WO2009059084A1 - Use of ethanol plant by-products for yeast propagation - Google Patents
Use of ethanol plant by-products for yeast propagation Download PDFInfo
- Publication number
- WO2009059084A1 WO2009059084A1 PCT/US2008/081918 US2008081918W WO2009059084A1 WO 2009059084 A1 WO2009059084 A1 WO 2009059084A1 US 2008081918 W US2008081918 W US 2008081918W WO 2009059084 A1 WO2009059084 A1 WO 2009059084A1
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- WO
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- Prior art keywords
- fermentation
- medium
- culture
- microorganism
- ethanol
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12P—FERMENTATION OR ENZYME-USING PROCESSES TO SYNTHESISE A DESIRED CHEMICAL COMPOUND OR COMPOSITION OR TO SEPARATE OPTICAL ISOMERS FROM A RACEMIC MIXTURE
- C12P7/00—Preparation of oxygen-containing organic compounds
- C12P7/02—Preparation of oxygen-containing organic compounds containing a hydroxy group
- C12P7/04—Preparation of oxygen-containing organic compounds containing a hydroxy group acyclic
- C12P7/06—Ethanol, i.e. non-beverage
- C12P7/14—Multiple stages of fermentation; Multiple types of microorganisms or re-use of microorganisms
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E50/00—Technologies for the production of fuel of non-fossil origin
- Y02E50/10—Biofuels, e.g. bio-diesel
Definitions
- Embodiments relate to, but are not limited to, the fields of ethanol fermentation, yeast production, and decreasing waste volume from those processes.
- Embodiments relate, for example, to methods for reducing the load of organic acids (acetic acid and lactic acid) and glycerol in water recycled to the fermentation process.
- Embodiments also relate, for example, to use of ethanol fermentation by-products as feedstock for yeast production. Methods of fermenting yeast and of preparing a yeast innocula are also provided.
- Figure 1 illustrates a typical process for managing the incoming media, inoculum, product, and byproduct streams in an ethanol fermentation plant.
- ethanol is made by anaerobic fermentation of yeast (usually a strain of Saccharomyces cerevisiae) in media containing as a primary carbon source, dextrose (or other sugar or polysaccharide of C5 or greater).
- yeast usually a strain of Saccharomyces cerevisiae
- the yeast Prior to fermentation, the yeast may be propagated by the inoculation train, in which the inoculum is grown in a succession of aerated fermentors of increased volume.
- the composition of those fermentors is water from different possible sources, as well as corn mash and enzymes.
- DDGs distillers dried grains
- backset The remainder of the aqueous phase solution from the fermentation media is commonly referred to as "backset.”
- the principle carbon compounds in the backset are dilute organic acids and glycerol ("OAG").
- a portion of the backset (typically about 35%) is recovered and returned to the original anaerobic fermentor 10 to supplement the amount of water (either fresh water or process water) that must be used during fermentation.
- Organic acids and glycerol can not be used by yeast as a carbon source during anaerobic fermentation; these compounds are actually formed from dextrose by yeasts and contaminating organisms.
- Continuous recycling of backset into the anaerobic fermentor 10 can result in a build up of organic acids and glycerol that would inhibit ethanol production. Therefore, in a continuous process, most of the backset is directed away to waste water or to an evaporation system, as shown in "Other Treatment Steps" in Figure 1.
- the evaporation system within "Other Treatment Steps," recovers a portion of the water from the backset, which is combined with the primary backset flow and other water sources to be sent to the anaerobic fermentor.
- the remainder of the aqueous phase is therefore a concentrated solution of OAG, which may be used as animal feed, for example, by being combined with DDGs and dried.
- the OAG may also need to be disposed of as a waste product.
- the OAG is a "negative value" product that does not increase the financial yield of a fermentation.
