Process and apparatus for removing impurities from solid biomass feed
The countercurrent extraction process with acidified aqueous solution and pneumatic transport effectively removes impurities from biomass, addressing catalyst deactivation and pump handling challenges, resulting in high-purity biomass for efficient conversion.
Patent Information
- Application Number
- JP2022539335
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-12-26
- Filing Date
- 2020-08-13
- Publication Date
- 2026-01-08
- Estimated Expiration
- 2040-08-13
AI Technical Summary
Existing methods struggle to efficiently remove alkali and alkaline earth metals (AAEM), sulfur, and nitrogen-containing impurities from biomass and waste materials, which deactivate catalysts and complicate processing, while conventional pumps face challenges in handling small-sized biomass slurries due to clogging and energy inefficiency.
A countercurrent extraction process using an acidified aqueous solution with low acid concentration, combined with pneumatic transport, effectively removes impurities by stoichiometric reaction and mechanical dewatering, reducing acid consumption and water usage, and utilizing pneumatic pumps to handle larger particle sizes.
The process achieves high impurity removal efficiency with reduced corrosion and energy consumption, producing high-purity biomass suitable for further refining and conversion processes.
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Abstract
Description
[Technical Field]
[0001] Related Applications This application claims the benefit of priority to U.S. Provisional Patent Application No. 62 / 953,752, filed December 26, 2019.
[0002] summary A process is provided for removing impurities from solid biomass and preserving hydrogen and carbon content. An example process is provided that uses an acidified aqueous solution in a countercurrent extraction process that involves pneumatic transport of the slurry between process units, or a mechanical dewatering step, or both, to produce washed biomass suitable for various upgrading and conversion processes.
[0003] introduction Obtaining useful chemicals, fuels, and energy from renewable biomass and waste materials is becoming a key challenge as traditional fossil resources are gradually depleted. Solid hydrocarbon-based materials, such as lignocellulosic biomass and waste materials, are being widely explored as low-cost, renewable feedstocks for liquid fuels and chemicals. Recovering and reusing waste materials can also address the waste problem of polluting land and waterways. Biomass-derived or other waste-derived fuels and chemicals are predicted to significantly reduce net CO2 emissions by minimizing the use of fossil fuels.
[0004] To address this challenge, efforts are being made to convert hydrocarbon solids, such as biomass and waste, into fuels and other useful chemicals. The production of fuels and chemicals from waste requires specialized conversion processes that differ from conventional petroleum-based conversion processes due to the nature of the raw materials and products. The characteristics of solid biomass conversion, such as high temperatures, solid raw materials, high water content, unusual separations, contaminants, and oxygenated by-products, are distinct from those of petroleum upgrading. Thus, there are many challenges that must be overcome to efficiently produce chemicals from solid biomass and waste.
[0005] Solid, hydrocarbon-based materials, such as lignocellulosic biomass (e.g., wood, grass, agricultural residues) or waste (e.g., food waste, municipal solid waste), are alternative, renewable, and sustainable feed sources with great potential to meet the growing demand for alternative liquid fuels, renewable chemicals, and "circular economy" processes. While these feedstocks do not directly compete with the food supply, their usefulness is limited due to their inherent properties and storage limitations. Feedstock supply and logistics for solid hydrocarbon-based materials, such as lignocellulosic biomass and waste upgrading, are challenging due to the feedstock's low bulk density, energy density, and high impurities. Chemical and physical inconsistencies in feedstocks pose significant barriers that limit the ability to design a single, broadly applicable process for upgrading solid waste to fuels and chemicals.
[0006] Solid biomass materials typically contain cellulose (35%–60%), hemicellulose (15%–40%), and lignin (10%–40%) as major components, along with various organic materials, water, and some mineral or metallic elements. Various biomass-derived materials can be pyrolyzed to produce a mixture of hydrocarbons, oxyacid salts, CO, CO₂, water, char, coke, and other products. A particularly preferred form of pyrolysis, called catalytic pyrolysis (CP), involves converting biomass in a fluidized-bed reactor in the presence of a catalyst. The catalyst is typically an acidic, microporous, crystalline material, typically a zeolite. Zeolites are effective in upgrading the primary pyrolysis products of biomass decomposition, converting them into aromatics, olefins, CO₂, CO₂, char, coke, water, and other useful products. Aromatics include aromatic compounds such as benzene, toluene, xylene (collectively referred to as BTX), and naphthalene. Olefins include ethylene, propylene, and smaller amounts of higher molecular weight olefins. BTX aromatics are desirable products because they are high value and easy to transport. Olefins are desirable products because they are easy to convert into other materials, including conversion to aromatics.
[0007] Mineral or metallic elements present as contaminants in biomass, collectively known as alkali and alkaline earth elements (AAEM), may also include many other elements, pose a challenge to catalytic processes. These elements can deactivate catalysts or interfere with the smooth operation of CP or other biomass upgrading processes through a number of mechanisms. Therefore, to provide a commercially viable process for upgrading biomass to fuels and chemicals, it is desirable to limit the amount of AAEM introduced into the CP process, remove AAEM, or both. Other impurity elements present in biomass, primarily sulfur and nitrogen, are also detrimental to the conversion of biomass to useful chemicals and fuels. Sulfur and nitrogen can inhibit catalyst activity, complicate product refinement, and contaminate waste streams. A process for removing sulfur and nitrogen is also needed. The present invention addresses a method for reducing AAEM and sulfur- and nitrogen-containing impurities in biomass feed to CP or other biomass upgrading or consumption processes.
[0008] A particular challenge in waste recycling is the presence of various impurities, including food, soil, oil, salts, chemicals, and human waste, which often coat the waste pieces. Biomass waste can also contain minerals, halogens, and sulfur or nitrogen compounds, which complicate processing methods. Removing these contaminants is a key step in creating value from the recycling process.
[0009] Many biomass and waste recycling methods involve a comminution process, where materials are shredded, chopped, or ground to a small particle size suitable for various conversion technologies. While small-sized materials are also suitable for various cleaning and impurity removal processes, there are practical limits to this size reduction due to the difficulty of extracting water from the biomass. As a result, there is a limit to size reduction, and a stream of comminuted solids is often formed as part of a slurry. The problem is that, as part of a solids slurry processing system, comminuted solids that form a dense cohesive mat over a wide range of solids concentrations cannot be pumped. Handling such small-sized materials, before, during, or as part of a cleaning process, can be challenging.
[0010] Many cleaning schemes use water as a solvent and handling medium to remove impurities and facilitate material transport. Slurries of small particle materials in water are typically moved using centrifugal pumps. Centrifugal pumps suffer from a variety of problems associated with rotating equipment in any chemical process scheme, including clogging, high energy consumption, corrosion, and erosion. Archimedes screw pumps have been around for a long time, but they are large, bulky, inefficient, and suffer from the problems inherent to rotating equipment, including corrosion and erosion. Progressive cavity pumps, while less prone to corrosion than simple Archimedes screws, are still subject to the problems of rotating equipment and corrosion, and are larger than other pumps due to having more moving parts.
[0011] The inability to reliably pump these slurries using conventional methods, such as centrifugal, progressive cavity, twin-screw, rotary lobe, or other mechanically propelled pumps, stems from the inability to impart sufficient energy to the slurry to maintain the turbulence necessary to keep it in suspension, and from the fact that particles undergo alignment and compaction within the pump, allowing water to pass through while solids remain in the pump gaps, such as the saxophone or impeller cavity. These problems stem from size distribution constraints that allow both low impedance to diffusion (requiring small size) and ease of dewatering (requiring large size and fast settling velocity). The present invention provides a solution to the problem of transferring biomass slurries between or removing them from vessels by using pneumatic pumps, sometimes referred to as airlift pumps, to transport the slurries between various handling operations involved in solid biomass washing or other preparation processes. For purposes of this invention, the term "airlift" pump includes pneumatic lift systems that use other gases. Pneumatic lift systems can transport biomass or other materials with larger particle sizes than mechanical pumps (e.g., centrifugal, rotating lobe, progressive cavity, circumferential piston, etc.) can move for biomass matting and dewatering / separation by conventional pumps. Because pneumatic pumps can transport larger particles, they reduce the need to grind feed material to very small sizes compared to conventional pumps, saving energy and handling.
[0012] The present invention discloses a process for extracting AAEM from biomass using an acidified aqueous solution with a relatively low acid concentration, achieving excellent extraction of AAEM with reduced acid consumption, reduced corrosion, and reduced water usage, while preserving the hydrocarbon content of the biomass for further refinement or consumption in subsequent processes. This extraction method involves a stoichiometric reaction between cations and hydrogen ions while overcoming diffusion limitations in solid materials. Extraction is carried out in a series of wash steps in a countercurrent configuration, continuously feeding the acidified aqueous solution and biomass, continuously discharging the resulting slurry after a predetermined residence time, and continuously dewatering and discharging the solids using a mechanical expeller, which significantly improves impurity removal efficiency. The expeller squeezes out solubilized impurities present in the aqueous solution contained in the interstitial and pore volume spaces of the biomass. This reduces the impurity concentration in the biomass feedstock moving forward to the next wash step, resulting in a higher purity final product. Operating the process in countercurrent mode allows for the use of significantly less water and acid than in a single-pass water system. Biomass airlift has been found to be unexpectedly effective in transporting biomass slurry for alkali and alkaline earth metal removal prior to catalytic pyrolysis processing.
[0013] It is an object of the present invention to provide a practical, low-cost method for washing solid materials for various upgrading and converting processes that overcomes the problems of washing slurries of small, irregularly shaped particles by countercurrent movement of solids and washing solution, optionally mechanically separating the solids from the slurry after a washing or rinsing step or steps, and optionally utilizing pneumatic flow equipment as part of the solid feedstock preparation process. [Background technology]
[0014] U.S. Patent No. 10,336,628 provides an improved catalytic fast pyrolysis process for increasing the yield of useful and desirable products, particularly for producing aromatic compounds such as benzene, toluene, and xylenes from biomass feedstocks containing impurities such as alkali and alkaline earth metals, sulfur, and nitrogen components.
[0015] U.S. Patent No. 6,336,993 discloses a system and method for feeding a slurry of comminuted cellulosic fibrous material, such as wood chips, into the top of a treatment vessel, such as a continuous digester, and processing the material to remove metals prior to digestion. During pumping of the slurry by at least first and second series-connected pumps, at least one pump is not a pneumatic pump that introduces gas, but preferably has a "degassing function so that undesirable air or other gases can be removed from the slurry."
[0016] U.S. Patent No. 6,475,338 relates to the production of chemical cellulose pulp (e.g., kraft paper) by adding a chelating agent to a hot (at least 100°C) slurry of the pulp to release a significant amount of the transition metal therein to form a metal chelate complex that is preferably removed (e.g., using extraction screens in a digester) before bleaching the pulp.
[0017] U.S. Patent No. 6,792,881 discloses a method for reducing dioxins during the combustion of contaminated biomass, characterized in that the biomass is washed with water in a countercurrent extraction process to remove chlorine salts before combustion.
[0018] U.S. Patent No. 7,303,649 discloses a process for treating wood chips to reduce the concentration of undesirable inorganic components before cooking in a chemical pulp production line, in which air-trapped wood chips are treated with an aqueous leachate at high temperature and pressure, followed by draining at atmospheric or subatmospheric pressure, controlling the pressure to minimize the moisture content in the wood chips suitable for the subsequent leaching results and behavior of the chips in a digester. The aqueous leachate is, for example, pulp mill process water with a low content of undesirable inorganic components, such as spent liquor or condensate from a bleach plant. The leachate discharged from the treated wood chips can be purified and reused in the process.
[0019] U.S. Patent Nos. 7,503,981 and 8,101,024 disclose methods for removing minerals from cellulosic biomass. For example, the biomass can be pre-washed with an acid solution and rinsed with water to remove minerals before acid saccharification. Removing minerals can reduce overall acid requirements and lower pretreatment costs.
[0020] U.S. Patent No. 8,940,060 discloses a method and apparatus for forming a low-metal biomass-derived pyrolysis oil. In one embodiment, the method for forming a low-metal biomass-derived pyrolysis oil includes washing biomass containing water-soluble metal components therein with wash water substantially free of water-soluble metals. After washing the biomass, the washed biomass is separated from the water-soluble metal-containing water. The washed biomass is pyrolyzed in a pyrolysis process to form a pyrolysis vapor stream. A portion of the pyrolysis vapor stream is condensed to form condensed water. The wash water is derived from the washed biomass. In one embodiment of the apparatus, the apparatus includes a washing stage, a biomass dryer, a pyrolysis reactor, a quench system including a primary condenser and a secondary condenser, and a return line connecting the quench system to the washing stage.
[0021] U.S. Patent No. 9,109,049 provides a method for pretreating lignocellulosic biomass containing alkali metals and / or alkaline earth metals (AAEM), comprising the steps of: providing lignocellulosic biomass containing AAEM; determining the amount of AAEM present in the lignocellulosic biomass; and, based on the determination, identifying an amount of mineral acid sufficient to completely convert the AAEM in the lignocellulosic biomass to a thermally stable, catalytically inactive salt; and treating the lignocellulosic biomass with the identified amount of mineral acid, wherein the treated lignocellulosic biomass contains a thermally stable, catalytically inactive AAEM salt.
