Biological waste treatment method and treatment system
The method of thermal hydrolysis, decanting, drying, and anaerobic digestion with superheated steam drying addresses inefficiencies in biowaste management, improving energy and nutrient recovery and reducing costs.
Patent Information
- Application Number
- JP2023513922
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-08-28
- Filing Date
- 2021-08-27
- Publication Date
- 2025-12-04
- Estimated Expiration
- 2041-08-27
AI Technical Summary
Current waste management systems face inefficiencies in utilizing energy and valuable nutrients from biowaste materials, posing risks to anaerobic digestion processes and incurring high costs.
A method involving thermal hydrolysis, decanting, drying, pyrolysis, and anaerobic digestion to process biowaste, adjusting dry solids content at each stage, and utilizing superheated steam drying to enhance energy recovery and nutrient extraction.
Enhances energy recovery and nutrient utilization from biowaste, reducing the need for external energy supplies and minimizing contamination risks, while increasing the efficiency and completeness of methane production.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to the treatment of waste and the availability of waste materials in the process for energy production, for example, by subjecting at least a portion of the treated waste to anaerobic digestion, and the availability of nutrients and other components sequestered from or derived from the treated waste stream. [Background technology]
[0002] Human demand for natural resources is an ever-growing challenge, calling for both the recycling of basic nutrients and the use of renewable energy. This evolving challenge has a major impact on waste disposal processes, gradually shifting the focus from simple disposal to recycling processes.
[0003] One example is the treatment of biowaste (or biological waste) by anaerobic digestion, where products such as biofuels may be extracted.
[0004] Pretreatment is often applied to bio-based materials to increase the degree of integrity with which they are processed during anaerobic digestion.
[0005] Such pretreatments include, for example, mechanical fragmentation of the biomaterial (e.g., ultrasonic pulse treatment, high-pressure homogenization, or grinding), biological pretreatments (e.g., enzymatic treatment), or chemical pretreatments by either thermal or chemical hydrolysis (e.g., acid or alkaline hydrolysis).
[0006] Another known method for treating biological waste is to subject the waste to pyrolysis, resulting in an effective reduction in the volume or volume of the waste and obtaining end products such as syngas, pyro-oil (or pyrolysis oil), and biochar, the latter of which can be used for various purposes, for example, as fuel in boiler systems, diesel engines, or as a substitute for oil and carbon sequestration. Recently, syngas and pyro-oil have been added to digesters to increase biological methane production from the anaerobic digestion of biological waste.
[0007] For example, in the wastewater treatment disclosure of WO 2013 / 110186, a feedstock, e.g., raw sludge from a municipal wastewater treatment plant, is fed to an anaerobic digester to produce digestate. The digestate is dewatered and agglomerated. The agglomerate may be further dried, e.g., in a thermal dryer. The agglomerate is processed in a pyrolysis system to produce syngas and biochar. The gas is transferred to the same or another digester to increase methane production. The charcoal can also be used as a soil enhancer.
[0008] As another example, WO 2017 / 156629 (Patent Document 2) discloses a method for treating waste such as municipal solid waste, in which waste such as municipal solid waste (MSF) is separated into a wet fraction and a refuse-derived fuel (RDF). For example, the waste can be separated in a press. The wet fraction is treated in an anaerobic digester. The RDF is further separated into a cellulosic fraction and a non-cellulosic fraction. The cellulosic fraction is treated by pyrolysis to produce a pyrolysis liquid. The pyrolysis liquid is added to the anaerobic digester. do.
[0009] Another example is the disclosure in WO 2017 / 161445 of a pyrolysis process carried out in two stages. In the first stage, a feedstock containing organic waste is processed to produce gas, liquid (which may be condensed from steam), and charcoal. In the second stage, the charcoal produced in the first stage is processed. At least a portion of the charcoal from the first stage (which may contain oil in the pores of the charcoal from the first stage) is converted to gas in the second stage. The temperature of the first stage is preferably 450°C or less. The temperature of the second stage is higher than the temperature of the first stage, for example, by 50°C or more.
[0010] Pyrolysis is primarily used to treat solid biological waste. Most biological waste sources are dewatered and / or dried prior to pyrolysis to reduce the amount of energy required for the pyrolysis process. The residual liquid from this dewatering process must be disposed of or further processed. To address this issue, the residual liquid from such dewatering processes is often washed using conventional scrubbers. More recently, pyrolysis has been coupled with anaerobic digestion of the liquid portion extracted from the biological waste stream to recover renewable energy for use in the pyrolysis reactor, thereby reducing the overall need for an external energy supply for pyrolysis.
[0011] For example, Chinese Patent Publication No. 108423959 (Patent Document 4) discloses a method for resource utilization of raw sludge based on pyrolysis-pyrolysis carbonization. The method includes the steps of transporting dewatered raw sludge to a raw sludge preheater, transporting the preheated raw sludge to a raw sludge pyrolysis reactor, subjecting the pyrolysis product to solid-liquid separation to obtain a pyrolysis filtrate and a solid product, sequentially drying, crushing, activating, and granulating the solid product in a natural layered manner, and then transporting the product to a pyrolysis carbonization furnace with a controllable rotation via a spiral conveyor for high-temperature flash pyrolysis to produce biochar, tar, and high-temperature waste gas. The high-temperature waste gas is then sent to the raw sludge preheater for comprehensive resource utilization of the biochar, and then subjecting the pyrolysis filtrate to anaerobic fermentation and using the resulting biogas as fuel for the pyrolysis carbonization furnace.
[0012] As yet another example, International Publication No. 2017 / 197508 (Patent Document 5) discloses a system and method for treating raw sludge (digestate) from an anaerobic digester to produce biochar. The digestate is dosed with metal cations, dehydrated, selectively dried, and pyrolyzed. The added metal ions form precipitates in the digestate, such as struvite, hydroxyapatite, brushite, or other compounds, which are retained in the biochar, increasing, for example, the phosphorus content of the biochar.
[0013] The combination of pyrolysis and anaerobic digestion in waste treatment increases the recovery of renewable energy in waste materials through biological methane production during anaerobic digestion. Processing syngas in bioreactors also reduces the need for chemical treatment of syngas to produce methane, reducing the environmental hazards as well as costs of methane production from waste sources.
[0014] Despite recent advances, challenges remain. Given the nature of the waste materials, many known processes pose an inherent risk of disrupting the microorganisms within the anaerobic digestion reactor, requiring monitoring and periodic intervention to maintain efficient anaerobic digestion. Furthermore, the digestate from many known processes has either been disposed of untreated, for example by pyrolysis, or, if further utilized, has had to be sterilized to eliminate health risks associated with foreign matter or contamination.
[0015] All current waste disposal and recycling processes are costly to implement, and even using recycled materials for energy generation, for example, only partially offsets the high costs.