- Organic acids and glycerol are two by-products formed during anaerobic fermentation of yeast to product ethanol. I have found that these by-products of an anaerobic fermentation are useful substrates for yeasts in aerobic fermentation. This has a number of beneficial consequences. For example, it allows the carbon contained within the organic acids and glycerol to be used as a carbon source for the aerobic growth of yeast. This aerobically grown yeast may, in turn, be used as an inoculum for anaerobic fermentation.
- Embodiments of the invention provide, for example, methods of recycling OAG produced during ethanolic fermentation of yeast on dextrose or other sugars.
- One embodiment provides a method for making ethanol by a batch fermentation, comprising growing an ethanol producing microorganism under first growth conditions in a first medium comprising a carbon source.
- That carbon source comprises at least one organic acid (for example, acetic acid, lactic acid, or both) and glycerol, which are obtained as a by-product of growing the microorganism in a second medium to produce ethanol by fermentation.
- the second medium comprises a carbon source such as a sugar or a saccharide of at least 5 carbon atoms; the microorganism is grown m in the second medium, producing ethanol and said by-product.
- the ethanol producing microorganism is Saccharomyces cerevisiae
- the first medium carbon source consists essentially of water, micronutrients, and as carbon source acetic acid, lactic acid, and glycerol
- said second medium consists essentially of water, nutrients, and as carbon source dextrose.
- the first medium comprises as carbon source acetic acid, lactic acid, and glycerol
- the second medium comprises dextrose as carbon source.
- Microbial propagation media usually contain, in addition to at least one carbon source, at least one nitrogen source.
- Typical nitrogen sources are, for example, ammonia, ammonium salt, amino acids, nitrates, or nitrites.
- otherminerals are typically included. These include, for example, potassium, magnesium, sodium, sulfur, and phosphorus, which are usually included in concentrations between 0.05 to 2 g/1.
- Other trace elements are included at a concentration level of milligrams per liter, for example, between 1 and 5 mg/L.
- Those elements can include, for example, iron in the ferric and/or ferrous forms, molybdenum, cobalt, calcium, zinc, manganese, iodine, copper, and boron. Trace elements are usually found in the medium in their ionic forms. [0018] Other nutrients that may be found in the medium include vitamins, including B-vitamin-complex vitamins. Precursors of nucleic acids may also be found and utilized in the medium. In production media like the ones used reported herein, the required components are typically found in excess of requirements. It is still possible that supplementation of some of those components might be required in some applications.
- a further embodiment includes method for making ethanol by fermentation, comprising growing an ethanol producing microorganism under aerobic conditions in a first medium including a carbon source comprising organic acid and/or glycerol to form an inoculation broth.
- the inoculation broth is combined with a second medium comprising a carbon source including a sugar and/or a saccharide of at least 5 carbon atoms.
- the microorganism is grown under anaerobic conditions to produce ethanol and a byproduct comprising at least one member of the group consisting of organic acid and glycerol.
- the source of the byproducts can also be contaminating organisms that are typically present in ethanol fermentations.
- the microorganism is Saccharomyces cerevisiae
- said first medium consists essentially of nutrients, and as carbon source lactic acid, acetic acid, glycerol, and water
- said second medium consists essentially of nutrients, and as carbon source dextrose and water
- the first medium comprises as carbon source lactic acid, acetic acid, and glycerol
- the second medium comprises as carbon source dextrose.
- other nutrients required for growth are found in adequate amounts in the recycled liquid fractions that contain the OAGs.
- nitrogen may need to be supplemented for growth, and in further embodiments nitrogen and other nutrients not present in adequate amounts in the recycled water streams some nutrients may also need to be supplemented.
- a still further embodiment includes a method for making a primary product by fermentation, comprising growing a microorganism in continuous culture that produces the inoculum for the fermentation under a second condition, under first fermentation conditions in a first medium comprising a by-product of fermentation of the same microorganism culture under second conditions selected to produce the primary product; growing the microorganism culture under the second fermentation conditions in a second medium to produce the primary product and a by-product containing the primary nutrient source from step 1; separating the by-product containing the primary nutrient source from the primary product and the second medium to obtain a by-product stream; and providing the by-product stream to grow the microorganism aerobically in continuous culture.