[0022] U.S. Patent No. 9,468,950 relates to the selective removal of metals and their anionic species that are detrimental to the subsequent hydrothermal catalytic conversion from a biomass feed, prior to catalytic hydrogenation / hydrocracking / hydrodeoxygenation of the biomass, on a continuous or semi-continuous basis, in a manner that minimizes the amount of water used in the process while not reducing the effectiveness of the hydrothermal catalytic treatment.
[0023] U.S. Patent No. 9,611,183 relates to the production of inorganic fertilizers and biomass fibers suitable for thermal conversion processes. A method for producing biomass fibers for thermal conversion processes and inorganic mineral fertilizers from raw biomass includes mixing downsized raw biomass with a fluid under conditions suitable for extracting inorganic nutrients from the downsized raw biomass. A liquid extract phase and a solid phase are separated from the mixture. The liquid extract phase is then concentrated to obtain the inorganic fertilizer. The solid phase is dried to obtain biomass fibers for the thermal conversion process.
[0024] U.S. Patent Nos. 9,708,763, 9,708,764, and 9,732,469 provide methods for selectively removing metals and their anionic species that are detrimental to subsequent hydrothermal catalytic conversion from biomass feed prior to catalytic hydrogenation / hydrolysis / hydroxylation of biomass in a manner that minimizes the amount of water used in the process while not reducing the effectiveness of the hydrothermal catalytic treatment.
[0025] U.S. Patent No. 9,822,383 discloses a continuous process in which a lignocellulosic biomass stream is soaked in an extraction solution having water and dissolved water-soluble species derived from previously treated lignocellulosic biomass, where the soaked lignocellulosic biomass stream is optionally rinsed with a rinse solution stream to produce a soak liquor. The electrical conductivity of the extraction liquor and / or soak liquor is controlled to a value within an appropriate target range by adjusting one or more dilution streams.
[0026] US Patent No. 10,041,015 provides a method for removing harmful components from the ash of agricultural / forest / urban biomass and low-grade coal fuels such as peat, lignite, sub-bituminous coal, and bituminous coal.
[0027] WO 2013 / 162355 relates to a process for treating biomass with relatively high moisture and salinity, such as agricultural or forestry residues, comprising: (a) mechanically pretreating the wet biomass; (b) extracting the pretreated biomass at a temperature between 40 and 160°C under pressure to keep the water substantially liquid; (c) dehydrating the heated biomass to produce dehydrated biomass and an aqueous effluent; (d) optionally heating the dehydrated biomass at a temperature above 160°C; and (e) drying and compacting the thermally treated biomass before or after step (d). The treated biomass can be used as a solid fuel. Aqueous wastewater is anaerobically treated to produce biogas and / or alcohol.
[0028] U.S. Patent Application Publication No. US2015 / 016683 discloses a process for treating solid cellulosic biomass material to reduce the content of undesirable inorganic components prior to using the material in the production of biofuels and / or biochemicals, the process comprising: providing a solid cellulosic biomass material; washing the solid cellulosic biomass material in a stream of water or a water bath, the water having a temperature in the range of 120°C to 150°C or less and at a pressure high enough to maintain the water in a liquid phase; and providing a washed cellulosic biomass material containing reduced levels of undesirable inorganic components compared to the levels in the starting biomass material.
[0029] U.S. Patent Application Publication No. US2017 / 0275817 relates to a continuous process in which a lignocellulosic biomass stream is soaked in an extraction solution containing water and dissolved water-soluble species derived from previously treated lignocellulosic biomass. In this process, water-insoluble contaminants are separated according to apparent mass density. The lignocellulosic biomass stream may further be subjected to a second optional soaking step in a countercurrent configuration. The disclosed process is useful for removing non-lignocellulosic water-soluble compounds from lignocellulosic biomass with reduced water consumption. The prior art documents relevant to the invention of this application are as follows (including documents cited in the international phase after the international filing date and documents cited when the application entered the national phase in other countries). (Prior art document) (Patent document) (Patent Document 1) U.S. Patent No. 4,087,936 (Patent Document 2) Japanese Patent Application Laid-Open No. 2005-205336 (Patent Document 3) U.S. Patent Application Publication No. 2019 / 248962 (Patent Document 4) Chinese Patent Application Publication No. 101870542 (Patent Document 5) U.S. Patent Application Publication No. 2015 / 166681 (Non-patent literature) (Non-patent document 1) SRG OUDENHOVEN ET AL, "Using pyrolytic acid leaching as a pretreatment step in a biomass fast pyrolysis plant: Process design and economic evaluation", BIOMASS AND BIOENERGY,Vol.95,01 December 2016 (2016-12-01),page 388-404 Summary of the Invention
[0030] The present invention provides a process for extracting AAEM from biomass or waste using an acidified aqueous solution with a relatively low concentration of acid, while achieving excellent extraction of AAEM and maintaining the hydrocarbon content of the biomass, resulting in reduced acid consumption, reduced corrosion, and reduced water usage. The extraction method involves a stoichiometric reaction between cations and hydrogen ions, overcoming the diffusion limitations of solid materials. Extraction is carried out in a series of washing steps in a countercurrent configuration, with a continuous supply of acidified aqueous solution and biomass. The resulting biomass and acidified water slurry is discharged after a predetermined residence time and, optionally, continuously dewatered using a mechanical expeller, which significantly improves impurity removal efficiency by squeezing solubilized impurities from the biomass in the aqueous solution. Mechanical dewatering reduces the impurity concentration in the feed to the next washing stage. After rinsing, the washed biomass is suitable for conversion to valuable products. Optionally, the biomass slurry or slurry may be transported between vessels using a pneumatic pump. Running the process in countercurrent mode uses significantly less water than a single-pass water system. The use of mechanical separation of solids and slurry liquid in this invention improves the efficiency of each washing or rinsing step in the process. This invention solves the problem of transporting biomass slurries, which tend to form mats, by using a pneumatic lift device. The pneumatic lift device consists of a lift tube or weir within the agitated tank, a gas sparger with a specific hole size and pattern, and a source of air pressure (compressed gas). Pneumatic gas is injected into the sparger, which, according to Archimedes' principle, lifts the slurry up the lift tube or weir, transporting it from one process unit to another. [Brief explanation of the drawings]
[0031] [Figure 1] FIG. 1 illustrates solid feedstock preparation as part of a conceptual process for converting biomass or waste streams into high-value products. [Figure 2] FIG. 2 shows the operation of the impurity removal portion of the solids upgrading process. [Figure 3] FIG. 3 is a schematic diagram of an apparatus for preparing and transporting a slurry obtained by pulverizing solid biomass material. [Figure 4] Figure 4 shows two of the multiple mixing vessels used for impurity removal and a schematic diagram of the pneumatic lift transport system used to transport the slurry from one process to another. [Figure 5] FIG. 5 is a schematic diagram of a raw material preparation system having "n" washing tanks. [Figure 6] Figure 6 is a schematic diagram of a feedstock washing process employing two washing steps and one rinsing step, with a solids separation step after each washing and rinsing step. [Figure 7] FIG. 7 shows one step of the biomass washing process of the present invention, which includes a sidehill screen to separate solids from liquids. [Figure 8] FIG. 8 shows the particle size distribution of the biomass samples used in Examples 2, 3, and 4. [Figure 9] Figure 9 shows the metal ion and hydrogen ion concentrations when 1 mm particle biomass is acid extracted. [Figure 10] Figure 10 shows the metal ion and hydrogen ion concentrations when 13 mm hammer mill crushed chips are extracted with acid. [Figure 11] Figure 11 shows the metal and hydrogen ion concentrations for acid extraction of 32 mm HMC. [Figure 12] Figure 12 shows the ratio of H+ consumed to the moles of positive charge of extracted polyvalent cations (Ca(2+) + Mg(2+) + Mn(2+)). [Figure 13] FIG. 13 shows the ratio of H+ incorporated into divalent cations for various wash solutions. [Figure 14] FIG. 14 shows the metal concentration as a function of extraction temperature. [Figure 15] FIG. 15 shows the percentage of metal ions extracted at various ion concentrations in the wash solution. [Figure 16] FIG. 16 is a schematic diagram of the cleaning process using pressure to remove the cleaning solution. [Figure 17]Figure 17 shows the metal distribution of the product after the pressure process. [Figure 18] Figure 18: Typical countercurrent cleaning with post-rinse pressure [Figure 19] FIG. 19 shows the metal ion concentrations from a two-step cleaning process that does not include a pressure step. [Figure 20] FIG. 20 shows the AAEM concentration of the washed biomass cake before and after pressing. [Figure 21] Figure 21 shows the results of pressurizing washed biomass followed by two rinses. This is a biomass cleaning process using two wash steps and one rinse step, with a pressurizing step after each wash or rinse step. [Figure 22] FIG. 22 shows the metal ion concentrations when two wash steps and one rinse step were used, with a pressurization step being used after each wash or rinse step. [Figure 23] FIG. 23 shows a countercurrent washing scheme with three wash-pressure sequences and one rinse-pressure sequence. [Figure 24] FIG. 24 shows the results from three wash-pressure steps and one rinse-pressure step. [Figure 25] Figure 25 shows a schematic diagram of a 20 MT / day biomass washing process. [Figure 26] FIG. 26 shows the results of the 20 MT / day wash / pressure rinse / pressure process. DETAILED DESCRIPTION OF THE INVENTION
[0032] In a first aspect, the present invention provides a countercurrent washing process for washing solid biomass, comprising a series of washing tanks equipped with an agitation device and containing a washing solution, wherein the solids are transported as a slurry from at least one washing tank via a pneumatic lift pump to a second washing tank or other device.
[0033] The process includes: each of the wash tanks comprises an agitated tank; the slurry has 0.1% to 30% by weight solids, or 5% to 25% by weight solids, or 10% to 20% by weight solids, or 15% to 20% by weight solids, or at least 10% by weight solids, or at least 15% by weight solids, or at least 20% by weight solids; the slurry has at least 85%, or at least 90%, or at least 95%, by weight, of particles that are 0.25 inches (0.6 cm), or 0.5 inches (1.2 cm), or 1. the slurry has a biomass feed that passes through a 1.0 inch (2.5 cm), or 1.5 inch (3.7 cm), or 2 inch (5.0 cm) screen; the slurry has a biomass feed in which at least 85%, or at least 90%, or at least 95%, by weight, of the particles have an aspect ratio (ratio of length to width) of at least 2:1, or 3:1, or 5:1, or 10:1, or 40:1, or 77:1, or from 1:1 to 100:1, or from 1.5:1 to 40:1, or from 2:1 to 10:1; the slurry has a fiber axis the biomass feed comprises at least 85%, or at least 90%, or at least 95%, by weight, of particles that may have a straightness, defined as the correlation of the shape to a line obtained by dividing the maximum distance of any feature from the fiber length by 0.37, or 0.71, or 0.94, or between 0.01 and 1, or between 0.05 and 0.71, or between 0.1 and 0.37; the at least one wash solution has a pH of 5 or less, or 4 or less, or 3.5 or less, or 3.0 or less, or 2.5 or less, or 2.3 or less, or 2.0 or less, or 1.7 or less; is 1.5 or less, or in the range of 1.5 to 5, or 2.0 to 5.0, or 2.0 to 3.5, or 2.5 to 3.0; the ratio of H+ ions to divalent cations in the biomass in the washing step is at least 1.8:1, or at least 2.0:1, or at least 2.1:1, or at least 2.2:1, or at least 2.5:1, or at least 3:1, or 1.8:1 to 3:1, or 2.0:1 to 2.5:1, or preferably 2.0:1 to 2.2:1; the specific gravity of the slurry is at least 0.5, or at least 0.7, or at least 1.0, or at least 1.1, or at least 1.2, or 0.5 to 1.5, or 0.7 to 1.3, or 0.8 to 1.2; the latent bulk density of the particles in the slurry is 6 lb / ft³ (0.096 g / cc) or less, or 8 lb / ft³ (0.128 g / cc) or less, or 10 lb / ft³ (0.16 g / cc) or less, or 12 lb / ft³ (0.192 g / cc) or less, 20 lb / ft³ (0.192 g / cc) or less, or 1 lb / ft³ (0.016 g / cc) to 50 lb / ft³ (0.80 g / cc), or 2 lb / ft³ (0.032 g / cc) to 20 lb / ft³ (0.32 g / cc), or 5 lb / ft³ (0.08 g / cc) to 15 lb / ft³ (0.24 g / cc); a pneumatic lift is used to transport the biomass slurry from at least one of the agitation tanks. The pneumatic lift is further characterized by one or any combination of the following: a sparger supplying gas to the airlift pump has a hole size with a ratio of transport cross-sectional area perpendicular to the lift to hole area of 144 to 3600, with a minimum hole size of 0.1 inch (2.54 mm) and a maximum of 0.5 inch (12.7 mm), and the holes are spaced at least three hole diameters apart; the gas used for pneumatic pumping is selected from air, nitrogen, carbon dioxide, or cooled flue gas, or a mixture thereof; the solids are separated from the liquid by a side-hill screen, a screw press, or both a side-hill screen and a screw press to produce washed biomass; the washed biomass is reacted in a catalytic pyrolysis process to produce olefins and aromatics; and the catalytic pyrolysis process is carried out in a fluidized bed reactor.