[0016] Basic nutrients such as nitrogen and phosphorus have only been purely recovered in known processes. [Prior art documents] [Patent documents]
[0017] [Patent Document 1] International Publication No. 2013 / 110186 [Patent Document 2] International Publication No. 2017 / 156629 [Patent Document 3] International Publication No. 2017 / 161445 [Patent Document 4] China Patent Publication No. 108423959 [Patent Document 5] International Publication No. 2017 / 197508 Summary of the Invention [Problem to be solved by the invention]
[0018] Therefore, there remains a need for waste management systems that allow for more efficient and complete utilization of energy and valuable nutrients from biowaste materials. [Means for solving the problem]
[0019] In a first aspect, the present invention relates to a method for treating waste, comprising: a) conveying a first biological waste stream into a thermal hydrolysis reactor to achieve a content of the thermal hydrolysis reactor having a dry solids content in the range of 15% to 35% and subjecting the content to thermal hydrolysis to produce a hydrolysate (or hydrolysate product); b) subjecting the hydrolysate to decanting to separate the hydrolysate into at least a first portion (1) and a second portion (2), wherein the first portion (1) is characterized by a lower dry solids content compared to the hydrolysate, the second portion (2) is characterized by a higher dry solids content compared to the hydrolysate, and the dry solids content of the second portion (2) is in the range of 30% to 50%; c) conveying at least a portion of the second portion (2) to a dryer to separate the second portion (2) into a third portion (3) and a fourth portion (4), wherein the third portion (3) has a lower dry solids content than the second portion (2) and the fourth portion (4) has a higher dry solids content than the second portion (2), and the dry solids content of the fourth portion (4) is in the range of 50% to 95%; d) transferring at least a portion of the fourth portion (4) to a reactor for pyrolysis and subjecting the at least a portion of the fourth portion (4) to a pyrolysis process to produce biochar and a fifth portion (5) comprising synthesis gas and / or pyro-oil; e) transporting at least a portion of the first portion (1) and at least a portion of the fifth portion (5) to a bioreactor for anaerobic digestion, and subjecting at least a portion of the first portion (1) and at least a portion of the fifth portion (5) to anaerobic digestion; Including, In this case, the proportion of the first portion (1) transported to the bioreactor is adjustable, and Both the syngas content and the pyro oil content in said at least part of said fifth portion (5) conveyed to said bioreactor are adjustable.
[0020] In a second aspect, the present invention relates to a system for treating a biological waste stream, comprising: a) a reactor for thermal hydrolysis; b) a decanter; c) a dryer; d) a reactor for pyrolysis; e) a bioreactor for anaerobic digestion; A system comprising: the reactor for pyrohydrolysis is in fluid communication with the decanter; the decanter is fluidly connected to the anaerobic digestion bioreactor and the dryer, wherein the dryer is configured to convey a first portion (1) to the anaerobic digestion bioreactor, the first portion having a lower dry solids content relative to the input material received from the pyrohydrolysis reactor, and the decanter is configured to convey a second portion (2) to the dryer, the second portion having a higher dry solids content relative to the input material received from the pyrohydrolysis reactor, the second portion (2) having a dry solids content in the range of 30% to 50%; the dryer is fluidly connected to the pyrolysis reactor, and the dryer is fluidly connected to the bioreactor and / or the pyrohydrolysis reactor, and the dryer is configured to convey a fourth portion (4) to the pyrolysis reactor, the fourth portion (4) having a higher dry solids content than the second portion (2), the dry solids content of the fourth portion (4) being in the range of 50% to 95%, and the dryer is configured to obtain a third portion (3) having a lower dry solids content than the second portion (2); Additionally, the pyrolysis reactor is in fluid communication with the bioreactor. [Brief explanation of the drawings]
[0021] [Figure 1] FIG. 1 is a diagram showing a schematic diagram of a waste treatment method according to the present invention. [Figure 2] FIG. 2 is a schematic diagram of a waste treatment process according to the present invention, further comprising a heat exchanger, wherein a third portion (3) is conveyed to the thermal hydrolysis (TH) reactor to preheat the contents of the TH reactor. [Figure 3] FIG. 3 is a schematic diagram of a waste treatment method according to the present invention in which a portion of the biochar is transported to a bioreactor to aid in anaerobic digestion and to enhance the quality of the pathogen-free effluent, along with nutrients as fertilizer. [Figure 4] FIG. 4 is a schematic diagram of a waste treatment process according to the invention, in which the first portion (1) and the third portion (3) pass through a heat exchanger, which heat exchange preheats the water to produce steam (7) for use in pyrohydrolysis. [Figure 5] FIG. 5 is a schematic diagram of a preferred drying method (SSD) according to the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0022] The present invention relates to a method for treating biological materials, comprising the following steps: a) conveying a first biological waste stream into a thermal hydrolysis reactor, achieving a content of the thermal hydrolysis reactor having a dry solids content in the range of 15% to 35%, and subjecting the content to thermal hydrolysis to produce a hydrolysate; b) conveying the hydrolysate to a decanter to separate the hydrolysate into at least a first portion (1) and a second portion (2), wherein the first portion (1) is characterized by a lower dry solids content relative to the hydrolysate, and the second portion (2) is characterized by a higher dry solids content relative to the hydrolysate, and the dry solids content of the second portion (2) is in the range of 30% to 50%; c) conveying at least a portion of the second portion (2) to a dryer to separate the second portion (2) into a third portion (3) and a fourth portion (4), wherein the third portion (3) has a lower dry solids content than the second portion (2), the fourth portion (4) has a higher dry solids content than the second portion (2), and the dry solids content of the fourth portion (4) is in the range of 50% to 95%; d) transferring at least a portion of the fourth portion (4) to a reactor for pyrolysis and subjecting the at least a portion of the fourth portion (4) to a pyrolysis process to produce biochar and a fifth portion (5) comprising synthesis gas and / or pyro-oil; e) transporting at least a portion of the first portion (1) and at least a portion of the fifth portion (5) to a bioreactor for anaerobic digestion, and subjecting at least a portion of the first portion (1) and at least a portion of the fifth portion (5) to anaerobic digestion; Includes. In this case, the proportion of the first portion (1) that is transported to the bioreactor is adjustable. In this case, both the content of synthesis gas and the content of pyro oil in the at least part of the fifth portion (5) conveyed to the bioreactor can be adjusted.
[0023] One embodiment of the present invention relates to a method for treating waste, which comprises the following steps: a) subjecting a first biological waste stream having a dry solids content within the range of 15% to 35% to thermal hydrolysis to produce a hydrolysate; b) subjecting the hydrolysate to decanting (or decanting or separating) to separate the hydrolysate into at least a first portion (1) and a second portion (2), wherein the first portion (1) is characterized by a lower dry solids content relative to the hydrolysate, and the second portion (2) is characterized by a higher dry solids content relative to the hydrolysate, and wherein the dry solids content of the second portion (2) is in the range of 30% to 50%; c) subjecting the second portion (2) to drying in a closed dryer to separate the second portion (2) into at least a third portion (3) and a fourth portion (4), wherein the third portion (3) comprises substantially all of the evaporated material and has a lower dry solids content than the second portion (2), and the fourth portion (4) has a higher dry solids content than the second portion (2), and the dry solids content of the fourth portion (4) is in the range of 50% to 95%; d) subjecting the fourth portion (4) to pyrolysis to produce biochar and a fifth portion (5) comprising syngas and / or pyro-oil; e) subjecting the first portion (1) and at least a portion of the fifth portion (5) to anaerobic digestion in a bioreactor; f) subjecting the third portion (3) to anaerobic digestion in the bioreactor, or recycling the third portion (3) to the biological waste stream and / or the hydrolysate, or subjecting at least a portion of the third portion (3) to anaerobic digestion in the bioreactor and recycling the remaining portion of the third portion (3) to the biological waste stream and / or the hydrolysate; Includes.
[0024] The present invention allows for efficient utilization of the energy available in biowaste sources. The method provides an energy-efficient method for processing biowaste, allowing for high recovery of the energy stored in the waste material, where the flow of material may be dynamically adjusted, for example, to provide a suitable ratio of end product.
[0025] The energy stored in carbon-based materials, such as biological materials, present in waste streams can be assessed by measuring chemical oxygen demand (COD). During anaerobic digestion in a bioreactor, COD-contributing compounds available for anaerobic digestion can be converted to products such as methane and alcohol. During waste treatment, measuring the COD of a given portion of the waste stream allows for the determination of the amount of COD-contributing compounds present in that portion. COD measurement is based on the fact that most organic compounds are completely oxidized to carbon dioxide when exposed to strong oxidizing agents under acidic conditions. Suitable oxidizing agents are known to those skilled in the art and include, for example, potassium dichromate, which is commonly used to measure COD. Some oxidizing agents, such as potassium dichromate, do not oxidize ammonia to nitric acid (or nitrates), and COD measurements based on such oxidizing agents do not include the oxygen demand resulting from this nitrification. Therefore, the measured COD value may depend on the specific method used. In the context of the present invention, COD can be measured by the sealed tube method described in ISO standard 15705:2002.