- methods described herein include the further step of concentrating the by-product stream prior to growing the microorganism in the first medium. Greater concentration of the by-product stream yields a higher resulting biomass. Fermentation conditions for embodiments of the invention may be aerobic. If OAGs are used as a substrate, the fermentation will be aerobic.
- the culture growing in the first medium can be propagated both as a batch culture and as a continuous culture.
- This provides the ability to utilize fermentor volumes that are much smaller than currently used produce inoculum for the second stage. This provides a better utilization of the fermentor and auxiliary system.
- Using the continuous fermentation also enables more use of the fermentors growing the inoculum than is currently attained in the industry. Utilization is up to sixteen times the utilization of previous processes.
- yeast yield of at least about IxIO 8 yeast cells/ml of media for every 1 g/1 of OAGs consumed was achieved.
- Yeast concentrations of 1.5xlO 9 cells/ml and growth rates in continuous culture of 3x10 8 g/l/hour to 4x10 8 g/l/hour were achieved.
- fermentations are conducted using a strain of yeast, typically a strain of the genus Saccharomyces, and more typically a strain of Saccharomyces cerevisiae.
- the microorganism may also be, for example, a strain of Corynebacterium, a strain of Staphylococcus, or a strain of Listeria
- Figure 1 illustrates a typical process for managing the media and byproduct streams in an ethanol fermentation plant.
- Figure 2 illustrates one embodiment of an improvement provided by the present teaching.
- Figure 3 illustrates a comparison of a typical process of Figure 1 with an improved process provided in this disclosure. The typical process step is shown in dotted lines.
- Figure 4 shows the results of an aerobic batch yeast propagation according to one embodiment, as reported in Example 1.
- Figure 5 shows viable cell count (measured in number of cells and by optical density) for the continuous fermentation reported in Example 2.
- Figure 6 shows feed addition and retention time for the continuous fermentation in Example 2.
- Figure 7 shows viable cell count for yeast growth on unconcentrated OAG as reported in Example 3.
- Figure 2 illustrates one embodiment of an improvement provided by the present teaching.
- the concentrated OAGs (“cOAGs") are used to provide the primary carbon source for a second fermentation in aerobic fermentor 5A.
- the organic acids and glycerol are consumed by the yeast during aerobic fermentation.
- the concentration of the OAGs added to the first aerobic fermentation may vary depending on their source; for example, they may vary depending on the originating facility.
- Nitrogen sources are usually present in the recycled streams in some amount but may have to be added to the first fermentation if the carbon to nitrogen ratio is too high. Other nutrients were found to be in adequate amounts in the recycle streams that were tested, but use of streams from other sources may require addition of one or more nutrients.
- the water content typically varies from less than 80%, if a recycle stream with high solids content is desired, or between 80% and 99% if a recycle stream with a lower solids content is desired. Solids tolerance of a system may depend on a number of factors, including the source of the recycle stream and the effect on osmotic pressure in the fermentor.
- the OAG fermentation is aerated.
- the rate of utilization of OAGs may be limited by oxygen transfer rates in the OAG fermentation. This may be beneficial, for instance, if a slower fermentation is desired, for example to maintain a lower level of heat emissions from the fermentation.
- the yeast-containing biomass made in the aerobic fermentor 5A may be used either as an inoculum to initiate further anaerobic fermentation into ethanol in anaerobic fermentor 10. It may also be used directly as a higher quality animal feed, for example, in the form of DDGs.
- No particular concentration of cOAGs is required. Typically the two are proportional, and lower cOAG concentration will lead to a lower yeast yield.
- Typical compositions of organic acids and glycerol in the backset and as a concentrate are presented in Table 1. Of course, those numbers may vary depending on the nature of the fermentation and concentration.