[0034] In another aspect, the present invention provides a process for the preparation of a solid feedstock, said process comprising: a solids milling step to reduce the size of feedstock particles; a series of solids washing steps operating as an agitated vessel in which the reduced size solids are contacted with a washing solution in a countercurrent manner; at least one air lift pump to transport a slurry of the feedstock particles in a washing solution from one vessel to another; a solids separation step in which the solids are separated from the washing solution; optionally drying the solids; and recovering the solids.
[0035] The process may be further characterized by any of the features described herein, for example, any or any combination of the following: at least one of the wash solutions is water; the solids separation step comprises a mechanical expeller; the liquid to solids mass ratio in the separation step is 20:1 or less, or 15:1 or less, or 10:1 or less, or 8:1 or less, or between 8:1 and 10:1, but preferably between 10:1 and 15:1.
[0036] In another aspect, the present invention provides a countercurrent washing process for washing solid biomass, comprising a series of washing tanks equipped with an agitation device and containing a washing solution, wherein the solids are separated from the slurry in a mechanical separation step.
[0037] The process may have any of the features described herein, for example, the following: each of the wash tanks comprises an agitated tank; the slurry has 0.1% to 30% by weight solids, or 5% to 25% by weight solids, or 10% to 20% by weight solids, or 15% to 20% by weight solids, or at least 10% by weight solids, or at least 15% by weight solids, or at least 20% by weight solids; the at least one wash solution has a pH of 5 or less, or 4 or less, or 3.5 or less, or 3.0 or less, or 2.5 or less, or 2.3 or less, or or 2.0 or less, or 1.7 or less, or 1.5 or less, or in the range of 1.5 to 5, or 2.0 to 5.0, or 2.0 to 3.5, or 2.5 to 3.0; the ratio of H+ ions to divalent cations in the biomass in the washing step is at least 1.8:1, or at least 2.0:1, or at least 2.1:1, or at least 2.2:1, or at least 2.5:1, or at least 3:1, or 1.8:1 to 3:1, or 2.0:1 to 2.5:1, or preferably 2.0:1 to 2.2:1; the slurry specific gravity is at least the slurry has a biomass feed in which at least 85%, or at least 90%, or at least 95%, by weight, of the particles pass through a 0.25 inch (0.6 cm), or 0.5 inch (1.2 cm), or 1.0 inch (2.5 cm), or 1.5 inch (3.7 cm), or 2 inch (5.0 cm) screen; the slurry has a biomass feed in which at least 85%, or at least 90%, or at least 95%, by weight, of the particles pass through a 0.25 inch (0.6 cm), or 0.5 inch (1.2 cm), or 1.0 inch (2.5 cm), or 1.5 inch (3.7 cm), or 2 inch (5.0 cm) screen; Lee has a biomass feed in which at least 85%, by weight, or at least 90%, by weight, or at least 95%, by weight, of the particles have an aspect ratio (ratio of length to width) of at least 2:1, or 3:1, or 5:1, or 10:1, or 40:1, or 77:1, or 1:1 to 100:1, or 1.5:1 to 40:1, or 2:1 to 10:1; said slurry has a straightness, defined as the correlation of the shape to a line obtained by dividing the maximum distance of any feature from the fiber axis by the fiber length, of 0.37, or 0.71, or 0.94, or 0.the biomass feed comprises at least 85%, or at least 90%, or at least 95% by weight of particles, which may be 0.01 to 1, or 0.05 to 0.71, or 0.1 to 0.37; the at least one wash solution has a pH of 5 or less, or 4 or less, or 3.5 or less, or 3.0 or less, or 2.5 or less, or 2.3 or less, or 2.0 or less, or 1.7 or less, or 1.5 or less, or in the range of 1.5 to 5, or 2.0 to 5.0, or 2.0 to 3.5, or 2.5 to 3.0; the slurry specific gravity is at least 0.5, or at least 0.7, or at least 1.0, or at least 1.1, or at least 1.2, is 0.5 to 1.5, or 0.7 to 1.3, or 0.8 to 1.2; the latent bulk density of the particles in the slurry is 6 lb / ft³ (0.096 g / cc) or less, or 8 lb / ft³ (0.128 g / cc) or less, or 10 lb / ft³ (0.16 g / cc) or less, or 12 lb / ft³ (0.192 g / cc) or less, 20 lb / ft³ (0.32 g / cc) or less, 50 lb / ft³ (0.80 g / cc) or less, or 1 lb / ft³ (0.016 g / cc) to 50 lb / ft³ (0.80 g / cc), or 2 lb / ft³ (0.032 g / cc) to 20 lb / ft³ (0.32 g / cc), or 5 lb / ft³ (0.08 g / cc) to 15 lb / ft³ (0.24 g / cc); a pneumatic lift is used to transport the biomass slurry from at least one of the stirred vessels; the mechanical separation step has a sidehill screen, a screw press, or both a sidehill screen and a screw press; the solids separated from the slurry have 70% by weight or less, or 60% by weight or less, or 50% by weight or less, or 40% by weight or less water; the washed biomass is reacted in a catalytic pyrolysis process to produce olefins and aromatics; the catalytic pyrolysis process is carried out in a fluidized bed reactor; and the airlift is operated by injecting gas near the bottom (a position or positions within 1 / 5 or 1 / 10 of the volume of the vessel bottom) into a tube or tubes such that the biomass is forced up through the tube or tubes and out of the vessel.
[0038] In another aspect, the present invention provides an apparatus for preparing solid feedstock for conversion into high-value products, the apparatus comprising: a solids grinding apparatus; one or more solids washing vessels equipped with air lift pumps for transferring feedstock slurry from one vessel to another; a filtering apparatus for separating the washed solid feedstock from the washing solution; and a drying apparatus for removing moisture from the washed feedstock.
[0039] The apparatus can be further characterized by any of the features described herein, for example, one or any combination of the following: the slurry in the cleaning tanks is continuously agitated by an agitation device; each cleaning tank is equipped with a gas outlet port; and has a control system that provides automatic control of raw material flow rate and temperature, cleaning solution flow rate and temperature, rinse solution flow rate and temperature, or air flow rate or temperature, or any combination thereof, by a series of feedback loops connected to sensors for temperature, pH, flow rate, conductivity, or volume, or any combination thereof, of the individual cleaning tanks.
[0040] In another aspect, the present invention provides a process for washing a solid material, the process comprising two or more washing steps of contacting the solid with a washing solution and removing the washing solution by mechanical means, wherein the washing solution in at least one of the washing steps comprises used washing solution from a subsequent washing step; one or more rinsing steps of rinsing the solid with water and at least partially mechanically removing the water; grinding the solid particles; and drying the washed solid particles.
[0041] The process may be further characterized by one or any combination of any of the features described herein, e.g., the solution removal is accomplished by pressing with a screw press, passing through rollers, decanting, or any combination thereof; the solids are conveyed on a belt conveyor system; and the solids are washed in one or more stirred tank reactors.
[0042] In a further aspect, the present invention provides a process for preparing a solid feedstock, the process comprising: (a) grinding biomass so that at least 95% by weight of the particles pass through a 0.25 inch (0.6 cm), or 0.5 inch (1.2 cm), or 1.0 inch (2.5 cm), or 1.5 inch (3.7 cm), or 2 inch (5.0 cm) screen; (b) mixing the biomass particles with an acidic aqueous wash solution; (c) separating the solid biomass from the wash solution by mechanical separation; repeating steps b) and c) at least one additional time; rinsing the separated solid biomass with water; separating the washed solid biomass from the rinse solution by mechanical separation; and drying the rinsed biomass to achieve less than 20%, less than 15%, or less than 10%, or less than 5%, or between 1% and 20%, or between 5% and 10% water by weight.
[0043] The process may have any of the features described herein, for example, the following: each of the wash tanks comprises an agitated tank; the slurry has 0.1% to 30% by weight solids, or 5% to 25% by weight solids, or 10% to 20% by weight solids, or 15% to 20% by weight solids, or at least 10% by weight solids, or at least 15% by weight solids, or at least 20% by weight solids; the at least one wash solution has a pH of 5 or less, or 4 or less, or 3.5 or less, or 3.0 or less; or 2.5 or less, or 2.3 or less, or 2.0 or less, or 1.7 or less, or 1.5 or less, or in the range of 1.5 to 5, or 2.0 to 5.0, or 2.0 to 3.5, or 2.5 to 3.0; the ratio of H+ ions to divalent cations in the biomass in the washing step is at least 1.8:1, or at least 2.0:1, or at least 2.1:1, or at least 2.2:1, or at least 2.5:1, or at least 3:1, or 1.8:1 to 3:1, or 2.0:1 to 2.5 :1, or preferably 2.0:1 to 2.2:1; the slurry has a biomass feed in which at least 85%, or at least 90%, or at least 95%, by weight, of the particles pass through a 0.25 inch (0.6 cm), or 0.5 inch (1.2 cm), or 1.0 inch (2.5 cm), or 1.5 inch (3.7 cm), or 2 inch (5.0 cm) screen; the slurry has at least 85%, or at least 90%, or at least 95%, by weight, of the particles pass through a 0.25 inch (0.6 cm), or 0.5 inch (1.2 cm), or 1.0 inch (2.5 cm), or 1.5 inch (3.7 cm), or 2 inch (5.0 cm) screen; , having a biomass feed having an aspect ratio (ratio of length to width) of at least 2:1, or 3:1, or 5:1, or 10:1, or 40:1, or 77:1, or 1:1 to 100:1, or 1.5:1 to 40:1, or 2:1 to 10:1; said slurry having a straightness, defined as the correlation of the shape to a line obtained by dividing the maximum distance of any feature from the fiber axis by the fiber length, of 0.37, or 0.71, or 0.94, or 0.01 to 1, or 0.05 to 0.71, or 0.1 to 0.37, or at least 90%, or at least 95% by weight of the particles; the at least one wash solution has a pH of 5 or less, or 4 or less, or 3.5 or less, or 3.0 or less, or 2.5 or less, or 2.3 or less, or 2.0 or less, or 1.7 or less, or 1.5 or less, or in the range of 1.5 to 5, or 2.0 to 5.0, or 2.0 to 3.5, or 2.5 to 3.0; the slurry specific gravity is at least 0.5, or at least 0.7, or at least 1.0, or at least 1.2, or 0.5 to 1.5, or 0.7 to 1.3, or 0.8 to 1.2; the slurry specific gravity is at least 0.5, or at least 0.7, or at least 1.0, or at least 1.1, or at least 1.2, or 0.5 to 1.5, or 0.7 to 1.3, or 0.8 to 1.2; the latent bulk density of particles in the slurry is 6 lb / ft³ (0.096 g / cc) or less, or 8 lb / ft³ (0.128 g / cc) or less, or 10 lb / ft³ (0.128 g / cc) or less. (0.16 g / cc) or less, or 12 lb / ft³ (0.192 g / cc) or less, 20 lb / ft³ (0.32 g / cc) or less, 50 lb / ft³ (0.80 g / cc) or less, or 1 lb / ft³ (0.016 g / cc) to 50 lb / ft³, (0.80 g / cc), or 2 lb / ft³ (0.032 g / cc) to 20 lb / ft³ (0.32 g / cc), or 5 lb / ft³ (0.08 g / cc) to 15 lb / ft³ (0.24 g / cc); a pneumatic lift is used to move the biomass slurry through at least one of the agitation tanks. the mechanical separation step comprises a sidehill screen, a screw press, or both a sidehill screen and a screw press; the solids separated from the slurry have 70% by weight or less, or 60% by weight or less, or 50% by weight or less, or 40% by weight or less water; the washed biomass is reacted in a catalytic pyrolysis process to produce olefins and aromatics; and the catalytic pyrolysis process is carried out in a fluidized bed reactor.
[0044] In a further aspect, the present invention provides an apparatus for washing solid biomass for conversion to high value products, comprising: a vessel with an inlet port or multiple inlet ports for introducing solid biomass or liquid or a mixture of the two and a means for agitating the mixture of solids and liquid; a pneumatic transfer pump having a source of transport gas, a transfer tube, and a sparger for introducing gas into the mixture in the transfer tube; one or more mechanical means for separating solids and liquid in the outlet mixture from the pneumatic transfer pump; and a drying apparatus for removing moisture from the washed biomass.