[0026] In the context of the present invention, pyrohydrolysis is used as a pretreatment. Pyrohydrolysis allows the fragmentation (or fragmentation) of complex structures (such as plant fibers) and complex carbohydrates (such as cellulose, starch, proteins, etc.). The complex carbohydrates are fragmented into short carbohydrate chains, which contain mono- and disaccharides that are readily or at least water-soluble. Such fragmentation increases, for example, the availability of sugars for anaerobic digestion and thus the efficiency of the anaerobic digestion step. This increases the completeness of digestion and allows for a shorter retention time in the bioreactor.
[0027] Pyrohydrolysis is a well-known treatment (or process) for producing hydrolysates that generally involves heating an input material to a target temperature in the range of 60°C to 275°C, at least at the saturation pressure of the liquid portion of the input material, and maintaining the target temperature and corresponding pressure for between 10 and 180 minutes, followed by a rapid pressure drop. Within the scope of the present invention, preferred target temperatures are at least 140°C, more preferably in the range of 140°C to 250°C, even more preferably in the range of 160°C to 180°C, and most preferably 170°C. Within the scope of the present invention, preferred time intervals used for pyrohydrolysis are up to 2 hours, such as up to 1.5 hours, for example up to 1 hour, for example between 15 and 30 minutes.
[0028] In a method for treating bio-based materials according to the present invention, a first bio-based waste stream is conveyed to a reactor for thermal hydrolysis.
[0029] Within the scope of the present invention, the first biological waste stream can be understood as organic material containing carbon-based compounds, such as kitchen waste, kitchen and sanitary (or janitorial) wastewater (e.g., sewage sludge, biowaste, and lignocellulosic materials). The first biological waste stream is further characterized by containing elements that are readily digestible by microorganisms, such as sugars (or saccharides), specifically sugars in the form of carbohydrates, and amino acids, specifically amino acids in the form of proteins. Within the scope of the present invention, the first biological waste stream does not necessarily have to be a waste product as described above. The first biological waste stream can also be understood as a biological material extracted for the purpose of producing a specific product, such as biofuel, specifically methane or alcohol, or biochar.
[0030] If it is desired to obtain a pyrohydrolysis reactor content of between 15% and 35% dry solids, the dry solids content of the first biological waste stream can be adjusted. Thus, the first biological waste stream can be diluted or dewatered before being conveyed to the pyrohydrolysis reactor. Alternatively, the first biological waste stream can be diluted inside the pyrohydrolysis reactor to obtain a pyrohydrolysis reactor content of between 15% and 35% dry solids.
[0031] Dry solids (or dry solids content) is a commonly used parameter in waste disposal. Dry solids content is expressed as a percentage of the weight of a waste material from which water has been removed compared to the weight of said material before water was removed.
[0032] Following thermal treatment at or above the saturation pressure of the liquid portion of the input material, the material undergoes a rapid pressure drop, during which the pressure is released, resulting in a pressure drop from the saturation pressure at the target temperature to atmospheric pressure, i.e., steam explosion. During steam explosion, the pressure drop converts the pressurized warm liquid into steam, which then expands and causes a steam explosion. This can mechanically destroy relatively large structures, such as plant fiber and complex carbohydrates. Steam explosion may be performed by releasing the pressurized material in the thermal hydrolysis reactor to a pressure release tank. The resulting hydrolysate may contain an increased amount of solubilized carbonaceous compounds, which originate from insoluble complex compounds such as cellulose and starch. As a result of thermal hydrolysis, the hydrolysate contains at least a much lower pathogen count than the incoming biowaste material, often resulting in a sterilized hydrolysate. A hydrolysate containing a lower pathogen count than the incoming biowaste material, or a sterilized hydrolysate, is advantageous. This is because it reduces the risk of downstream contamination with undesirable microorganisms, thereby making it easier to control the composition of the microbial environment within the bioreactor. Furthermore, the bioreactor effluent may have a predictable microbial composition, increasing the value of the effluent for use in soil fertilization, etc.
[0033] In one embodiment, the treated gas (or process gas) resulting from the pyrohydrolysis is delivered to the bioreactor for anaerobic digestion. The treated gas contains a portion of the COD-contributing compounds in the biological waste material, and delivering the treated gas to the bioreactor can contribute to more complete utilization of the biological waste material. Furthermore, the treated gas contains malodorous compounds, such as sulfur compounds. By delivering the treated gas to the bioreactor, these malodorous compounds can be efficiently removed by being decomposed in the bioreactor.
[0034] The hydrolysate of the first biological waste stream is conveyed to a decanter, where the waste stream is separated into at least a first portion and a second portion. The first portion is characterized by a lower dry solids content relative to the hydrolysate, preferably the first portion has a dry solids content of 10% or less, more preferably the first portion has a dry solids content in the range of 1% to 8%, and most preferably the first portion has a dry solids content in the range of 1% to 5%. The second portion is characterized by a higher dry solids content relative to the hydrolysate, further characterized by a dry solids content in the range of 30% to 50%.
[0035] Any suitable decanter can be used to separate the waste stream into at least two portions characterized by relatively dry solids content, such as a decanter centrifuge, a filter-based decanter, a screw press decanter, or a belt press decanter, which are well known in the waste management art.
[0036] At least a portion of the first portion comprising solubilized carbon-based compounds comprising mono- and disaccharides is conveyed to a bioreactor where microorganisms convert the carbon-based compounds to biofuel, preferably methane by anaerobic digestion. Preferably, the first portion comprising solubilized carbon-based compounds comprising mono- and disaccharides is conveyed to a bioreactor where microorganisms convert the carbon-based compounds to biofuel, preferably methane by anaerobic digestion.
[0037] In a preferred embodiment of the invention, at least a portion of the first portion passes through a heat exchanger before reaching the bioreactor. In a most preferred embodiment of the invention, the first portion passes through a heat exchanger before reaching the bioreactor. In both of these embodiments, the heat exchange reduces the temperature of at least a portion of the first portion to a temperature in the range of 20°C to 40°C, thereby preventing thermal shock to the microorganisms in the bioreactor and providing a means for recycling heat. The reusable heat can be used for any purpose. Preferably, the reusable heat is used to help heat the first biological waste stream, for example, to help heat water in a boiler that generates steam for use during pyrohydrolysis. Recycling heat can reduce the need for external energy supplies. When heat is recycled to support pyrohydrolysis, the need for external energy supplies for the pyrohydrolysis step can be reduced.
[0038] The second portion, which contains insoluble components not readily digested in the bioreactor, is conveyed to a dryer to further reduce the liquid content of the second portion, resulting in a fourth portion having a higher dry solids content relative to the second portion. The dry solids content of the fourth portion is preferably in the range of 50% to 95%, more preferably in the range of 60% to 95%, and most preferably in the range of 75% to 95%.
[0039] Preferably, the dryer is a closed system dryer, in which case substantially all of the evaporated material can be recovered in the third portion. Furthermore, the closed system of the dryer provides protection from the ambient air, thereby minimizing the risk of contamination.
[0040] In one embodiment, at least a portion of the third portion is condensed in a condenser and delivered to the bioreactor for anaerobic digestion. In a preferred embodiment, the third portion is condensed in a condenser and delivered to the bioreactor for anaerobic digestion. In both of these embodiments, the condenser preferably functions as a heat exchanger, allowing for the recycling of any excess heat. The reusable heat can be used for any purpose. Preferably, the reusable heat is used to help heat the first biological waste stream, for example, to help heat water in a boiler that generates steam for use in pyrohydrolysis. Recycling heat can reduce the need for external energy supplies. Recycling heat to help with pyrohydrolysis can reduce the need for external energy supplies for the pyrohydrolysis step.