- the amount of cOAGs fed into aerobic fermentor 5A is calibrated so that essentially all of the organic acids and about 25-75% of the glycerol are consumed by the yeast and converted into biomass.
- essentially all it is meant that greater than 95% of the organic acids fed into the fermentor are consumed in a batch fermentation. Because the aerobic fermentation first consumes the organic acids, calibration of the fermentation to consume less than essentially all of the organic acids will greatly reduce the amount of glycerol that is consumed. In a preferred embodiment, essentially all of the organic acids and about 15% to 45% of the glycerol are consumed.
- the rate of consumption of OAGs may be adjusted is by adjusting the pH of the fermentation.
- the pH is maintained at 4.2 to 4.8, with the addition of ammonia or an ammonium salt.
- the pH is maintained between 5.0 and 6.5, typically about 5.5, with the addition of a base.
- This base may be, for example, ammonia or sodium hydroxide.
- Ammonia is typically used, because it is also able to provide a nitrogen source for the growth of the yeast.
- As organic acids are consumed the pH of the broth in the fermentor will rise. The higher pH levels are the result of this phenomenon. If needed, ammonium salts used as nitrogen source will mitigate that problem. As the nitrogen is utilized pH will be reduced.
- the rate of draw from aerobic fermentor 5A to innoucla or DDGs can be balanced with the rate of feed of cOAGs and consumption to form biomass so that in practice, the fermentation media in aerobic fermentor 5A contains a steady state level of glycerol and very low levels of organic acids while continually producing biomass. Low levels of glycerol can be attained if a second reactor in a row is be added. In such a reactor glycerol will preferably be used as the sole carbon source.
- Embodiments of the invention provide methods to use the carbon-containing by-product of anaerobic fermentation as a substrate for aerobic fermentation, based on the use of different fuels for the different kinds of fermentation.
- organisms that may take advantage of these methods may include, for example, facultative anaerobes such as members of the genera Proteus, Serratia, Erwinia Vibrio, Aeromonas, and Photobacterium.
- the present teaching offers several advantages over the prior art processes. Of course, these advantages should not be construed as requirements or as limitations unless they are explicitly included in the claims.
- An embodiment of the invention is compared to a prior art process in Figure 3. Typically the fraction of the recycled water going to the inoculation train is small relative the portion that goes to the second fermentation.
- Example 1 reports batch fermentor growth of Saccharomyces cerevisiae on organic acids and glycerol obtained as a byproduct from the evaporation of the backset from a dry grind ethanol production facility.
- a batch yeast propagation was conducted in two 3.5L fermentors.
- the OAG was concentrated to between 5 to 10 times the original OAG concentration.
- the culture reached about 9xlO 8 cells/ml within 24 hours and used 15-17g/L of the carbon sources during that time. Both lactic acid and acetic acid were removed below the detection threshold, and about 40% of the glycerol was utilized mostly between the time the organic acids were depleted and the end of the run. Initial culture growth may be increased by using ammonia both as the nitrogen source and for pH adjustment.
- Example 2 reports growth of Saccharomyces cerevisiae on organic acids and glycerol obtained as a byproduct from the evaporation of the backset from a dry grind ethanol production facility. Fermentation was initially conducted as a batch process, then moved to a continuous fermentor after a yeast mass of over 5 * 10 8 deemed sufficient was reached.
- Figure 6 shows the consistency of the fermentation described in this example.
- the small variances in retention time are mostly the result of different assessments of running fermentor volume.
- propagation of yeast in this example requires the carbon source and an added nitrogen source. Adjustment of pH to an optimum growth level (about 4.0 to 5.5) is also desirable.
- Example 3 shows yeast growth on organic acids according to another embodiment of the invention. Conditions were the same as Example 2, but the organic acids are not concentrated. The results of this Example are shown in Figure 7. Growth was limited by low substrate concentration, as indicated by the low optical density and yeast concentration when compared to the results of Example 2.