[0045] In a further aspect, the present invention provides a biomass composition, preferably a woody biomass composition, having 5-20 mg / kg K, 5-45 mg / kg Ca, a Ca / K ratio of 1.5 or less, and less than 10 mg / kg Mg. In other embodiments, the biomass composition has 6-17 mg / kg K, 6-36 mg / kg Ca, or 26-36 mg / kg Ca, or 1-9 mg / kg Mg, or 4-9 mg / kg Mg, or 6-9 mg / kg Mg, and a Ca / K ratio in the range of 1.3 or less, or 1-2 or less, or 1-1.5.
[0046] Figure 1 illustrates one embodiment of the process of the present invention for preparing solid feedstock and utilizing the solids in a process for converting the solids into high-value products. The feedstock is fed to a feedstock preparation train (100) having means for feedstock sizing (200), feedstock washing (300), feedstock rinsing (400), and feedstock drying (500). The resulting sized, washed, and dried feedstock is then fed to a feedstock conversion unit (600) where the feedstock product stream is converted into a mixture of products, including values, which are recovered in a product recovery system (700), and then fed to a product separation system (800) where the values are separated from other materials. It is understood that variations in the order or repetition of steps are within the contemplation of the present invention, such as multiple washing, rinsing, or drying steps, and that a washing step can be placed after a rinsing step, if desired.
[0047] Figure 2 shows details of one embodiment of the feedstock preparation process. The feedstock preparation process includes an optional feedstock sizing step (200), a washing step (300) in which the feedstock is treated with one or more wash solutions to remove impurities, a feedstock rinsing step (400) in which the washed feedstock is treated with one or more rinse solutions to remove or dilute the remaining wash solution and dissolved impurities therein, and a feedstock drying step (500) in which much of the remaining solution is removed so that it does not pass to the feedstock processing unit. An optional feedstock sizing step (not shown) may be placed either before or after the feedstock drying step (500) to break down the feedstock to a desired size range for conversion in the feedstock processing unit. As noted above, the order of steps may be varied or repeated within the contemplation of the present invention. Transfer of the feedstock between these steps may be accomplished by pneumatic pumps to reduce energy costs and minimize the tendency of the fibrous feedstock to clump or form mats.
[0048] Figure 3 shows one embodiment of an apparatus for preparing a slurry of pulverized solid feedstock, comprising: (i) a vessel (910) including a solids inlet port (915) through which solids are added and a liquid inlet (920) through which liquid(s) are introduced, (ii) an agitation means having a mechanical agitation shaft (935) and agitation blades (940), shown driven by a motor (930), and (iii) a collection port (riser) (950) at the lower end, optionally along its length, for receiving the slurry and introducing a gas flow therein via a gas inlet port (925) to transport the slurry from the vessel via pneumatic action for further processing.
[0049] Figure 4 illustrates one embodiment of two agitated wash tanks used to wash comminuted solid feedstock as part of a feedstock washing system, and airlift (pneumatic) transfer into and out of the wash tanks. The first of the two wash tanks shown, although it could be two of more, is labeled 910. The solids or slurry feed to this wash tank enters via a feed inlet line (955). Fresh wash solution can optionally be added along with the slurry via feed line 955, along with slurry from a subsequent tank via line 960, or through a separate feed port (not shown). The wash tank has a mechanical agitator shaft (935) and impeller (940) driven by a motor (930) to agitate the slurry within the tank. Air is introduced through a sparger-fitted air inlet port (925), and the air lifts the slurry through a slurry outlet port (riser) (950) and disperses it to the next tank in the series of wash tanks (980). The washing tank 910 also includes a solvent removal port (960) to allow the solvent to be diverted to another tank or recycled or disposed of, which may have a filter (975) to limit the removal of solids from the washing tank. Each washing tank includes a port (985) that allows gas to be vented for recycling or other purposes. Subsequent washing tanks (980) receive slurry from the previous tank via a supply line (950) and return the solvent to the previous tank (910) via an outlet port 960. The washing tank 980 also includes a solvent addition port (955) that can add new solvent or other liquid. A solvent addition port may optionally be included in any or all of the washing tanks. The slurry in the washing tank 980 is agitated while being washed by an agitation mechanism similar to that of the washing tank 910. Air is introduced into the slurry outlet port via an air inlet port (925) fitted with a sparger, and the slurry is carried out of the washing tank via the slurry outlet port (950) of each washing tank. Items that are essentially similar in the two tanks are either numbered the same or omitted to minimize clutter in the diagram.
[0050] Agitation within the process cleaning and rinsing tanks can be provided by any of a wide variety of agitation schemes known to those skilled in the art. Agitation can be achieved by using a recirculation scheme in which a portion of the slurry is pumped or gravity-fed out of the tank and returned at different points within the tank. Agitation can be achieved by filtering the slurry and recirculating the solid-removed solution. Gas flow, such as by generating microbubbles, can be used to agitate the slurry. Sonication can be used to agitate the slurry. The slurry can then be agitated by a mechanical agitator with a stirring paddle or multiple paddles and a shaft, as described above, or by some combination of agitation methods. The agitation energy input is preferably low, sufficient to maintain the particles in suspension rather than by gas shear or dispersion. Typical energy densities for such agitation can be 1 watt per gallon, or 0.8 watts per gallon, or preferably 0.75 watts per gallon or less.
[0051] FIG. 5 illustrates a process for preparing feedstock, including a variable number of tanks (e.g., "n") for slurry preparation, washing, and a rinse tank. The sequence includes a slurry preparation tank (310) where solids are added (302) and liquid (303) is added. The resulting slurry of solids in liquid is passed from the preparation tank via an air lift pump (312) to a first washing tank (320). Optionally, a portion of the used washing solution (333) from washing tank 2 (330) is fed to washing tank 1 (320). In washing tank 1 (320), washing solution is added and the used washing solution is discharged via an outlet port (325). The slurry in washing tank 1 is transferred via an air lift pump 322 to washing tank 2 (330). Washing tank 2 (330) receives the slurry (322) and, optionally, fresh washing solution. Wash basin 2 is provided with a liquid removal outlet (335) and an outlet port (333) for optionally transferring a portion of the used wash solution to wash basin 1 (320).
[0052] The sequence continues for the desired number of washing steps, as shown for n washing steps in Figure 5, with the final two washing steps occurring in tanks 340 and 350, each equipped with outlet ports 345 and 355, optional transfer ports 343 and 353, and air lift pumps 342 and 352, as shown, to direct the slurry to the next washing or rinsing tank. The washed slurry is transported via air lift pump (352) to rinse tank (410), which directs the rinse solution, and the spent rinse solution is removed via outlet port (415). The washed and rinsed solids are transported via air lift pump (412) to the next rinse tank (420), a second sequence of washing tanks, or a filtering and drying step, as appropriate. As with the washing process, the rinsing process may have one or more rinse tanks, as appropriate.
[0053] Figure 5 is a schematic diagram of a feedstock washing process (300) employing two washing and rinsing stages and a solids separation stage after each washing and rinsing stage. In Figure 6, the solids feed (100) enters a first washing station (W1) which receives fresh and recycled wash liquor (511) recycled from a second washing station (W2) and recycled wash liquor (517) from a second solids separator (SS2). Spent wash liquor passes through the first station, and the washed solids slurry (512) flows to a first solids separator (SS1). In the first solids separator, the slurry is compressed to squeeze out the liquid via line 513, and the partially dewatered washed solids flow via line 514 to the second washing station (W2). Fresh wash solution is supplied to W2 via line 515, along with recycled rinse solution (520) from rinse (R) and, optionally, recycled rinse solution (522) from the third solids separator (SS3), while used wash solution is withdrawn from W2 via line 511 and, optionally, supplied to W1. The twice-washed slurry from the second station flows via line 516 to the second solids separator (SS2), and liquid (517) from SS2 is optionally sent back to the first washing station (W1). In the second solids separator, the slurry is compressed to squeeze out the liquid via line 517, partially dewatered, and the twice-washed solids are passed to the rinse station (R) via line 518. In the rinse station, the solids are contacted with rinse solution supplied via line 519, and the used rinse solution is optionally returned to washing station 2 (W2) via line 520. The rinsed, twice washed slurry flows to the third solids separator (SS3) via line 521. In the third solids separator, the slurry is partially dewatered and the solution is optionally returned to Wash Station 2 (W2) via line 522.
[0054] Separation of solids from liquids can be accomplished by a variety of conventional means known to those skilled in the art, including gravity belts, filters, centrifuges, screw presses, liquid-solid settlers, membranes, and hydroclones (also known in the art as hydrocyclones), or some combination thereof. A particularly preferred solids separation step uses sidehill screens. In some cases, solids separation may involve two or more stages, in which case a less effective or less convenient separation process, i.e., filter, settler, hydrocyclone, or centrifuge, can be used followed by a more effective technique, i.e., screw press or centrifuge, although any combination that effectively separates a portion of the solution from the solids is contemplated as part of this invention.
[0055] Side-hill screens work by feeding solids-laden influent (slurry) onto a steeply angled screen face through a distributor weir. The solids land on the bottom of the screen and fall through a discharge lip onto the next stage (e.g., a screw press). Those skilled in the art will understand how side-hill screens function and how they separate the liquid and solid phases.
[0056] The solids separated from the slurry in the mechanical separation step have a significantly reduced water content compared to solids separated by other means. In some embodiments of the invention, the solids separated from the wash slurry or from the rinse slurry have 70% or less, or 60% or less, or 50% or less, or 40% or less, by weight, of water.
[0057] 7 shows a schematic diagram of one embodiment of a single washing or rinsing step of the process of the present invention, including a pneumatic pump 650, a side-hill screen 665, and a screw press 680. The process includes a solids or slurry input "biomass input" means via port 615, a solution input "liquid input" means via port 620, a process vessel 610 with an agitation means, in this case an agitation paddle 640 on shaft 635 powered by an electric motor 630, a source of transport gas, in this case a pneumatic pump with air introduced into pneumatic transfer tube 650 through port 625, a side-hill screen 665 into which the slurry output is introduced to separate liquid 670 from solids 675, and a hopper 967 for collecting and feeding solids to a screw press 680 which mechanically squeezes the separated liquid 685 from the separated solids 690 for delivery to the next stage of the process.
[0058] In some embodiments, at least one liquid-solid settling tank may be used to separate the biomass particle fines from the slurry liquid. In some embodiments, a centrifuge may be used to separate the biomass from the liquid phase. In some embodiments, a centripetal force-based separation mechanism may be used as the separation mechanism. Such centrifugal force-based separation mechanisms are also commonly referred to in the art as centripetal force-based separation mechanisms and / or vortex-based separation mechanisms. In the following description, the term "centrifugal force-based separation mechanism" will be used for simplicity, but it should be understood that this term can also refer to similar centripetal force-based or vortex-based separation mechanisms. In some embodiments, a suitable centrifugal force-based separation mechanism may comprise a hydroclone (also known in the art as a hydrocyclone).
[0059] A biomass washing process useful for catalytic pyrolysis processes involves leaching alkali and alkaline earth metals (AAEM) from biomass streams with an acidified aqueous solution using a series of agitated washing tanks. The primary AAEMs targeted for removal are calcium (Ca), potassium (K), manganese (Mn), and magnesium (Mg). Acidified aqueous leaching processes remove at least 75%, or at least 85%, or at least 95%, or at least 98%, or at least 99%, or 75-100%, or 95-99.99%, or 95-99.9% of these species by weight from the biomass stream. The resulting washed biomass may retain less than 25 ppm, or less than 15 ppm, or less than 10 ppm, or between 1 and 25 ppm, or between 2 and 15 ppm, or between 2 and 10 ppm Ca, or less than 25 ppm, or less than 15 ppm, or less than 10 ppm, or between 1 and 25 ppm, or between 2 and 15 ppm, or between 2 and 10 ppm K, or less than 25 ppm, or less than 15 ppm, or less than 10 ppm, or between 0.1 and 25 ppm, or between 0.2 and 15 ppm, or between 0.5 and 10 ppm Mn, or less than 25 ppm, or less than 15 ppm, or less than 10 ppm, or between 0.1 and 25 ppm, or between 0.2 and 15 ppm, or between 0.5 and 10 ppm Mg, or combinations thereof.
[0060] Biomass feed treated by the process of the present invention has reduced concentrations of AAEM, nitrogen, and / or sulfur compared to the as-received biomass material. In one embodiment, the concentration of K is reduced by at least 25%, or at least 50%, or at least 75%, or at least 90%, or more preferably at least 95%, or most preferably at least 98%, e.g., 25-99%, or 25-100%, or 95-99%, of its original concentration in the as-received dry biomass. In another embodiment, the concentration of Ca is reduced by at least 65%, or at least 80%, or at least 90%, or at least 95%, or preferably at least 98%, e.g., 65-99%, or 65-99.9%, or 95-99.9%, of its original concentration in the as-received dry biomass. In another embodiment, the concentration of magnesium in the treated biomass is reduced by at least 50%, or at least 75%, or at least 90%, or at least 95%, or at least 98%, e.g., 50-100%, or 90-99.9%, or 95-99.5%, from its concentration in the as-received biomass. In another embodiment, the concentration of manganese in the treated biomass is reduced by at least 75%, or at least 90%, or at least 95%, or at least 98%, e.g., 75-100%, or 95-99%, from its concentration in the as-received biomass. In another embodiment, the concentrations of AAEMs taken together are reduced by at least 50%, or at least 65%, or at least 80%, or at least 85%, or at least 90%, or preferably at least 95%, e.g., 50-99.9%, or 65-99.9%, or 95-99%, of their collective concentration in the as-received dry biomass. All concentrations are by weight.