[0041] The third portion includes volatile organic compounds, which can be transformed (or metabolized) within the bioreactor. Conveying at least a portion of the third portion to the bioreactor can increase the proportion of COD-contributing compounds in the biowaste material delivered to the bioreactor, thereby contributing to more complete utilization of the biowaste material for methane production in the bioreactor and, consequently, increasing the yield of methane production in the bioreactor.
[0042] In one embodiment, at least a portion of the third portion is recycled and mixed with the first biological waste stream. In a preferred embodiment, the third portion is recycled and mixed with the first biological waste stream. Recycling at least a portion of the third portion to the reactor for thermal hydrolysis can reduce the need for an external water supply to dilute the first biological waste stream when the first biological waste stream has a dry solids content greater than 35%. Additionally, recycling at least a portion of the third portion to the reactor for thermal hydrolysis can preheat the first biological waste stream when the third portion has a higher temperature than the first biological waste stream. In another embodiment, at least a portion of the third portion is directed through a heat exchanger. In a preferred embodiment, the third portion is directed through a heat exchanger. At least a portion of the third portion may be directed through a heat exchanger, for example, to preheat feedwater in a boiler to generate steam for use during thermal hydrolysis, which can then be recycled and, for example, mixed with the hydrolysate to reduce the viscosity of the hydrolysate, thereby making the subsequent decanting (or separation) step easier, i.e., requiring less energy. In all of these embodiments, preheating the first biological waste stream reduces the amount of external energy required to generate heat, thereby increasing the overall energy efficiency of the process. Furthermore, recycling at least a portion of the third portion to the thermal hydrolysis reactor, instead of diluting the first biological waste stream with water, can increase the concentration of COD-contributing compounds in the liquid portion of the resulting hydrolysate, thereby reducing the total volume (or capacity) of liquid required to transport the COD-contributing compounds to the anaerobic digestion and methanogenesis bioreactors.
[0043] In one embodiment, when the first biological waste stream has a dry solids content of 35% or less, at least a portion of the third portion may be passed through a heat exchanger and then recycled, e.g., mixed with the hydrolysate or conveyed to a bioreactor. In a preferred embodiment, when the first biological waste stream has a dry solids content of 35% or less, the third portion may be passed through a heat exchanger and then recycled, e.g., mixed with the hydrolysate or conveyed to a bioreactor. The third portion contains some of the COD-contributing compounds of the biological waste material, and conveying at least a portion of the third portion to the bioreactor may contribute to more complete utilization of the biological waste material. Recycling at least a portion of the third portion and mixing it with the hydrolysate dilutes the hydrolysate, reducing its viscosity and thereby making subsequent decanting easier, i.e., requiring less energy. Furthermore, diluting the hydrolysate may have a cleaning effect, in the sense that more of the soluble portion of the COD-contributing compounds of the biowaste material in the hydrolysate becomes extractable into the decanter.
[0044] In all of the above embodiments, the heat exchanger extracts any excess heat from at least a portion of the third portion to bring the temperature of at least a portion of the third portion to a range of 20°C to 40°C, thereby preventing thermal shock to the microorganisms in the bioreactor, while providing a means for recycling the heat. The reusable heat can be used for any purpose. Preferably, the reusable heat is used to help heat the first biological waste stream, for example, to help heat water in a boiler that produces steam for use in pyrohydrolysis. Recycling the heat can reduce the amount of external energy required. When heat is recycled to support pyrohydrolysis, the amount of external energy required for the pyrohydrolysis step can be reduced.
[0045] Any conventional closed system dryer can be used to dry the waste stream, thereby allowing for collection of substantially all of the evaporative material, for example, a paddle-type dryer (or paddle dryer) configured to allow for collection of substantially all of the evaporative material.
[0046] Whatever the particular drying process used, the objective is to extract additional moisture from the material. To this end, energy must be imparted to the material. Generally, this energy input can be achieved by: Convection: Uses a carrier gas. Conduction: Using a heated surface. Radiation: Uses microwaves, infrared rays, and sunlight. In the context of the present invention, drying by convection or conduction with superheated steam is preferred.
[0047] In the context of the present invention, superheated steam can be understood as steam at a temperature above its boiling point at the relevant pressure. Therefore, as long as the temperature of the steam is kept higher than its saturation temperature (i.e., boiling point) at the relevant pressure, a decrease in temperature will not cause condensation. Due to the superior heat transfer properties of superheated steam compared to air (higher thermal conductivity and heat capacity at the same temperature), superheated steam allows for a fast drying rate (or a high drying ratio) to be achieved.
[0048] In the context of the present invention, convection superheated steam drying (SSD) can be understood as a closed system drying method which, for a given piece of material, can include three periods: 1: The first period during which heat is initially transferred via steam condensation, allowing the moisture content of the material to increase. 2: A period of constant velocity during which water from the material flows in a globular fashion away from the product, without diffusion resistance in the boundary layer. At a suitable degree of superheating, the heat transfer coefficient of superheated steam can be higher than that of hot dry air. Thus, at the same drying medium temperature, the product will reach a higher temperature in saturated steam (i.e., saturation temperature) than in hot air (i.e., wet-bulb temperature). In other words, above the inversion temperature (or temperature of inversion), superheated steam is a more effective desiccant than moisture and even dry air. 3: A period of slowdown, during which a dry layer forms on the surface of the material, slowing down the drying rate. During this period, the temperature of the product rises to the temperature of superheated steam. During this period, the drying rate can also be higher than in the case of hot air drying.
[0049] As can be seen from the above, the application of convection SSD not only has a positive impact on processing times, but also allows for more uniform drying of the materials involved. Furthermore, by utilizing convection SSD, the method of the present invention allows for the reuse of excess steam energy for other purposes, thereby achieving a higher overall energy efficiency for the entire process.
[0050] Additionally, the higher thermal conductivity and heat capacity of superheated steam compared to hot air allows for significantly enhanced heat transfer not only to the material being dried, but also to contaminating microorganisms, which can inactivate microorganisms and potentially sanitize both the dried material and the resulting excess / purged stream or condensate.
[0051] By applying superheated steam for drying by convection, the material to be dried is introduced into the superheated steam environment, where it is heated by convection (period 1 above), and then its moisture evaporates (period 2 above). The low viscosity of superheated steam promotes rapid penetration into the biomass material treated by the method of the present invention. Therefore, superheated steam drying is particularly effective for materials with a porous structure, such as the biomass material of the present invention, and can result in shorter retention times during the drying process. As the heat of evaporation is supplied from the superheated steam to the material, the steam environment cools. The removed moisture evaporates, resulting in excess steam, which is vented from the drying chamber to control stratification. The superheated steam is recirculated and reheated in a closed system. In this way, the temperature can be kept constant and the steam remains superheated (see Figure 5).
[0052] Any conveying technique can be used for convective superheated steam drying in accordance with the present invention, taking advantage of the substantial difference in density between air and steam, and by properly handling the material to be dried.
[0053] In a particularly preferred embodiment of the present invention, superheated steam is used as the heating medium inside the dryer, instead of, for example, air, in addition to the convection heating described above. Apart from the above advantages, the use of superheated steam drying (SSD) instead of air in convection-based methods reduces the risk of oxidizing volatile carbonaceous compounds in the biomass material according to the present invention, thereby contributing to increased energy efficiency of the overall process. Oxidation of volatile carbonaceous compounds could otherwise result in reduced recovery rates in the bioreactor, reducing emissions such as methane from anaerobic digestion, and thus reducing the energy efficiency of the overall process. Furthermore, the use of superheated steam drying reduces the risk of dust dispersion inside the dryer reactor, thus providing a more stable and safer system for drying waste streams. Thus, in the context of the method of the present invention, SSD processing offers several advantages over other drying processes.
[0054] In a further preferred embodiment, superheated steam is also used as a heating medium to transfer heat to the outer jacket of the dryer reactor to achieve effective heating of the waste stream being treated in the dryer by the superheated steam, both indirectly by conduction from the inner surface of the jacket and directly by convection from the superheated steam flowing through the dryer reactor chamber as the heating medium.
