, make sure to recycle/re-use the solvents.
Post-pretreatment
• If run detoxification, make sure the methods to be used with fundamental mechanisms. It is cheap and scalable.
• Recover by-products and easily and economically deal with the chemicals if any.
Enzymatic hydrolysis
• Know what biomass you are using and their sugar composition. Woody and non-woody biomass has different chemical (especially lignin and hemicelluloses) composition.
• Know the pretreatment methods you used. The modification of cell wall structure and chemical composition differ under different thermochemical pretreatments.
• Know what substrate the enzyme cocktail development has been based on. Alkaline and acidic pretreated biomass will end up different cocktail characteristics. The enzyme cocktail may need to be customized in terms of the specific pretreated biomass.
Process
• Avoid or reduce unit operations as much as possible
• Be as simple as possible for process configuration
• Use high solids if possible
Fermentation
• Use cheap nutrients if possible
• Ferment C6 and C5 sugars if possible
Friday, April 1, 2011
Fatty acid composition of microalgal oil
Fatty acid | Chain length: no. of double bonds | Oil composition (w/total lipid) |
Palmitic acid | 16:00 | 12–21 |
Palmitoleic acid | 16:01 | 55–57 |
Stearic acid | 18:00 | 1–2 |
Oleic acid | 18:01 | 58–60 |
Linoleic acid | 18:02 | 4–20 |
Linolenic acid | 18:03 | 14–30 |
(Meng et al., 2009).
Thursday, March 10, 2011
Heating values of diesel and biodiesel
The high heating value
- Petroleum diesel: 42.7 MJ/kg.
- Biodiesel derived from seed oils, such as rapeseed or soybean: 37 MJ/kg.
- Biodiesel derived from algae: 41 MJ/kg.
Saturday, March 5, 2011
An informative review paper on the physico-chemical properties of feedstocks for biodiesel production
A summarized information was presented in Tables in this paper on the following aspects:
- Yields of vegetable oils and their fatty acid composition.
- Influence of feedstocks on biodiesel process selection and operating conditions.
- Physico-chemical properties of methyl esters from various bio-oils.
- Physico-chemical properties of methyl esters from various bio-oils.
Wednesday, March 2, 2011
ARPA-E 2011 Keynote: Secretary Steven Chu
News: Secretary for the US Department of Energy, Steven Chu, discusses the big picture of how the United States uses Energy and why innovation in clean technology is the key to Winning the Future.
http://www.youtube.com/watch?v=8QHVOoUDpN4
http://www.youtube.com/watch?v=8QHVOoUDpN4
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