[0061] Optimization of the washing process can be performed by assessing the efficiency of AAEM extraction in either the liquid or solid biomass phase.
[0062] TIFF0007795851000001.tif24128
[0063] TIFF0007795851000002.tif25129
[0064] where m denotes the mass of the phase and [AAEM 相 ] denotes the concentration of AAEM in that phase, and η is the efficiency. In some embodiments of this invention, the extraction efficiency measured in the liquid phase is at least 75%, or at least 85%, or at least 95%, or at least 98%, or at least 99%, or 75% to 100%, or 95% to 100%, or 98% to 100%. In some embodiments of this invention, the extraction efficiency measured in the solid phase is at least 75%, or at least 85%, or at least 95%, or at least 98%, or at least 99%, or 75% to 100%, or 95% to 100%, or 98% to 100%.
[0065] In various embodiments, the washed biomass produced in the process of the present invention has less than 50, or less than 25, or preferably less than 10 ppm, or 0.1-100, or 0.1-50, or 0.1-25, or 5-25 ppm of potassium; or less than 100, less than 50, less than 25, or preferably less than 15 ppm, or 0.1-100, or 0.1-50, or 0.1-25 ppm of calcium; or less than 100, less than 50, less than 25, or preferably less than 15 ppm, or 0.1-100, or 0.1-50, or 0.1-25 ppm of calcium. or 0.1 to 25, or 0.1 to 100, or 1 to 25 ppm magnesium; or less than 100, less than 50, less than 25, or preferably 15 ppm, or 0.1 to 100, or 0.1 to 50, or 0.1 to 25, or 0.1 to 100, or 1 to 25 ppm manganese; or less than 100, less than 50, less than 25, or preferably 15 ppm, or 0.1 to 100, or 0.1 to 50, or 0.1 to 25, or 0.1 to 100, or 1 to 25 ppm total AAEM; or some combination thereof.
[0066] In some embodiments of the invention, the washed biomass loses only a small amount of the organic matter in the raw biomass during the washing process. In some embodiments, the weight percent of organic matter lost in the process relative to the weight of organic matter in the raw biomass, as measured by total organic carbon (TOC) analysis of the wash and rinse solutions or by process mass balance, is less than 10%, or less than 8%, or less than 5%, or less than 4%, or less than 3%, or less than 2%, or less than 1%, or less than 0.5%, or less than 0.3%, or less than 0.2%, or in the range of 0.001% to 5%, or 0.01% to 3%, or 0.01% to 1%.
[0067] Without being bound by theory, the successful operation of pneumatic pumps, sometimes called airlift pumps, relies on Archimedes' principle, which involves lifting a dense slurry with a less dense gas phase. Archimedes' principle states that the upward buoyant force acting on an object immersed in a fluid, whether fully or partially immersed, is equal to the weight of the fluid it displaces and acts upward at the center of mass of the displaced fluid. When utilizing Archimedes' principle, an air break is required at the end of the airlift because the buoyancy of the gas bubbles changes the direction of the lift force. The bubbles required for airlift must be neither too small nor too large, but must be controlled to fall within a specific size range that depends on the gas density, system temperature, solid density, solution density, and slurry density (i.e., the mass fraction of solids in the slurry). Bubbles that are too small do not provide sufficient volume for displacement, and excessive energy tends to be used in bubble generation (leading to high sparger pressure differentials). Bubbles that are too large tend to agglomerate in the transport tube, forming a bubble column that rises and prevents slurry lift. A minimum dimension of 3 inches (7.5 cm) and / or a cross-sectional area of 7 square inches (35 cm) is recommended. 2) or higher, pneumatic lift using Archimedes' principle in pipes and weirs has been shown to lift materials directly from slurry suspension, overcoming the tendency of materials to form mats through the inherent turbulence associated with the bubble column within the confined lift tube or pipe. For particles that tend to form mats and that solidify and strengthen with increasing pressure on the mat, pneumatic lift prevents such mat formation through the inherent turbulence. The churn flow regime described by Hanafizadeh and Ghorbani is an apt description of the type of flow required for this slurry to maintain adequate flow ("Review Study on Airlift Pumping Systems," P. Hanafizadeh and B. Ghorbani, Multiphase Science and Technology, 24 (4): 323-362 (2012)).
[0068] The hole size and number of holes in the sparger that delivers gas to the airlift pump must be selected based on the ratio of the transport cross-sectional area perpendicular to the lift (e.g., the pipe or tube diameter if it is a pipe or tube) to the sparger hole diameter. To determine the sparger design, first estimate the amount of air required for the desired mass flow rate using a linear equation. TIFF0007795851000003.tif18166
[0069] where α is an empirically derived constant and β is an empirically derived intercept. Where m is the mass flow rate and ACFM is the actual volumetric flow rate. The required pressure is the pressure required to overcome the slurry pressure at the selected depth plus the pressure required to overcome frictional flow pressure losses, plus a margin of 15 psig (1.0 bar). The number of orifices required in the sparger can be calculated using a standard orifice flow calculation such as that in Mark's Standard Handbook for Mechanical Engineers, 10th Edition, pages 4-21.
[0070] For example, if the air lift pump has an internal diameter of 10 inches (25.4 cm), the sparger hole diameter should be between 0.0028 inches (0.071 mm) and 0.0694 inches (0.176 mm). Experimentation has determined that gas sparger holes with diameters of 0.1 inches (2.5 mm) to 0.5 inches (12.5 mm) tend to work well with wood particles having a density between 8 lb / ft³ (0.128 g / cc) and 16 lb / ft³ (0.256 g / cc) suspended in aqueous solution at 8 feet (2.4 m) of lift for a 6 inch (15 cm) diameter lift tube, with a particle size distribution such as that shown in Figure 8. The spargers of the present invention are preferably designed to distribute the air bubbles in a pattern that maintains a spacing of at least three bubble diameters to avoid bubble consolidation and column formation. For example, holes in a 0.1 inch (2.5 mm) diameter sparger should be spaced at least 0.3 inches (7.5 mm) apart. Spargers useful in the present invention are preferably installed with their exit orifices at the bottom of the riser at least 1 / 4 of the effective diameter (collection opening) of the riser to avoid direct impingement of biomass particles on the sparger, which can cause the sparger holes to become blocked by biomass. For example, for a 6 inch (15 cm) diameter riser, the sparger should be at least 1.5 inches (3.8 cm) above the bottom of the riser.
[0071] Pneumatic lifts can be used with less energy input than mechanical pumping systems when transporting slurries with high solids concentrations. In some situations, pneumatic lifts require approximately half the power input of centrifugal pumping systems. Because pneumatic lifts put less energy into the slurry, they are less damaging to the biomass feedstock, have lower operating costs, and promote better contact between the solids and the solvent.
[0072] Pneumatic lift becomes more effective as the discharge intake becomes deeper. This is due to the ability of gas to expand as it travels the length of the discharge conveying section (decreasing depth). Due to the effect of depth, pneumatic lift works well in tanks with a height-to-diameter (L / D) ratio of 1 or greater.
[0073] The slurry flow rate in the pneumatic lift pump can be adjusted to provide rapid slurry transfer without solids separation or clogging, minimize energy use, and minimize equipment size. The flow rate can be adjusted to enable smooth and rapid slurry transfer for slurries with a wide range of viscosities, solids contents, pressures, and transfer tubing geometries. In some embodiments, the linear flow velocity of the slurry can be 5-50 ft / s (1.5-15 m / s), or 10-30 ft / s (3.0-9.1 m / s), or 15-25 ft / s (4.6-7.6 m / s), or at least 10 ft / s (3.0 m / s), or at least 15 ft / s (4.6 m / s), or at least 20 ft / s (6.1 m / s).
[0074] The particle size of the feed composition can be reduced in an optional particle grinding system (200 in Figure 1) before the feed is passed through the cleaning sequence. The use of a grinding system allows for the transport of larger particle feeds between the source and the process, while allowing for the delivery of smaller particles to the cleaning and upgrading process. Smaller particles have a larger surface area and better contact with the cleaning and rinsing solutions, allowing for more effective cleaning.
[0075] Suitable devices capable of reducing the particle size of the feed composition are known to those skilled in the art. For example, the grinding system can include an industrial mill (e.g., a hammer mill, a ball mill, etc.), a blade unit (e.g., a chipper, a shredder, etc.), a plate refiner, or other suitable type of grinding or sizing system known to those skilled in the art. When using a plate refiner with a high tooth density and a gap ranging from 0.05 inches (1.27 mm) to 0.3 inches (7.62 mm), the particles produced tend to be long, narrow, and flat, with a length-to-diameter ratio (l / d) ranging from 1 to 5. This material has aligned and clinging particles with agglomerate dewatering, and tends to become stronger and more apparent viscous under differential pressure under low turbulence conditions, resulting in reduced mobility, as described in "Investigating the Impact of Particle Characteristics on Suspension Rheology" by Malvern Panalytical (https: / / www.azom.com / article.aspx?ArticleID=13727). Pneumatic pumps are particularly advantageous for particles with an l / d ratio (aspect ratio) greater than 1.5, greater than 2, greater than 3, or from 1.5 to 10, or from 2 to 5.
[0076] In some embodiments, the grinding system may have a cooling system (e.g., an active cooling system such as a pumped fluid heat exchanger, a passive cooling system such as one including fins, etc.) that can be used to maintain the feed composition at a relatively low temperature (e.g., ambient temperature) before introduction into the washing system or raw material processing unit. The grinding system may be integrally connected to the washing system or raw material processing unit or may be provided as a separate unit.
[0077] When the solid feed material comprises biomass material, it may be desirable to cool the solid material before or during grinding to reduce or prevent unwanted degradation of the feed material, for example, before flowing to the washing system. The solid material may be cooled to a temperature below 100°C, below 95°C, below 90°C, below 75°C, below 50°C, below 35°C, or below 20°C, or between 20°C and 100°C, or between 50°C and 95°C, before introducing the material into the washing system. In embodiments involving the use of a cooling system, the cooling system includes an active cooling unit (e.g., a heat exchanger) capable of reducing the temperature of the feedstock.
[0078] In embodiments of this invention, it is preferred that at least 85%, at least 90%, or at least 95% by weight of the particles be of a particular size and shape. Particles useful for processing in the cleaning processes of this invention include particles ranging from 0.005 mm to 2.8 mm, or 0.075 mm to 2.8 mm, or 0.3 mm to 2.8 mm, as measured by a Malvern Morphologi G3S Image Analyzer. In some embodiments, at least 85%, at least 90%, or at least 95% by weight of the particles processed in the cleaning processes of this invention have a particle size ratio of at least 2:1, or 3:1, or 5:1, or 10:1, or 40:1, or 77:1, or 1:1 to 100:1, or 1.5:1 to 40:1, or 2:1 to 10:1. Particles that can be treated with the washing process of the present invention can have a straightness, defined as the correlation of the shape to a line obtained by dividing the maximum distance of any feature from the straight fiber axis by the fiber length, of 0.37, or 0.71, or 0.94, or 0.01 to 1, or 0.05 to 0.71, or 0.1 to 0.37. Particles that can be treated with the washing process of the present invention can have a potential bulk density of 6 lb / ft on a dry basis. 3 (0.096g / cc) or less, or 8lb / ft 3 (0.128g / cc) or less, or 10lb / ft 3 (0.16g / cc) or less, or 12lb / ft 3(0.192g / cc) or less, 20lb / ft 3 (0.32g / cc) or less, 50lb / ft 3 (0.80g / cc) or less, 1lb / ft 3 (0.016g / cc) to 50lb / ft (0.80g / cc), or 2lb / ft 3 (0.032g / cc)~20lb / ft 3 (0.32g / cc), or 5lb / ft 3 (0.08g / cc)~15lb / ft 3 (0.24g / cc).
[0079] The feedstock introduced into the feedstock preparation process may have particles sized to facilitate the operation of the washing process. The particles may be sized using any sizing process, including, but not limited to, a hammer mill, a wet mill, or a plate refiner. The particles may have at least 95% by mass of particles that pass through a 0.25 inch (0.6 cm), or 0.5 inch (1.2 cm), or 1.0 inch (2.5 cm), or 1.5 inch (3.7 cm), or 2 inch (5.0 cm), or similar size screen.
[0080] The process of the present invention is typically carried out at an ambient temperature of from 4°C to 100°C, or from 10°C to 95°C, or from 15°C to 50°C, or from 15°C to 26°C, or at least 4°C, or at least 10°C, or at least 15°C, or below 70°C, or remaining within these ranges during processing.