[0055] In either embodiment, when superheated steam is used as the heating medium, the superheated steam can be reheated by any suitable heating means, such as a natural gas burner or a heat exchanger.
[0056] In a most preferred embodiment, the SSD-based dryer used in the method according to the present invention comprises a reactor for drying the biomaterial, a loop system for circulating vapors, a circulation means, at least one compressor, and a heating means (see FIG. 5).
[0057] Preferably, the drying reactor further comprises an agitation means, such as a paddle fixed to a central rotating shaft of the drying reactor or a protrusion on the inner wall of the drying reactor, to agitate the biomaterial during the drying process, reduce compaction of the contents of the drying reactor, and achieve uniform heating of the contents of the drying reactor.
[0058] The drying reactor chamber is fluidly connected to a loop system in which steam is circulated or can be circulated. Any suitable circulation means, such as a blower (or fan), may be used to ensure a constant and controllable flow of steam through the loop system and the drying reactor. The loop system includes a heating means, such as a natural gas burner or heat exchanger, for reheating the superheated process steam, preferably a heat exchanger.
[0059] Superheated steam circulates through the loop system. Superheated steam is steam that has a temperature above its saturation temperature at a given pressure. Thus, the superheated steam is used to heat the biowaste material in the drying reactor chamber, allowing the excess superheated steam to evaporate the water contained in the material without condensing the steam supplied to the reactor chamber. The flow of superheated steam through the loop system must be fast enough to prevent the steam inside the reactor chamber from reaching a temperature below its saturation temperature at the pressure inside the drying reactor, because steam below this condition could condense and rewet the biomaterial.
[0060] The generation of excess superheated steam can increase the pressure in the loop system. The excess pressure and resulting excess superheated steam is released or purged via an outlet in fluid communication with the loop system and the at least one compressor. Preferably, the outlet in fluid communication with the loop system and the at least one compressor is located downstream of the circulation means and upstream of the reheating of the superheated steam (see FIG. 5).
[0061] The flow of excess / purged superheated steam through the loop system and the outlet fluidly connected to the at least one compressor can be controlled by introducing excess superheated steam into the at least one compressor, thereby creating a pressure gradient that causes the flow of excess superheated steam toward the at least one compressor.
[0062] The excess / purged superheated steam is compressed in at least one compressor to achieve reheating of the excess superheated steam. Due to inefficiencies in the one or more compressors, the heat gain of the excess superheated steam during compression exceeds the theoretical heat gain expected based on pressure increase alone, thereby increasing the energy content of the excess superheated steam. Preferably, the excess superheated steam is reheated to a temperature of at least 110°C, more preferably to a temperature in the range of 110°C to 300°C, even more preferably to a temperature in the range of 110°C to 200°C, and most preferably to a temperature in the range of 120°C to 150°C. Preferably, the excess superheated steam is compressed to a pressure in the range of 3 bar to 15 bar, more preferably to a pressure in the range of 4 bar to 10 bar, and most preferably to a pressure of 5 bar.
[0063] The pressurized excess superheated steam is separated into at least two pressurized excess superheated steam streams, i.e., a first pressurized excess superheated steam stream and a second pressurized excess superheated steam stream. The first pressurized excess superheated steam is conveyed through a heat exchanger, preferably a plate heat exchanger, specifically a mechanical vapor recompression (MVR) heat exchanger, which allows for opening the heat exchanger and cleaning the outer plate walls during maintenance, since some fouling from the process steam is expected. The heat exchanger reheats the process steam, which circulates in a loop through the drying reactor. Using the pressurized excess superheated steam to reheat the process steam allows for the substitution of natural gas burners, which would otherwise be used in most conventional steam dryers. The first pressurized excess superheated steam stream may at least partially condense within the heat exchanger due to the heat exchange, and this condensate may be conveyed through an outlet of the heat exchanger (see FIG. 5).
[0064] The second pressurized excess superheated steam stream is conveyed through the drying reactor outer casing. The second pressurized excess superheated steam stream exchanges heat with the second portion of the drying reactor interior, thereby condensing a portion of the pressurized excess superheated steam. Preferably, the drying reactor outer casing further comprises an outlet to allow recovery of excess condensate, although the excess condensate can be used further downstream, for example, by conveying the excess condensate to an anaerobic digestion bioreactor.
[0065] Preferably, the SSD-based dryer is operated at atmospheric pressure in a loop system including the drying reactor chamber, the temperature inside the reactor chamber being at least 100°C, preferably in the range of 105°C to 200°C, and more preferably in the range of 110°C to 150°C.
[0066] Loop and SSD-based dryers are located within closed (or sealed) systems, meaning that the various vapor streams are protected from contact with the ambient air, limiting the risk of contamination from the ambient air.
[0067] Condensate conveyed through an outlet in the heat exchanger and excess condensate collected from the drying reactor housing are collected in the third section.
[0068] In one embodiment, the excess superheated steam passes through a steam filter to prevent particles from entering at least one compressor. The steam filter allows the passage of water-soluble, non-volatile COD-contributing compounds present in the excess steam. In the context of this embodiment, it is particularly preferred that the outlet fluidly connected to the closed system and the at least one compressor is located downstream of the circulation means and upstream of the reheating of the superheated process steam. Inefficiencies in the circulation means, such as a blower (or fan), can increase the temperature of the excess superheated steam, thereby reducing the risk of condensation of the excess superheated steam in the steam filter. Furthermore, the circulation means allows for a higher flow rate of the excess superheated steam through the filter.
[0069] The solid fraction (or fractions) resulting from the drying process are collected in the fourth fraction. This fourth fraction contains insoluble elements that are not easily digested in the bioreactor. This fourth fraction is transported to a pyrolysis reactor and subjected to pyrolysis, i.e., heated in an oxygen-deficient environment, resulting in biochar and a fifth fraction containing pyrolysis products of syngas and / or pyro-oil. The relative proportions of the end products of pyrolysis depend on both the input material subjected to pyrolysis and the pyrolysis parameters (i.e., temperature, heating rate, and holding time).
[0070] In one embodiment, optimizing methane yield is preferred, and the pyrolysis parameters are adjusted to produce high levels of the syngas components H and CO, which can be readily converted to methane in the bioreactor, and low amounts of pyrolysis oil, which often contains inhibitors to anaerobic digestion, such as ammonia.
[0071] In a preferred embodiment, the fourth portion is pyrolyzed at a target temperature of at least 400° C., preferably the fourth portion is pyrolyzed at a target temperature in the range of 400° C. to 1000° C., such as 500° C. to 900° C., and more preferably the fourth portion is pyrolyzed at a target temperature in the range of 600° C. to 800° C. The preferred target temperatures for pyrolysis of the fourth portion result in high levels of syngas components H and CO, which can be easily converted to methane in the bioreactor, and low levels of pyrolysis oil, which often contains inhibitors to anaerobic digestion, such as ammonia.
[0072] In a preferred embodiment, the pyrolysis reactor is heated by an electric heater (or heaters) to allow precise control of the process parameters, particularly the heating rate and the target temperature.
[0073] In a preferred embodiment, the method of the present invention comprises inputting a second waste stream into a dryer and / or pyrolysis reactor and subjecting said second waste stream to drying and / or pyrolysis.
[0074] Within the scope of the present invention, the second waste stream should be understood as a material comprising carbonaceous compounds, which are further characterized by comprising primarily elements that are not readily digestible by microorganisms, examples of such carbonaceous compounds being plastics and lignin.
[0075] Optionally, the second or fourth portion and the second waste stream are mixed prior to drying or pyrolysis, either prior to entering the dryer or pyrolysis reactor, or by conveying both streams into the same dryer and / or pyrolysis reactor. Alternatively, the second or fourth portion and the second waste stream may be subjected to drying and / or pyrolysis separately, with drying and / or pyrolysis parameters optimized for the input materials and desired output products.