- Patents, patent applications, publications, scientific articles, books, and other documents and materials referenced or mentioned herein are indicative of the levels of skill of those skilled in the art to which the inventions pertain, as of the date each publication was written, and all are incorporated by reference as if fully rewritten herein. Inclusion of a document in this specification is not an admission that the document represents prior invention or is prior art for any purpose.
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Abstract
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Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| BRPI0817137-8A BRPI0817137B1 (en) | 2007-11-02 | 2008-10-31 | method for producing ethanol by fermentation and method for producing a main product by fermentation |
| CN200880114348.6A CN101842491B (en) | 2007-11-02 | 2008-10-31 | Ethanol plant by-products is used for the purposes of yeast growth |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US171407P | 2007-11-02 | 2007-11-02 | |
| US61/001,714 | 2007-11-02 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2009059084A1 true WO2009059084A1 (en) | 2009-05-07 |
Family
ID=40588468
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2008/081918 Ceased WO2009059084A1 (en) | 2007-11-02 | 2008-10-31 | Use of ethanol plant by-products for yeast propagation |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US8183022B2 (en) |
| CN (1) | CN101842491B (en) |
| BR (1) | BRPI0817137B1 (en) |
| WO (1) | WO2009059084A1 (en) |
Families Citing this family (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| AR074261A1 (en) * | 2008-11-04 | 2011-01-05 | Highmark Renewables Res Ltd Partnership | INCREASED FERMENTATION OF ETHANOL USING BIODIGESTATE |
| US8623040B2 (en) | 2009-07-01 | 2014-01-07 | Alcon Research, Ltd. | Phacoemulsification hook tip |
| KR101011244B1 (en) * | 2010-08-23 | 2011-02-07 | 송백영 | How to produce bioethanol using watermelon seeds |
| US10258505B2 (en) | 2010-09-17 | 2019-04-16 | Alcon Research, Ltd. | Balanced phacoemulsification tip |
| WO2016205596A1 (en) | 2015-06-17 | 2016-12-22 | Poet Research, Inc. | Propagating microorganisms & related methods & systems |
| CN114364807B (en) * | 2019-09-13 | 2024-09-13 | 丹尼斯科美国公司 | Process for increasing countercurrent recirculation in dry mill alcohol production |
Citations (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20070184541A1 (en) * | 2004-06-25 | 2007-08-09 | Karl Daniel W | Corn fractionation method |
Family Cites Families (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| SE449876B (en) * | 1984-12-07 | 1987-05-25 | Nobel Chematur Ab | PROCEDURE FOR PRODUCTING ETHANOL WITH AN ADDITIONAL CENTRIFUGAL SEPARATION STEP, PLACED EITHER BEFORE OR AFTER THE PRIMARY DISTILLATION STEP |
| US5231017A (en) * | 1991-05-17 | 1993-07-27 | Solvay Enzymes, Inc. | Process for producing ethanol |
-
2008
- 2008-10-31 BR BRPI0817137-8A patent/BRPI0817137B1/en active IP Right Grant
- 2008-10-31 US US12/262,315 patent/US8183022B2/en active Active
- 2008-10-31 WO PCT/US2008/081918 patent/WO2009059084A1/en not_active Ceased
- 2008-10-31 CN CN200880114348.6A patent/CN101842491B/en active Active
Patent Citations (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20070184541A1 (en) * | 2004-06-25 | 2007-08-09 | Karl Daniel W | Corn fractionation method |
Also Published As
| Publication number | Publication date |
|---|---|
| BRPI0817137A2 (en) | 2020-03-10 |
| US8183022B2 (en) | 2012-05-22 |
| US20090117632A1 (en) | 2009-05-07 |
| BRPI0817137B1 (en) | 2020-12-01 |
| CN101842491B (en) | 2015-11-25 |
| CN101842491A (en) | 2010-09-22 |
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