[0081] In some embodiments, the washed solid material can be dried to a water content of less than 20% by weight, or less than 15%, or less than 10%, or less than 5%, or 1% to 20%, or 5% to 10%. Suitable equipment for use in the drying system (500) capable of removing water from a composition is known to those skilled in the art. For example, the drying system (500) may include an oven heated to a specific temperature through which the biomass composition is passed continuously, semi-continuously, or periodically. As another example, the drying system (500) may consist of a vacuum chamber through which the biomass composition is processed in batches. Other embodiments of the drying system may combine elevated temperatures with vacuum operation. The temperature of the drying step will typically be between 50°C and 150°C, or between 75°C and 130°C, or between 90°C and 120°C, or at least 75°C, or at least 100°C, or at least 120°C, depending on the nature of the material, the amount of moisture carried in the material, and the desired moisture content in the dried material. The cleaning and rinsing steps are preferably carried out at or near atmospheric pressure, although slightly higher pressures are used to prevent countercurrent flow of gas out of the system. Generally, pneumatic lift pumps can be operated only with a small back pressure at the outlet port, in the range of 0 to 1 bar (0 to 15 psig). Moderate pressures are preferred to minimize the energy required to pump the gas through the system. Preferred process pressures are 0 to 2 bar, or 0.2 to 1.5 bar, or 0.5 to 1.0 bar, and the pressure is gauge pressure, i.e., pressure above ambient pressure.
[0082] The wash tank can be operated at a liquid to solids mass ratio of 20:1, or 15:1, or 10:1, or 8:1, or 8:1 to 10:1, but preferably 10:1 to 15:1. The flow rate and tank size depend on the amount of biomass flowing through the system on a dry basis, with higher mass flow rates requiring higher flow rates to maintain the liquid to solids ratio.
[0083] The ratio of acidic wash solution to biomass is adjusted so that sufficient H+ ions are introduced in any one wash step to at least replace the divalent cations in the biomass to provide efficient metal removal. In some embodiments, the ratio of H+ ions in the wash step to divalent cations in the biomass is at least 1.8:1, or at least 2.0:1, or at least 2.1:1, or at least 2.2:1, or at least 2.5:1, or at least 3:1, or between 1.8:1 and 3:1, or between 2.0:1 and 2.5:1, or preferably between 2.0:1 and 2.2:1.
[0084] The residence time of solids in each washing tank is based on the turnover time (commonly known as flushing time), and the residence time distribution is based on the average residence time of a classical stirred tank. TIFF0007795851000004.tif17167
[0085] where τ is the mean residence time, t is time, and E(t)dt is the residence time distribution function (in this case, a nominal bell curve). This residence time can also be approximated using a simple turnover, where TIFF0007795851000005.tif14164
[0086] where τ is the rotation time, F is the mass flow rate leaving the washing tank, and M is the total mass in the washing tank. The definition and calculation of residence time is as described in Handbook of Industrial Mixing, Science and Practice, by Edward L. Paul, Victor A. Atiemo-Oben, and Suzanne M. Kresta, published by Wiley-Interscience, 2004.
[0087] The illustrations limit the number of cleaning and rinsing steps for clarity, but do not limit the number of cleaning or rinsing steps or the number of cleaning or rinsing solutions that can be employed in a process. The number of cleaning and rinsing tanks can be adjusted to achieve the desired degree of impurity removal from the raw material. Furthermore, the order of cleaning and rinsing steps can be adjusted to accommodate downstream process requirements, the amount and type of impurities to be removed, and the composition of the cleaning solution. In most cases, the number of cleaning tanks will be at least two, or at least three, or at least four, and one or more rinse tanks will be used. Typically, one or more rinse steps follow the final cleaning step, but additional rinse steps can be performed after any cleaning step, if desired.
[0088] As used herein, the term "washing solution" generally refers to an aqueous solution, although other solvents may also be used. The wash fluid may be selected from the group consisting of water, acidified water, alkaline water, process water produced in a biomass upgrading process, water from a quench tower, water from a quench scrubber, water from a biomass drying process, and combinations thereof. The wash solution may comprise an aqueous solution of acetic acid, formic acid, nitric acid, carbonic acid, sulfuric acid, phosphoric acid, hydrochloric acid, ammonium salts, alkylammonium salts, arylammonium salts, polyols (e.g., ethylene glycol, glycerol), or a combination thereof. The wash solution may contain components that are not liquids or have very high equilibrium vapor pressures at normal temperature and pressure (25°C, 1 bara), such as carbon dioxide, ammonia, or mixtures thereof, but have at least a partial liquid phase at the temperature and pressure of the wash conditions. The wash solution may comprise steam, preferably wet steam, i.e., steam that has at least a partial liquid phase. The cleaning solution may have a solvent other than water, such as methanol, ethanol, other alcohols, polyols (e.g., ethylene glycol, glycerol), other oxyacid salts, or a mixture of solvents in water. The cleaning solution is preferably an aqueous solution. The cleaning fluid may comprise at least a portion of an aqueous solution from a biomass remediation process, which may contain a wide range of components, such as aliphatic and aromatic alcohols, ketones, ethers, acids, esters, other oxyacid salts, amines, amides, nitriles, thiols, thioethers, or thiophenes, or compounds extracted from the solids in the cleaning step, or mixtures thereof. In some embodiments, the cleaning solution may comprise at least a portion of spent cleaning solution, which has been optionally treated and recycled. In some embodiments, the cleaning solution may have an aqueous phase exposed to gaseous combustion products, including components selected from the group consisting of NO, NO, CO, or combinations thereof.
[0089] In some embodiments of the present invention, the pH of at least one of the wash solutions is 5 or less, or 4 or less, or 3.5 or less, or 3.0 or less, or 2.5 or less, or 2.3 or less, or 2.0 or less, or 1.7 or less, or 1.5 or less, or in the range of 1.5 to 5, or 2.0 to 5.0, or 2.0 to 3.5, or 2.5 to 3.0. In some embodiments, the wash solution(s) used in subsequent wash steps have a higher pH than that used in the first wash step. In some embodiments, the pH of the second and subsequent wash steps is 5.0 or less, or 4.0 or less, or 3.5 or less, or 3.0 or less, or 2.5 or less, or 2.0 or less, or 2.0 to 5.0, or 2.5 to 5.0, or 3.0 to 4.0. In some embodiments, the pH of the wash solution in any wash step is adjusted during the wash step by adding a solution with a lower pH than the pH measured for the wash solution in contact with the biomass while the biomass is in contact with the wash solution. In some embodiments, the wash solution comprises acidified water having a pH of at least 2 or at least 2.5.
[0090] Primary AAEM ions (K) from biomass + , Ca 2+ , Mg 2+ , Mn 2+ Calculating the amount of acid required to neutralize or extract the protons from the biomass mass allows one to define the amount of acid required per mass of biomass for complete neutralization or extraction. Extraction can be monitored by assessing the consumption of acid or protons in the extraction process. This can be done by measuring either pH or conductivity. In some embodiments of this invention, the pH or conductivity of either the wash or rinse solution is continuously monitored to provide information for controlling the addition of acid, the addition or removal of wash or rinse solution, the flow rate, or the residence time of the material in either the wash or rinse step.
[0091] The cleaning step or steps are followed by one or more rinse steps with an aqueous solution containing a low concentration of AAEM, such as deionized water (DI water), or dilute acid, or water recovered from the cleaning step, or a similar aqueous solution. In some embodiments, rinsing can be performed in multiple steps or as a continuous process, with the same or different solutions used in each rinse step. The rinse solution can be water produced in the process and treated to reduce the AAEM content to an acceptable level. In some embodiments, the rinse solution has a K of less than 5 ppm, or less than 2 ppm, or less than 1 ppm, or less than 0.1 ppm, or less than 0.05 ppm, or less than 0.01 ppm, or 0.001 to 2 ppm, or 0.01 to 0.1 ppm. In some embodiments, the rinse solution has less than 20 ppm, or less than 10 ppm, or less than 5 ppm, or less than 2 ppm, or less than 1 ppm, or less than 0.1 ppm, or less than 0.05 ppm, or 0.01-20 ppm, or 0.01-5 ppm of Ca. In some embodiments, the rinse solution has less than 20 ppm, or less than 10 ppm, or less than 5 ppm, or less than 2 ppm, or less than 1 ppm, or less than 0.1 ppm, or less than 0.05 ppm, or 0.01-20 ppm, or 0.01-5 ppm of Mg. In some embodiments, the rinse solution has less than 20 ppm, or less than 10 ppm, or less than 5 ppm, or less than 2 ppm, or less than 1 ppm, or less than 0.1 ppm, or less than 0.05 ppm, or 0.01-20 ppm, or 0.01-5 ppm of Mn. In some embodiments, some combinations of the elements K, Ca, Mg, and Mn are within the ranges cited above. Each of the washing steps may be performed as a batch process or a continuous process. In some embodiments, the contact time between the biomass and the rinse solution is less than 30 minutes, or less than 10 minutes, or less than 5 minutes, or less than 3 minutes, or 0.1 to 30 minutes, or 1 to 10 minutes. Both the water and the acid can be reclaimed and reused in the process using readily available techniques, such as a combination of filtration, microfiltration, ultrafiltration, and reverse osmosis. All concentrations are by mass.
[0092] The reclaimed water contains regenerated nitric acid with approximately the same pH as the fluid entering the water reclamation system, but with impurities removed to varying degrees in order to reuse the water in the cleaning process. For the AAEMs of concern, at least 80%, or at least 83%, or at least 85%, preferably at least 86% of the K in solution may be removed, the regeneration solution may have less than 10 ppm, or less than 6 ppm, or less than 3 ppm K, at least 95%, or at least 97%, or preferably at least 99% of the Ca in solution may be removed, the regeneration solution may have less than 10 ppm, or less than 6 ppm, or less than 3 ppm, or preferably less than 1 ppm Ca, at least 95%, or at least 97%, or preferably at least 99% of the Mn may be removed, the regeneration solution may have less than 6 ppm, or less than 3 ppm, or less than 1 ppm, or preferably 0.5 ppm Mn, and at least 95%, or at least 97%, or preferably at least 99% of the Mg may be removed, the regeneration solution may have less than 6 ppm, or less than 3 ppm, or less than 1 ppm, or preferably less than 0.5 ppm Mg.
[0093] The gas used for pneumatic pumping can be any readily available gas, such as, but not limited to, air, nitrogen, carbon dioxide, or cooled flue gas, or a mixture thereof. The gas may contain water vapor. The gas mixture is typically filtered for particulates and, if present, may be scrubbed to remove harmful components. Preferably, the gas is allowed to exit a cleaning or rinsing tank through outlet valve 985 (FIG. 4) or can be pumped out. The gas may be recirculated within the system or may be fresh gas.
[0094] The gas flow rate for this pumping is proportional to the slurry flow rate but depends on the apparent viscosity of the slurry being pumped. For a slurry with 7.5% solids by weight, the flow rate ratio can be up to 0.17 actual cubic feet of gas per pound of slurry (10 L / kg), or up to 0.0625 actual cubic feet of gas per pound of slurry (3.90 L / kg), or up to 0.0584 actual cubic feet of gas per pound of slurry (3.65 L / kg), or up to 0.05 actual cubic feet of gas per pound of slurry (3.12 L / kg), or, for example, 0.06 actual cubic feet of gas per pound of slurry (3.75 L / kg), or 0.05-0.075 actual cubic feet of gas per pound of slurry (3.12-4.88 L / kg). Higher flow rate ratios may be required for slurries with higher solids content.
[0095] The concentration of solids dispersed in the slurry can vary over a wide range, but higher concentrations are preferred to minimize the size of vessels and other equipment and the energy required to agitate or transport the slurry. The slurry solids concentration can range from 1% to 30% by weight solids, or 5% to 25% by weight solids, or 10% to 20% by weight solids, or 15% to 20% by weight solids, or at least 10% by weight solids, or at least 15% by weight solids, or at least 20% by weight solids. The slurry specific gravity may be at least 0.5, or at least 0.7, or at least 1.0, or at least 1.1, or at least 1.2, or 0.5 to 1.5, or 0.7 to 1.3, or 0.8 to 1.2, and the apparent viscosity may be at least 250 cP, at least 500 cP, or at least 1000 cP, or 150 cP to 6000 cP, or 250 cP to 4000 cP, or 500 cP to 2000 cP, or less than 6000 cP, or less than 4000 cP, or less than 2000 cP.
[0096] The raw materials that can be cleaned using the present invention include all forms of biomass, organic waste, municipal solid waste, discarded food, crop residues, or other organic waste streams. As used herein, the term "biomass" is given its conventional meaning in the art and is used to refer to any organic source of renewable energy or chemicals. Its major components can be (1) trees (wood) and all other plants, (2) agricultural products and waste (corn, fruit, refuse, silage, etc.), (3) algae and other marine plants, (4) metabolic waste (manure, sewage), and (5) cellulosic municipal waste. Examples of biomass raw materials are described, for example, in Huber, GW et al., "Synthesis of Transportation Fuels from Biomass: Chemistry, Catalysts, and Engineering," Chem. Rev. 106, (2006), pp. 4044-4098.