[0076] At least a portion of the fifth portion is delivered to the anaerobic digestion bioreactor, which also receives at least a portion of the first portion, where at least a portion of the first portion and at least a portion of the fifth portion are subjected to anaerobic digestion. In most embodiments, delivering at least a portion of the fifth portion to the bioreactor increases the overall yield of methane produced in the bioreactor. Optionally, the remainder of the synthesis gas and / or pyro-oil contained in the fifth portion (5) can be used for other purposes, such as fuel usable in a boiler to heat water to generate steam (7) used during pyrohydrolysis.
[0077] In a preferred embodiment, at least a portion of the biochar resulting from the pyrolysis is transported to the bioreactor. Adding biochar to the bioreactor provides several benefits to the anaerobic digestion process and improves the quality of the digestate as an end product. Biochar reduces microbiological ammonia inhibition, thereby contributing to efficient anaerobic digestion. Furthermore, biochar fixes basic nutrients, such as phosphorus and nitrogen species, as well as potassium and calcium, thereby reducing nutrient leaching into the soil and increasing nutrient availability for plants when the digestate is used as fertilizer. The remainder of the biochar can be used for various purposes, such as carbon sequestration in soil.
[0078] In a preferred embodiment, said third portion (3) is a condensate resulting from subjecting said second portion (2) to a drying process using superheated steam (SSD) and is therefore pathogen-free.
[0079] Furthermore, the invention also relates to a system, which achieves the same advantages as those described for the method according to the invention.
[0080] A second aspect of the present invention relates to a system for treating biological waste, the system comprising: a) a reactor for thermal hydrolysis; b) a decanter; c) a dryer; d) a reactor for pyrolysis; e) a bioreactor for anaerobic digestion; Includes. The thermohydrolysis reactor is fluidly connected to the decanter. The decanter is fluidly connected to the anaerobic digestion bioreactor and the dryer, and is configured to convey a first portion (1) to the anaerobic digestion bioreactor, the first portion having a lower dry solids content relative to the input material received from the pyrohydrolysis reactor, and is configured to convey a second portion (2) to the dryer, the second portion having a higher dry solids content relative to the input material received from the pyrohydrolysis reactor, the second portion having a dry solids content ranging from 30% to 50%. The dryer is fluidly connected to the pyrolysis reactor, and is further fluidly connected to the bioreactor and / or the pyrohydrolysis reactor. The dryer is configured to deliver a fourth portion (4) to the pyrolysis reactor, the fourth portion (4) having a higher dry solids content than the second portion (2), the dry solids content of the fourth portion (4) being in the range of 50% to 95%. The dryer is configured to deliver a third portion (3) having a lower dry solids content than the second portion (2). Additionally, the pyrolysis reactor is in fluid communication with the bioreactor.
[0081] In one embodiment of the invention, the system for treating a biological waste stream comprises: a) a reactor for thermal hydrolysis; b) a decanter; c) a closed system dryer including an external barrier to allow collection of substantially all evaporative material; d) a reactor for pyrolysis; e) a bioreactor for anaerobic digestion; Includes. The thermohydrolysis reactor is in fluid communication with the decanter. The decanter is fluidly connected to the anaerobic digestion bioreactor and the dryer, and the dryer has an outlet fluidly connected to the bioreactor and / or the thermohydrolysis reactor. Additionally, the pyrolysis reactor is in fluid communication with the bioreactor.
[0082] In one embodiment, the thermohydrolysis reactor includes a gas outlet fluidly connected to the bioreactor by a closed system for conveying gas. In a preferred embodiment, the thermohydrolysis reactor further includes a gas outlet fluidly connected to the bioreactor by a closed system for conveying gas, and the decanter includes a gas outlet fluidly connected to the bioreactor by a closed system for conveying gas.
[0083] In both of the above embodiments, the closed system preferably connects the gas outlet from the pyrohydrolysis reactor and / or the gas outlet from the decanter to the bioreactor for smooth gas transport, and further includes a heat exchanger for cooling the treated gas. Cooling the treated gas reduces the risk of overheating the contents of the bioreactor, thus contributing to a stable temperature in the bioreactor and, therefore, to efficient anaerobic digestion. The treated gas contains some of the COD-contributing compounds of the biological waste material, and transporting the treated gas to the bioreactor contributes to more complete utilization of the biological waste material. Furthermore, the treated gas may contain malodorous compounds, such as sulfur compounds, which can be efficiently removed by transporting the treated gas to the bioreactor, where they are decomposed in the bioreactor.
[0084] In one embodiment, the dryer is a closed dryer having an external barrier to retain gaseous species, including vapor, so that substantially all of the vaporized material can be collected within the third section.
[0085] In a preferred embodiment, the dryer having an external barrier for retaining gaseous species, including vapor, is a heat-assisted dryer.
[0086] In a further preferred embodiment, the dryer is a superheated steam dryer.
[0087] In a further preferred embodiment, the superheated steam dryer having an external barrier for retaining gaseous species including steam further comprises heating means for reheating the superheated steam, such as a natural gas burner or a heat exchanger. Preferably, the heating means for reheating the superheated steam is a heat exchanger.
[0088] In a most preferred embodiment, the dryer is an SSD-based dryer comprising a reactor for drying biological material, a loop system for circulating superheated steam, steam circulation means such as a fan, at least one compressor, and a heat exchanger. Preferably, the circulation means is configured to control the flow of superheated steam in the loop system, which is fluidly connected to the drying reactor, and conveying means, such as pipes (or tubes), are arranged to convey excess superheated steam resulting from heating the reactor contents to one or more compressors. Preferably, the one or more compressors are configured to compress the excess superheated steam to a pressure in the range of 3 to 15 bar, more preferably in the range of 4 to 10 bar, and most preferably in the range of 5 bar. Preferably, the conveying means, such as a pipe, is arranged to convey a first portion of the excess superheated steam to a heat exchanger, such as an MVR heat exchanger, and a second portion of the excess superheated steam to the drying reactor outer casing and from the drying reactor outer casing back to the one or more compressors. Preferably, the heat exchanger, such as the MVR heat exchanger, is configured to exchange heat from the excess superheated steam to the superheated treatment steam within the closed system, and further configured to convey condensate through an outlet.
[0089] In one embodiment, the SSD-based dryer includes a particle filter configured to filter the over-superheated steam before it enters one or more compressors. In the context of this embodiment, it is particularly preferred that the outlet smoothly connecting the loop system to the at least one compressor is located downstream of the circulation means and upstream of the reheating of the superheated steam.
[0090] In a further preferred embodiment, the SSD-based dryer further comprises a condensate outlet within the housing of the drying reactor.
[0091] In a preferred embodiment, the pyrolysis reactor is heated by an electric heater, which is preferably a microwave-assisted heater.
[0092] In one embodiment, the pyrolysis reactor further comprises an inlet for waste.
[0093] In one embodiment, the system further includes a second pyrolysis reactor configured to receive the second waste stream, and the fourth portion and the second waste stream are subjected to pyrolysis in parallel in separate pyrolysis reactors. Processing the fourth portion and the second waste stream in parallel allows for tuning of pyrolysis parameters to the particular type of material being fed into the pyrolysis reactor, thus allowing for a desired ratio of output products to be obtained.
[0094] In one embodiment, the system according to the invention further comprises one or more heat exchangers, preferably configured to exchange heat from the first portion and / or the third portion into feedwater steam for a boiler that generates steam for use in pyrohydrolysis.
[0095] The system according to the present invention can be configured to have a compact design and be installable in limited spaces, for example, on ships such as cruise ships or in apartment buildings. Furthermore, when the system according to the present invention includes a superheated steam dryer, preferably an SSD-based dryer, it can provide a safe system with reduced risk of dust dispersion, which is particularly effective in cruise ships, apartment buildings, and other buildings housing people. Furthermore, the one or more heat exchangers can be configured to heat various processes on such ships or apartment buildings, for example, water for kitchens and / or baths, or room temperature control.