[0097] Biomass is traditionally defined as living and recently dead matter of biological origin that can be used for fuel or industrial production. The criteria for biomass are that the material has recently entered the carbon cycle and that the carbon released during combustion does not, on average, result in a net increase in atmospheric carbon dioxide over a reasonably short period of time. (Thus, fossil fuels such as peat, lignite, and coal, which contain carbon that has not long participated in the carbon cycle and therefore result in a net increase in atmospheric carbon dioxide when burned, are not considered biomass under this definition.) Biomass most commonly refers to plant matter cultivated for use as biofuel, but it also includes plant and animal matter used to produce fiber, chemicals, and heat. Biomass also includes biodegradable waste and by-products that can be burned for fuel or converted into chemicals. Examples include municipal solid waste, food waste (biodegradable waste consisting of garden and park waste, such as flower clippings and hedge trimmings), agricultural by-products such as animal manure, food processing waste, sewage sludge, and black liquor from wood pulp or algae. Biomass excludes organic matter that has been converted by geological processes into materials such as coal, oil shale, and petroleum. Biomass commonly comes from plants, including but not limited to, miscanthus, sunflower, switchgrass, hemp, corn (maize), poplar, willow, sugarcane, and oil palm (palm oil), including all useful parts such as roots, stems, leaves, seed husks, and kernels. Cleaning of feedstock prior to introduction into the processing equipment may vary depending on the needs of the equipment and the form of the biomass.
[0098] In some embodiments, the washing system (300 in FIG. 1) can be implemented in a countercurrent configuration, where the flow of biomass to be washed and the washing fluid flow in opposite directions when encountering each other. In this configuration, the biomass encounters and interacts with washing fluids of increasing purity as it flows from the inlet of the washing process to the outlet of the washing process. In a countercurrent washing process, biomass entering the washing process with the highest concentrations of AAEM, sulfur, or nitrogen will initially encounter the least pure washing solution, i.e., the washing solution with the highest concentration of AAEM, sulfur, or nitrogen to be removed from the biomass. As the biomass flows through the process, it encounters a washing solution of increasing purity, i.e., a washing solution with a lower concentration of impurities, so that the effectiveness of washing and impurity removal is improved.
[0099] Example 1 Tests were conducted using a centrifugal pump (Warren-Rupp High Solids Pump) and then a pneumatic lift pump to pump a slurry of purified loblolly pine wood chips in water. The process was conducted at ambient temperature and pressure, with the liquid stream consisting of deionized water containing nitric acid at pH 1.7 and sufficient loblolly pine wood to achieve a slurry solids concentration of 1 to 15% by weight. The centrifugal pump clogged occasionally at a solids concentration of 4% and more frequently at a solids concentration of 6%, at which point it began to fail to pump the slurry. The pneumatic lift pumped slurries containing 0% to 15% by weight solids at a more consistent rate and discharged the same solids concentration as the slurry in the tank, meaning no solids separation occurred.
[0100] Pneumatic lift requires less power to pump high solids streams compared to conventional pumping systems. In this example system, with a slurry viscosity of 500 cP, a pneumatic transfer tubing inner diameter of 6 inches ID (15 cm), and a pressure drop of 10 psi (69 kPa) from the compressor to the point of use, the flow rate required to maintain turbulent flow was calculated to require a pump of at least 10 HP (7.4 kW), with the majority of the flow recirculating at a linear velocity of 20 ft / s (6.1 m / s) required to maintain turbulent flow by flow alone, and the pneumatic lift required approximately half of that power input.
[0101] In Example 1, a series of slurries of refined loblolly pine wood chips in municipal water were prepared at 6.2 wt%, 7 wt%, 8.4 wt%, and 10.5 wt%, respectively. One series was prepared with refined loblolly pine and another with wet-hammer-ground loblolly pine. The slurries were agitated and gravity drainage of the tank was attempted, but the 8-inch (20 cm) diameter discharge valve connected to the tank quickly clogged. The tank was agitated at these slurry solids concentrations, and a pneumatic lift was initiated. The pneumatic lift allowed each slurry to be easily transported from the tank without solids separation or clogging.
[0102] This example demonstrates that a pneumatic lift can easily transport a high concentration of wood particles (10.5 wt%) slurry, where simple gravity drainage is not feasible. This example demonstrates that a pneumatic lift can transport slurries with smaller diameter openings (6 inches (15 cm) in the example) than gravity drainage, which has a larger diameter (8 inches (20 cm) in the example) without clogging or solids separation. In some preferred embodiments, a pneumatic lift is utilized with biomass slurries having at least 7 wt% solid biomass (where "solid biomass" is based on the mass of biomass before the washing step), or at least 9 wt%, or at least 10 wt%, or in the range of 7-11 wt%, or in the range of 9-11 wt%.
[0103] Examples 2 to 10 The experimental procedure for AAEM extraction from biomass used in Examples 2-10 is as follows, except as indicated. A biomass sample is contacted with deionized (DI) water in a 1:1 weight ratio to dry biomass and held for 1.5 hours. The mixture is warmed as needed to reach room temperature (24 °C). An aliquot of DI water is used to prepare an acid solution sufficient to achieve a target acid concentration in the treatment slurry of 0.05-0.15 g HNO per kg of biomass. Wet biomass (200 g dry biomass and 200 g water) is added to the acid solution, stirring is initiated, and a timer is started. Liquid samples are taken from the slurry at set times and analyzed by inductively coupled plasma optical emission spectroscopy (ICP-OES) to determine the AAEM concentration. The pH of the liquid phase is measured with a pH meter. After a predetermined time (e.g., 20 min), the extraction is stopped and the slurry is separated through a cloth sieve to obtain a solid cake and a liquid filtrate. The solid cake is dried in an oven at 105°C for at least 4 hours.
[0104] All analyses of materials described here are of small samples of the solid separated from the liquid phase, dried, ground, and analyzed by ICP.
[0105] The concentrations of AAEM in the loblolly pine raw materials used in the examples are summarized in Table 1. [Table 1]
[0106] The parameters of Examples 2 to 4 are shown in Table 2. In Table 2, the acid level g acid / kg biomass means the acid to biomass ratio, and the acid level H + Mole / 2x mole (Ca and Mg) means the ratio of the number of moles of acid to twice the number of moles of Ca and Mg in the biomass, i.e., when the ratio is 1.0, the added H + The total charge of Ca in the biomass 2+ and Mg 2+ The total charge is equal to the total charge of the biomass particles. The biomass particles are hammer mill chips (HMC). The particle size distribution of the biomass samples used in Examples 2, 3, and 4 is shown in Figure 8. [Table 2]
[0107] Example 2 200 g of dried loblolly pine samples with an average particle size of 1 mm and 2000 g of 0.005 mol / L nitric acid solution were mixed in a 5-L beaker at 24°C (room temperature) and stirred at 140 rpm with a mechanical stirrer. Samples were taken periodically. The AAEM concentration in the liquid and H were measured during the experiment. + The concentrations are shown in FIG.
[0108] The figure shows that stoichiometric extraction of minerals is nearly complete by 20 minutes, and for 1 mm biomass particles, the concentrations of Ca, Mg, and Mn remain almost unchanged thereafter. After these 20 minutes, extraction appears to be controlled by the diffusion of cations and water into and out of the biomass. During the first 20 minutes, the reaction is controlled by both stoichiometric reaction kinetics, the diffusion of H+ into the biomass, and the diffusion of AAEM out of the biomass.
[0109] Example 3 200 g of dried loblolly pine samples ground to 13 mm hammer mill chips (HMC) and 2000 g of 0.0048 mol / L nitric acid solution were mixed in a 5-L beaker at room temperature (24°C) and 140 rpm, and stirred with a mechanical stirrer. Samples were taken periodically. The AAEM concentration and H in the liquid were measured over the period. + The concentrations are shown in FIG.
[0110] As can be seen from Figure 10, in the case of 13 mm HMC, most of the extraction of Ca and Mg occurred in the first 20 minutes. The concentrations of Ca, Mg, and Mn continued to increase slowly in the aqueous phase after the first 20 minutes. During the first 20 minutes, the stoichiometric reaction kinetics, H extraction to the biomass, and the H extraction to the biomass were observed. + The reaction appears to be controlled by the diffusion of AAEM from the biomass and the diffusion of AAEM from the biomass. This process appears to convert to a diffusion-controlled rate after 20 minutes.
[0111] Example 4 200 g of dried loblolly pine chips ground in a 32 mm wet hammer mill (HMC) and 2000 g of 0.0038 mol / L nitric acid solution were placed in a 5-L beaker and mixed at room temperature (24 °C) with stirring at 140 rpm. Samples were taken periodically and analyzed by ICP. Figure 11 shows the AAEM concentration in the liquid over the period, as well as the H + The concentration is shown.
[0112] From Examples 2-4, the extraction of AAEM during the first few minutes followed the following diffusion equation, where K1 and K2 are constants and t is time: TIFF0007795851000008.tif20163
[0113] The first few minutes are dominated by reaction kinetics, and after that, H + The diffusion of AAEM into the biomass and AAEM out of the biomass appears to be controlled by this, and larger particles exhibit slower rates of H+ and cation exchange.
[0114] In Examples 2-4, particle size affected the extraction of Ca and Mg. Smaller particle sizes resulted in better AAEM extraction because the path length for water and acid to diffuse into the wood and react with AAEM and for the released AAEM to diffuse out of the wood was shorter. This can be confirmed by comparing the time it took for the Ca concentration in solution to reach 50 ppm: 20 minutes for 1 mm particles, 60 minutes for 13 mm particles, and over 120 minutes for 32 mm particles.
[0115] The number of moles of positive charge in the extracted polyvalent cations (Ca(2+)+Mg(2+)+Mn(2+)) is expressed as the number of moles of H consumed. + The ratio of moles of acid (H+) to divalent cations is shown in Figure 12 for Examples 2-4 of the experimental process. Figure 12 shows that for each of the different sized biomass particles, approximately one mole of acid (H+) is consumed per mole of divalent cation charge, i.e., moles H+ = 2 × (moles of (Ca(2+) + Mg(2+) + Mn(2+))). Two moles of acid would be required to replace each mole of divalent cation in the biomass and release the cation into solution.
[0116] The extraction behavior of potassium has two components. Loosely held potassium diffuses rapidly to the particle surface and appears to dissolve in water. No acid is required to remove these ions. More tightly held potassium migrates slowly, so the diffusion length controls the extraction. On the other hand, for calcium, which is all tightly held within the structure, two protons replace one Ca(2+) ion, allowing the calcium ion to diffuse to the surface and into solution. Thus, calcium extraction is controlled by both the acid reaction rate and diffusion.
[0117] Example 5 Six different acid levels (identified as A through F in Table 3) were used in biomass extraction experiments according to the procedure of Example 2. The parameters for Example 5 are shown in Table 3. In the table, the stoichiometric ratio of moles of acid in solution to moles of divalent cations in the biomass is shown for each solution. After 90 minutes, samples of the solutions were analyzed to measure the concentrations of the metal ions Ca, Mg, and Mn. The results are shown in Figure 13, where the letters "A" through "F" are arranged in the approximate ratio of H+ ions to the sum of Ca(2+) + Mg(2+) + Mn(2+) ions, indicating that divalent cations are nearly completely extracted when the ratio of moles of added acid (H+) to moles of each divalent cation reaches 2:1, i.e., when the number of moles of charge added as acid (H+) equals the total charge of the divalent ions removed, i.e., (Ca(2+) + Mg(2+) + Mn(2+)). [Table 3]
[0118] Example 6 Biomass extraction was carried out at different extraction temperatures. The experimental parameters are shown in Table 4. Liquid samples were taken after 5 minutes and analyzed by ICP. Data for the sample taken after 5 minutes of extraction are shown in Figure 14. The results show that the metal extraction rate increases as the temperature increases from 10°C to 55°C. [Table 4]
[0119] Example 7 Newly refined loblolly pine (RLP) was extracted using wash solutions with different concentrations of metal ions to be extracted, and the effect of ion concentration in the wash solution on extraction was examined. The cation concentration of the wash solution was adjusted by changing the ratio of the ion concentration in the acid wash solution (ion gradient coefficient). When the ion gradient coefficient is 1.0, the metal ion concentration in the wash solution is the concentration expected if all cations are extracted into a solution containing no cations. Wash solutions with low ion gradient coefficient values contain low concentrations of cations, while wash solutions with high ion gradient coefficient values contain high concentrations of cations. Ion gradient coefficient = [ion concentration in wash solution] / [ion concentration when all ions are extracted]
[0120] Dry biomass containing 632 mg / kg K, 635 mg / kg Ca, and 206 mg / kg Mg was extracted with 200 g of loblolly pine and 2000 g of acidic wash solution, as in the previous example. The wash solution also contained 4.9 times the amount of acid required to displace the divalent cations, i.e., 9.8 moles of H+ per mole of divalent cation. The process parameters and initial metal concentrations in solution are shown in Table 6. Liquid samples were taken after 20 minutes and analyzed. The increase in AAEM concentration was calculated by first subtracting the AAEM concentration in the initial solution from the AAEM concentration in the final solution. The increase in AAEM concentration is the metal concentration extracted from the biomass and is shown in Figure 15 as a percentage of the metal contained in the untreated biomass sample. [Table 5]
[0121] The effect of ion gradient on the extraction of AAEM can be observed from Figure 15. It can be seen that a higher metal concentration in the washing solution inhibits the diffusion rate and range, resulting in less metal extraction from the biomass.
[0122] Example 8 Mineral extraction tests were conducted using purified loblolly pine biomass, and an expeller (i.e., pressurization) step was used to evaluate how much AAEM could be removed by "squeezing" the biomass. The process followed the flow diagram shown in Figure 16.
[0123] After 6 hours of extraction, the slurry was separated into leachate and wet cake in a screw press. The wet cake was pressurized at approximately 2,000 psi to obtain a pressurized leachate and a pressurized solid cake. The pressurized cake was dried at 120°C for 2 hours to obtain a dry solid. Metals were distributed among the wash solution, pressurized leachate, and dried cake. The distribution of K, Ca, Mg, and Mn from these process outputs is shown in Figure 17.
[0124] From Figure 17, the separation of AAEM into different process streams was as follows: • 73.1 wt% K, 74.6 wt% Ca, 77.9 wt% Mg, and 78.5 wt% Mn were extracted into the liquid phase ("washing liquor"). ●The press leachate contained 16.7wt% K, 15.8wt% Ca, 15.5wt% Mg, and 15.3wt% Mn. • The dried press cake ("washed, pressure-dried biomass") contained 10.2 wt% K, 9.6 wt% Ca, 6.6 wt% Mg, and 6.3 wt% Mn.
[0125] The compression efficiency (η) is defined as follows: TIFF0007795851000012.tif39167
[0126] In this example, the pressing efficiencies of K, Ca, Mg, and Mn were calculated to be 62%, 62%, 70%, and 71%, respectively.
[0127] The majority of the AAEM in the biomass flows out into the washing solution, which is separated from the wet cake. Additional dewatering under pressure removes a large amount of the AAEM that was solubilized but dissolved in the water that the wet biomass retains in its pore and interstitial volumes. The additional dewatering treatment of the solid biomass under pressure removes the AAEM that was solubilized during the washing step but that is loosely bound to the biomass and retained in the water, significantly improving the overall efficiency of the washing process. This example demonstrates that a washing process that includes a mechanical separation step, such as squeezing under pressure, significantly increases the removal of impurities from the solid biomass and therefore reduces the number of washing steps required to achieve low residual AAEM concentrations.
[0128] Example 9 A single extraction and pressurization step may not be sufficient to achieve the desired ultra-low concentrations of AAEM in solid biomass. A countercurrent extraction process can be used to efficiently extract metals from biomass while minimizing water and acid consumption.
[0129] A typical countercurrent process flow diagram for this wash-rinse process is shown in Figure 18. The wash and rinse process may be followed by one or more pressurization steps.
[0130] A countercurrent washing process was performed (see Figure 18) that included two acid extraction steps and one water rinse step, with the acid wash solution from the second wash step being used as the wash solution for the first wash step. Additionally, a countercurrent wash with additional rinse and pressurization steps was performed. These tests used wet RLP containing 632 mg / kg K, 635 mg / kg Ca, and 206 mg / kg Mg.
[0131] The process was carried out without pressure, at ambient temperature (approximately 23°C), with a liquid to solid ratio of 12.5, 15 g nitric acid / kg biomass, and 1 kg biomass on an oven-dried basis, and the results are shown in Figure 19. After each washing stage, small samples of the solids were removed for analysis and are labeled in the diagram as "Bath 1," "Bath 2," and "Rinse."
[0132] Figure 19 shows that by extracting and rinsing RLP using the countercurrent method, the metal contents of the final product ("rinse" = rinsed solid cake) were 17, 36, and 9 mg / kg for K, Ca, and Mg, respectively. The metal removal rates were 97.3%, 94.5%, and 95.6%, respectively.
[0133] Example 10 A sample of the wet cake resulting from this process was pressurized at ~2000 psi for 2 minutes. The pressurized leachate was collected and analyzed, and the resulting press cake was dried and analyzed. The results are shown in Figure 20, where the data labeled "Rinse Cake" is from the rinsed cake and the data labeled "Rinse Pressurized Cake" is from the rinse cake after it had been dewatered and dried. The ion removal from the fresh biomass is 98.1% K, 95.9% Ca, and 97.6% Mg.
[0134] This example shows that the AAEM concentration in biomass washed and rinsed twice in a countercurrent extraction process can be further reduced by adding a pressurization (dewatering) step of the rinse cake.
[0135] Example 11 The twice-washed but unrinsed cake sample from Example 9 (labeled "Tank 2" in FIG. 19 and "Cake 2B" in FIG. 21) was pressurized before being rinsed twice with DI water, producing the results shown in FIG. 21. The data labeled "Pressed before Rinse" is for the cake that was pressurized after being washed twice, while the data labeled "Rinse 1" and "Rinse 2" are for the cake that was pressurized and then rinsed once or twice. This demonstrates that using a pressurizing step before the rinsing step is effective in improving extraction efficiency.
[0136] After two rounds of acid countercurrent extraction, a pressurization step reduced the Ca content from 89 ppm to 49 ppm, a 45 wt% reduction. The first rinse step reduced the Ca concentration to 25 ppm. The second rinse step did not further reduce the Ca concentration. This example shows that if the biomass has a low Ca concentration, a single rinse step is sufficient. Two wash steps, a pressurization step, and a single rinse step resulted in 96.1% Ca removal, 98.4% K removal, and 98.1% Mg removal from the fresh biomass.
[0137] This example shows that by providing a pressurization step after cleaning and before rinsing, the removal rate of AAEM can be significantly improved and the concentrations of K and Ca can be set to desired values.
[0138] Example 12 A pressurization step was added between the washing stages, as shown in Figure 22. The output results are shown in Figure 23. In Figure 23, the sample labeled "Bath 1" is a small sample of washed solids separated from the first wash. The sample labeled "Press 1" is a small sample of washed solids from which the liquid was pressed. The sample labeled "Press 2" is the sample that was pressed after the second wash. The sample labeled "Rinse" is the sample that was rinsed, and the sample labeled "Press 3" is the sample that was rinsed after the liquid was pressed.
[0139] After one acid countercurrent extraction, the washing step reduced the Ca content from 635 ppm to 179 ppm, and the pressure step reduced the Ca content from 179 ppm to 91 ppm, a 50 wt% reduction by the pressure step. The overall Ca content reduction by the first washing and pressure step is 86%. The second acid extraction and pressure step reduced the Ca content from 91 ppm to 30 ppm, a further 67% reduction. The overall Ca removal rate is 95.6%. This demonstrates that multiple washing and pressure steps can reduce metal content more effectively than a single washing and pressure step.
[0140] Example 13 From the previous examples, it has been shown that using two acid wash stages and one rinse stage, the Ca content in the final solids can reach a range of 25-30 mg / kg. To further reduce the Ca content to 25 ppm or less, countercurrent configurations of three acid wash-pressure sequences and one rinse-pressure sequence were tested (see Figure 24). Each analysis in Figure 24 represents a sample of material that was washed and pressed (Pressure 1, Pressurization 2, and Pressurization 3) or rinsed and pressed (Presurization 4) according to the process in Figure 25.
[0141] This example was carried out in a 5 L vessel using 200 g of dried RLP at ambient temperature (approximately 23°C), a liquid to solid ratio of 12.5, and 15 g nitric acid / kg biomass. The analysis of the press cake from this process is shown in Figure 25.
[0142] As shown in Figure 25, by extracting and rinsing the biomass using a countercurrent method with three acid washing-pressurizing stages and one rinsing-pressurizing stage, the AAEM concentrations of K, Ca, and Mg in the final product were 5, 6, and 1 mg / kg, respectively, and the removal rate of each metal was more than 99%.
[0143] The results of Example 13 shown in FIG. 25 show that a combination of three washing-pressurizing steps and one rinsing-pressurizing step can remove 99% or more of the impurity metals K, Ca, and Mg from biomass.
[0144] Example 14 The countercurrent process was scaled up to a 20 ton / day biomass feed rate and consisted of two wash stages followed by dewatering, followed by a rinse stage followed by dewatering. A pneumatic pump was used to move the slurry between the wash tanks. The process was conducted at an ambient temperature of approximately 22°C with a residence time of 20 minutes, maintaining a liquid-to-solids ratio of 12.5 and a pH of 1.5 in Tank 2 and 1.7 in Tank 1. The direct acid consumption without recycle was 42.6 g HNO3 / kg biomass (dry basis). Figure 26 shows the process flow.
[0145] The results in Figure 27 represent the analysis of a sample from one wash / pressure cycle, identified as Pressurization 1; a sample that was washed once and pressurized, washed a second time, and drained overnight, identified as "Drain Overnight," and a sample that was drained overnight and then rinsed with DI water and pressurized, identified as "Pressure 3." Figure 27 shows the analysis of a scaled-up two-stage extraction process with one rinse and dewatering step after each process, which removes 98.7% of the K, 94.5% of the Ca, and 97.0% of the Mg.
[0146] These results are similar to those shown in Example 12, a similar process run in a batch sequence at a 20 liter scale, and demonstrate that this process scales up successfully. The results also demonstrate that the combination of pressurized first dewatering step and gravity drainage in the second dewatering step in a biomass washing process is effective for removing a high percentage of metals.
Claims
1. 1. A countercurrent washing process for washing solid biomass, the process comprising a series of solid washing steps for removing alkali and alkaline earth elements in a series of washing tanks equipped with an agitator and containing washing solution, the solid biomass being contacted with the washing solution in a countercurrent manner, the solid biomass being transported as a slurry from a first washing tank to a second washing tank via a pneumatic lift pump; fresh cleaning solution is optionally added to the second cleaning bath; spent washing solution is transferred from the second washing tank to the first washing tank through an outlet port; process.
2. 10. The process of claim 1, wherein the slurry of solids in the cleaning solution is 0.1% to 30% solids by weight.
3. 10. The process of claim 1, wherein the slurry has a biomass feed in which at least 85%, or at least 90%, or at least 95%, by weight, of the particles pass through a 0.25 inch (0.6 cm), or 0.5 inch (1.2 cm), or 1.0 inch (2.5 cm), or 1.5 inch (3.7 cm), or 2 inch (5.0 cm) screen.
4. 10. The process of claim 1, wherein the slurry comprises a cellulosic biomass feed in which at least 85%, or at least 90%, or at least 95% by weight of the particles have an aspect ratio (ratio of length to width) of at least 2:
1.
5. 10. The process of claim 1, wherein at least one wash solution has a pH of 5 or less, or 4 or less, or 3.5 or less, or 3.0 or less, or 2.5 or less, or 2.3 or less, or 2.0 or less, or 1.7 or less, or 1.5 or less, or in the range of 1.5 to 5, or 2.0 to 5.0, or 2.0 to 3.5, or 2.5 to 3.
0.
6. 2. The process of claim 1, a. said pneumatic lift pump, wherein the hole size of the sparger supplying gas to said pneumatic lift pump has a ratio of cross-sectional transport area perpendicular to lift to hole area of 144 to 3600, with a minimum hole size of 0.1 inches (2.54 mm) and a maximum of 0.5 inches (12.7 mm), and said holes are spaced at least three hole diameters apart; b. The gas used in the pneumatic lift pump is selected from the group consisting of air, nitrogen, carbon dioxide, or cooled flue gas, or mixtures thereof; process.
7. 10. The process of claim 1, wherein solids are separated from liquids in the slurry by a sidehill screen, a screw press, or both a sidehill screen and a screw press to produce washed biomass.
8. 10. The process of claim 1, wherein the wash solution can be selected from the group consisting of water, acidified water, alkaline water, process water produced in a biomass upgrading process, water from a quench tower, water from a quench scrubber, water from a biomass drying process, acetic acid, formic acid, nitric acid, carbonic acid, sulfuric acid, phosphoric acid, hydrochloric acid, ammonium salts, alkylammonium salts, arylammonium salts, aqueous solutions of polyols, carbon dioxide, ammonia, steam, wet steam, steam having at least a partial liquid phase, solvents other than water including methanol, ethanol, other alcohols, or other oxyacid salts, mixtures of solvents in water, alcohols, ketones, ethers, acids, esters, amines, amides, nitriles, thiols, thioethers, thiophenes, or compounds extracted from the slurry in a washing step; a portion of an aqueous solution from a biomass upgrading process that may contain a wide range of components including alcohols, ketones, ethers, acids, esters, amines, amides, nitriles, thiols, thioethers, thiophenes, or compounds extracted from the slurry in a washing step; a portion of a spent wash solution that has been optionally treated and recycled; an aqueous phase exposed to gaseous combustion products containing components selected from the group consisting of NO, NO, CO, or combinations thereof; or combinations thereof.
Citation Information
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