[0096] Detailed explanation of the illustrated figures FIG. 1 is a schematic diagram of a waste treatment process according to the present invention. A first biological waste stream in the form of raw sludge is conveyed into a reactor for thermal hydrolysis (TH). The dry solids content of the first biological waste stream is adjusted to a range of 15% to 35% dry solids. The first biological waste stream is subjected to thermal hydrolysis. Following thermal hydrolysis, the resulting hydrolysate is conveyed to a decanter. In the decanter, the hydrolysate is separated into two parts: a first part (1) having a lower dry solids content relative to the hydrolysate, which is sterilized and discharged, and a second part (2) containing the remaining dry solids, having a higher dry solids content relative to the hydrolysate. The second part (2) is conveyed to an SSD-based dryer, where it is dried with superheated steam. Substantially all evaporative materials are condensed and collected in a third part (3). The remaining portion from the drying process, which has a higher dry solids content relative to the second portion (2), is collected in a fourth portion (4). The fourth portion (4) is transported to a pyrolysis reactor and subjected to pyrolysis, resulting in pyrolysis products including biochar, syngas, and / or pyro-oil. Biochar can be used for various purposes, such as carbon sequestration in soil.
[0097] The first portion (1), the third portion (3) and at least a portion of the fifth portion (5) are all fed to a bioreactor and subjected to anaerobic digestion, resulting in biogas, methane and digestate, forming a nutrient- and pathogen-free effluent that can be further used, for example, as fertilizer. Optionally, a portion of the syngas and / or pyro-oil contained in the fifth portion (5) can be used for other purposes, such as fuel.
[0098] FIG. 2 is a schematic diagram of a waste treatment method according to the present invention. A first biological waste stream in the form of raw sludge is conveyed into a reactor for thermal hydrolysis (TH). The dry solids content of the first biological waste stream is adjusted to a range of 15% to 35% dry solids. The first biological waste stream is subjected to thermal hydrolysis. Treated gases formed during thermal hydrolysis are collected in a sixth section (6) and conveyed to the bioreactor. Following thermal hydrolysis, the resulting hydrolysate is conveyed to a decanter. In the decanter, the hydrolysate is separated into two parts: a first section (1) having a lower dry solids content relative to the hydrolysate, which is sterilized and discharged, and a second section (2) containing the remaining dry solids, having a higher dry solids content relative to the hydrolysate. The second section (2) is conveyed to an SSD-based dryer, where it is dried with superheated steam. Substantially all of the evaporative material is condensed and collected in a third portion (3). The remaining portion from the drying process, which has a higher dry solids content compared to the second portion (2), is collected in a fourth portion (4). The fourth portion (4) is conveyed to a pyrolysis reactor and subjected to pyrolysis, resulting in pyrolysis products including biochar, syngas, and / or pyro-oil. Biochar can be used for various purposes, such as carbon sequestration in soil.
[0099] At least a portion (5) of the fifth portion is conveyed to the bioreactor and, optionally, a portion of the synthesis gas and / or pyro-oil (8) contained in the fifth portion (5) is used as fuel in a boiler to heat water to produce steam (7) for use in pyrohydrolysis.
[0100] The first portion (1) is passed through a heat exchanger to cool the first portion (1) and then conveyed to a bioreactor, where the heat exchange is used to help heat the contents in the reactor for thermohydrolysis (TH).
[0101] The third portion (3) is conveyed to the thermohydrolysis (TH) reactor, thus preheating the contents in the thermohydrolysis (TH) reactor.
[0102] FIG. 3 is a schematic diagram of a waste treatment method according to the present invention. A first biological waste stream in the form of raw sludge is conveyed into a reactor for thermal hydrolysis (TH). The dry solids content of the first biological waste stream is adjusted to a range of 15% to 35% dry solids. The first biological waste stream is subjected to thermal hydrolysis. Treated gases formed during thermal hydrolysis are collected in a sixth section (6) and conveyed to the bioreactor. Following thermal hydrolysis, the resulting hydrolysate is conveyed to a decanter. In the decanter, the hydrolysate is separated into two parts: a first section (1) having a lower dry solids content relative to the hydrolysate, which is sterilized and discharged, and a second section (2) containing the remaining dry solids, having a higher dry solids content relative to the hydrolysate. The second section (2) is conveyed to an SSD-based dryer, where it is dried with superheated steam. Substantially all of the evaporative material is condensed and collected in a third portion (3). The remaining portion from the drying process, which has a higher dry solids content compared to the second portion (2), is collected in a fourth portion (4). The fourth portion (4) is conveyed to a pyrolysis reactor and subjected to pyrolysis, resulting in pyrolysis products including biochar, syngas, and / or pyro-oil. The biochar can be used for various purposes, such as carbon sequestration in soil. Optionally, a portion of the biochar may be conveyed to a bioreactor to aid in anaerobic digestion and enrich the sterilized effluent with nutrients as a fertilizer.
[0103] At least a portion (5) of the fifth portion is conveyed to the bioreactor and, optionally, a portion of the synthesis gas and / or pyro-oil (8) contained in the fifth portion (5) is used as fuel in a boiler to heat water to produce steam (7) for use in pyrohydrolysis.
[0104] The first portion (1) is passed through a heat exchanger to cool the first portion (1) and then conveyed to a bioreactor, where the heat exchange is used to help heat the contents of the reactor for thermohydrolysis (TH).
[0105] The third portion (3) is conveyed into the thermohydrolysis (TH) reactor, thus preheating the contents in the thermohydrolysis (TH) reactor.
[0106] FIG. 4 is a schematic diagram of a waste treatment method according to the present invention. A first biological waste stream in the form of raw sludge is conveyed into a reactor for thermal hydrolysis (TH). The dry solids content of the first biological waste stream is adjusted to a range of 15% to 35% dry solids. The first biological waste stream is subjected to thermal hydrolysis. Treated gases formed during thermal hydrolysis are collected in a sixth section (6) and conveyed to the bioreactor. Following thermal hydrolysis, the resulting hydrolysate is conveyed to a decanter. In the decanter, the hydrolysate is separated into two parts: a first section (1) having a lower dry solids content relative to the hydrolysate, which is sterilized and discharged, and a second section (2) containing the remaining dry solids, having a higher dry solids content relative to the hydrolysate. The second section (2) is conveyed to an SSD-based dryer, where it is dried with superheated steam. Substantially all of the evaporative material is condensed and collected in a third portion (3). The remaining portion from the drying process, which has a higher dry solids content compared to the second portion, is collected in a fourth portion (4). The fourth portion (4) is conveyed to a pyrolysis reactor and subjected to pyrolysis, resulting in pyrolysis products including biochar, syngas, and / or pyro-oil. Biochar can be used for various purposes, such as carbon sequestration in soil.
[0107] At least a portion (5) of the fifth portion is conveyed to the bioreactor and optionally a portion of the synthesis gas and / or pyro-oil (8) contained in the fifth portion (5) is used as fuel in a boiler to heat water to produce steam (7) for use in pyrohydrolysis.
[0108] The first portion (1) is passed through a heat exchanger to cool the first portion (1) and then transported to the bioreactor, where the exchanged heat is used to preheat water to produce steam (7) for use in pyrohydrolysis.
[0109] The third portion (3) is then further conveyed through a heat exchanger and mixed with the hydrolysate, and the exchanged heat is used to preheat water to produce steam (7) for use in thermal hydrolysis.
[0110] Figure 5 is a schematic diagram of a preferred drying method according to the present invention. The remaining dry solids (2), which has a higher dry solids content compared to the hydrolysate, is conveyed to an SSD-based dryer where the second portion (2) is dried with superheated steam. Substantially all evaporative materials are condensed and collected in the form of condensate in a third portion (3). The remaining portion from the drying process, which has a higher dry solids content compared to the second portion (2), is collected in a fourth portion (4).
[0111] "example" Example 1: Energy recovery with a method according to the invention. A biowaste stream having a dry solids content of 19% is subjected to thermal hydrolysis in a reactor suitable for the purpose at a temperature ranging from 150°C to 170°C, resulting in the production of a hydrolysate.
[0112] The liquid portion (1) of the hydrolysate is separated from the solid portion (2) by a decanter centrifuge, so that the solid portion (2) has a dry solids content in the range of 40% to 50%.
[0113] The liquid portion (1) contains approximately 31% of the COD contained in the biological waste stream and is conveyed to the bioreactor for anaerobic digestion.
[0114] The solids fraction (2), which contains approximately 69% of the COD contained in the biowaste stream, is conveyed to a superheated steam drying (SSD)-based dryer for drying, resulting in a dry solids content of greater than 90%. The SSD dryer has an external barrier (or partition) to allow recovery of substantially all of the evaporative material (3) from the drying step.
[0115] The evaporate (3) from the drying step contains approximately 1% to 2% of the COD contained in the biological waste stream and is recycled to the reactor for thermal hydrolysis. In particular, as a result of using an SSD, the condensate from the evaporate (3) is typically at 140°C at 4 bar. Furthermore, the COD contained in the condensate from the evaporate (3) from the drying step is maintained throughout the entire process and adds to the COD content of the liquid portion (1) from the decanter centrifuge.
[0116] The solid fraction (4) from the drying step, which contains approximately 68% of the COD contained in the biowaste stream, is conveyed to a pyrolysis reactor and subjected to pyrolysis at temperatures ranging from 550°C to 600°C, resulting in the production of biochar, syngas, and pyro-oil.
[0117] Biochar, which contains approximately 15% of the COD contained in the biological waste stream, can be collected, and the remaining pyrolysis products, which contain approximately 53% COD (4% for the aqueous pyrolysis liquid and 49% for the syngas), are delivered to the bioreactor.
[0118] Anaerobic digestion of the portion collected in the bioreactor produces biogas containing about 59% of the COD contained in the biological waste stream, with about 26% of the COD contained in the biological waste stream remaining in the digestate and about 15% of the COD contained in the biological waste stream being contained in biochar that can be used for further energy production.
[0119] The COD content of a given sample can be measured by the sealed tube method described in ISO standard 15705:2002 (DIN ISO 15705-H45), EPA 410.4, APHA 5220D, or DIN 38409-H41-1, as appropriate, or by elemental analysis (CHNSO) as described in ISO standard 16634-1:2008.
[0120] Typically, conventional anaerobic digestion allows for the recovery of 50% of the COD in the form of methane. This process allows for a high degree of recovery of the energy stored in the waste material, as measured by its COD content. In particular, preserving the COD content of the evaporative material (3) throughout the process contributes to a more complete utilization of the energy contained in the biowaste material. Furthermore, recycling heat throughout the process reduces the need for external energy and, consequently, the overall costs associated with the process.
Claims
1. A method for treating waste, comprising: a) subjecting a first biological waste stream having a dry solids content in the range of 15% to 35% to thermal hydrolysis to produce a hydrolysate; b) subjecting the hydrolysate to a decanter to separate the hydrolysate into at least a first portion (1) and a second portion (2), wherein the first portion (1) has a lower dry solids content relative to the hydrolysate, the second portion (2) has a higher dry solids content relative to the hydrolysate, and the dry solids content of the second portion (2) is in the range of 30% to 50%; c) drying the second portion (2) in a closed system dryer to separate the second portion (2) into at least a third portion (3) and a fourth portion (4), wherein the third portion (3) comprises substantially all of the evaporated material and has a lower dry solids content than the second portion (2), and the fourth portion (4) has a higher dry solids content than the second portion (2), and the dry solids content of the fourth portion (4) is in the range of 50% to 95%; d) subjecting said fourth portion (4) to pyrolysis to produce biochar and a fifth portion (5) comprising syngas and / or pyro-oil; e) subjecting said first portion (1) and at least a portion of said fifth portion (5) to anaerobic digestion in a bioreactor; f) subjecting the third portion (3) to anaerobic digestion in the bioreactor, or recycling the third portion (3) to the biological waste stream and / or the hydrolysate, or subjecting a portion of the third portion (3) to anaerobic digestion in the bioreactor and recycling the remaining portion of the third portion (3) to the biological waste stream and / or the hydrolysate; A method comprising:
2. 10. The method of claim 1, wherein at least a portion of the biochar is conveyed to the bioreactor.
3. The method of claim 1 or 2, wherein the dryer is a superheated steam dryer (SSD).
4. A method for treating waste, comprising: a) subjecting a first biological waste stream having a dry solids content in the range of 15% to 35% to thermal hydrolysis to produce a hydrolysate; b) subjecting the hydrolysate to a decanter to separate the hydrolysate into at least a first portion (1) and a second portion (2), wherein the first portion (1) has a lower dry solids content relative to the hydrolysate, the second portion (2) has a higher dry solids content relative to the hydrolysate, and the dry solids content of the second portion (2) is in the range of 30% to 50%; c) drying the second portion (2) in a closed system dryer to separate the second portion (2) into at least a third portion (3) and a fourth portion (4), wherein the third portion (3) comprises substantially all of the evaporated material and has a lower dry solids content than the second portion (2), and the fourth portion (4) has a higher dry solids content than the second portion (2), and the dry solids content of the fourth portion (4) is in the range of 50% to 95%; d) subjecting said fourth portion (4) to pyrolysis to produce biochar and a fifth portion (5) comprising syngas and / or pyro-oil; e) subjecting said first portion (1) and at least a portion of said fifth portion (5) to anaerobic digestion in a bioreactor; f) recycling the third portion (3) to the biological waste stream and / or the hydrolysate; A method comprising:
5. The method described in claim 4, wherein at least a portion of the third portion (3) is passed through one or more heat exchangers to cool at least a portion of the third portion (3), and the third portion (3) is further transported and mixed with the hydrolysate, and the exchanged heat is used to help heat the contents of the thermohydrolysis reactor.
6. 6. The method of any one of claims 1 to 5, wherein treated gas that avoids being subjected to the pyrohydrolysis and / or decanting steps is subjected to anaerobic digestion in the bioreactor.
7. 7. The method according to any one of claims 1 to 6, wherein a second waste stream is fed into the second portion (2) or the fourth portion (4).
8. 8. The method of any one of claims 1 to 7, wherein the synthesis gas and / or pyro oil produced during the pyrolysis is used to help heat the contents of the reactor for pyrohydrolysis and / or the second portion (2), preferably the synthesis gas and / or pyro oil is used as fuel for a boiler that generates steam for the pyrohydrolysis of the contents.
9. 1. A system for treating a biological waste stream, comprising: a) a reactor for thermal hydrolysis; b) a decanter; and c) a closed system dryer including an external barrier to allow collection of substantially all evaporative material; d) a reactor for pyrolysis; e) a bioreactor for anaerobic digestion; Including, the reactor for thermal hydrolysis is fluidly connected to the decanter; the decanter is fluidly connected to the anaerobic digestion bioreactor and the dryer, the dryer further comprising an outlet fluidly connected to the bioreactor and / or the thermohydrolysis reactor; The pyrolysis reactor is further fluidly connected to the bioreactor. system.
10. 10. The system of claim 9, wherein the reactor for thermohydrolysis further comprises a gas outlet connected to the bioreactor by a closed system for conveying gas.
11. 11. The system of claim 9 or 10, wherein the decanter further comprises a gas outlet connected to the bioreactor by a closed system for conveying gas.
12. 12. The system of claim 9, wherein the dryer is a superheated steam dryer (SSD).
13. 13. The system of any one of claims 9 to 12, wherein the pyrolysis reactor is heated by an electric heater.
14. 14. The system of any one of claims 9 to 13, further comprising one or more heat exchangers.
15. 15. The system of any one of claims 9 to 14, wherein the pyrolysis reactor further comprises a waste inlet.
16. 16. The system of any one of claims 9 to 15, wherein the dryer further comprises a waste inlet.
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