Method for treating organic waste materials

The method of facultative anaerobic fermentation with lactic acid bacteria and aerobic maturation, followed by vermicomposting, transforms organic waste into stable compost suitable for soil fertilization, overcoming the challenges of anaerobic digestate treatment.

JP7811076B2Active Publication Date: 2026-02-04MARS INC
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Patent Information

Application Number
JP2024522626
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-11-05
Filing Date
2022-11-01
Publication Date
2026-02-04
Estimated Expiration
2042-11-01

AI Technical Summary

Technical Problem

Existing methods for treating organic waste, such as anaerobic digestate, face issues like eutrophication, groundwater contamination, air pollution, phytotoxic effects, pathogenic microorganisms, and storage difficulties due to high moisture content, limiting its effective use as a soil amendment.

Method used

A method involving facultative anaerobic fermentation with lactic acid bacteria at acidic pH, followed by aerobic maturation and vermicomposting to produce organic compost, which includes adding earthworms and optional cellulosic waste, effectively stabilizing the waste and enhancing its suitability for soil fertilization.

Benefits of technology

The method significantly reduces methane production, stabilizes the organic waste, eliminates pathogenic microorganisms, and produces a compost suitable for soil fertilization, addressing the limitations of traditional anaerobic digestate treatment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present disclosure relates to a method for processing organic waste material into organic compost, the method comprising the steps of: a) fermenting the organic waste material, comprising adding at least one or more lactic acid bacteria to the organic waste material, under facultative anaerobic conditions at an acidic pH, thereby obtaining a fermented organic material; b) maturing the fermented organic material obtained in step a) under aerobic conditions, thereby obtaining a matured organic material; and c) vermicomposting the matured organic material obtained in step b), thereby obtaining an organic compost.
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Description

CROSS-REFERENCE TO RELATED APPLICATIONS

[0001] This application claims the benefit of priority from European Patent Application No. 21206746.6, filed November 5, 2021, the entire contents of which are incorporated herein by reference. [Technical Field]

[0002] The present disclosure relates to the field of processing organic waste materials to obtain processed organic products, especially for improving soil plant growth characteristics. [Background technology]

[0003] Several methods are known in the art for converting organic waste materials into useful products, particularly for forming soil amendment products, such as products that improve soil plant growth characteristics.

[0004] Among these methods, anaerobic digestion is a sustainable option for the treatment of organic waste, as it utilizes biomass as a renewable energy source. Two main products are obtained from the anaerobic digestion process: biogas, which can be used as a fuel, and a stabilized liquid-solid residue, which can be called "digestate," which can be used as a soil conditioner and / or biofertilizer for crops. The art describes digestate as containing a high concentration of organic matter and various plant nutrients, making it ideal for use as a fertilizer in agriculture (Non-Patent Document 1).

[0005] However, in various situations, digestate can cause adverse effects such as eutrophication of water bodies, groundwater contamination, and air pollution due to the release of ammoniacal nitrogen. Disadvantages of digestate include (a) the presence of incompletely stabilized biodegradable materials, (b) high concentrations of ammonia that can cause air pollution and have phytotoxic effects, (c) the presence of pathogenic microorganisms in the digestate that can survive for up to one year, especially in mesophilic digestion systems, and (d) the difficulty of storage and transportation due to the high moisture content of the digestate.

[0006] It is common to separate the digestate into two phases, a liquid portion and a solid portion, for further processing. The solid portion is primarily used as an organic fertilizer. Nevertheless, the solid portion of the digestate is traditionally purified through biological processes such as composting.

[0007] Among various processes for purifying anaerobic digestates of organic waste, the treatment of the digestate by vermicomposting has been described in the art (Non-Patent Document 2). Prior to vermicomposting, the anaerobic digestate can be subjected to dewatering and stabilized by adding bulking materials such as sawdust. According to Non-Patent Document 2, preparing a 70:30 (digestate:sawdust) mixture has been found to be a suitable medium for vermicomposting based on the growth of earthworms. [Prior art documents] [Non-patent literature]

[0008] [Non-Patent Document 1] Guilayn et al., 2019, Waste Management, Vol. 86 : 67-79 [Non-patent document 2] Krishnasamy et al., 2014, Int. Environment and Waste Management, Vol. 14 : 149-164 Summary of the Invention [Problem to be solved by the invention]

[0009] There remains a need in the art for improved methods for treating organic waste, including improved methods for obtaining treated organic waste suitable for soil improvement, such as improving plant growth. [Means for solving the problem]

[0010] The present disclosure relates to a method for processing organic waste materials into organic compost, the method comprising: a) fermenting the organic waste material, comprising adding at least one or more lactic acid bacteria to the organic waste material, under facultative anaerobic conditions at an acidic pH, thereby obtaining a fermented organic material; b) maturing the fermented organic material obtained in step a) under aerobic conditions, thereby obtaining a matured organic material; and c) vermicomposting the matured organic material obtained in step b), thereby obtaining organic compost. Includes:

[0011] In some embodiments, step a) comprises adding a microbial composition comprising lactic acid bacteria to the organic waste material.

[0012] In some embodiments, the microbial composition used in step a) comprises, in addition to lactic acid bacteria, one or more microorganisms selected from Lactobacillus, Propionibacterium, Pediococcus, Streptococcus, or a combination thereof.

[0013] In some embodiments, step a) is carried out at a pH of about 3 to about 5.

[0014] In some embodiments, the moisture content of the fermented organic material processed in step b) is from about 45% to about 75%.

[0015] In some embodiments, step b) is carried out at a pH of about 4 to about 7.

[0016] In some embodiments, step c) comprises adding earthworms of one or more earthworm species to the mature organic material obtained in step b).

[0017] In some embodiments, step c) further comprises adding cellulosic waste and / or water to the mature organic material in addition to the earthworms.

[0018] In some embodiments, step c) is carried out at a T°C of about 15°C to about 30°C.

[0019] In some embodiments, step c) is performed when the moisture content of the treated organic material is about 60% to about 70%.

[0020] The present disclosure further relates to treated organic compost obtained by the methods disclosed herein.

[0021] The present disclosure also relates to the use of the treated organic compost obtained by the methods disclosed herein or the organic compost disclosed herein for soil fertilization.

[0022] The present disclosure further provides: i) treating organic waste material according to the method of any one of claims 1 to 10, thereby obtaining organic compost; and ii) adding the organic compost obtained in step i) to the soil to be fertilized. The present invention also relates to a method for fertilizing soil, comprising: DETAILED DESCRIPTION OF THE INVENTION

[0023] In particular, it has been found that the treatment of organic waste materials can be improved by carrying out a method which includes a fermentation step under specific facultative anaerobic conditions which make it possible to avoid the production of methane.

[0024] It has been found that the treatment of organic waste can be improved by combining the step of fermenting the starting organic waste material to be treated under specific facultative anaerobic conditions to obtain a fermented organic waste material, which is further processed by fermenting it under aerobic conditions to obtain a mature organic matter that is immediately suitable for conversion by vermicomposting.

[0025] The present disclosure relates to a method for processing organic waste material into organic compost, comprising at least a fermentation step, a maturation step, and a vermicomposting step, wherein: a) the fermentation step comprises adding at least one or more lactic acid bacteria to the organic waste material, said step being carried out under facultative anaerobic conditions at an acidic pH, thereby obtaining a fermented organic material; b) a maturation step, which comprises fermenting the fermented organic material obtained in step a) under aerobic conditions, thereby obtaining a matured organic material; and c) The vermicomposting step involves subjecting at least the matured organic material obtained in step b) to a vermicomposting step, thereby obtaining organic compost.

[0026] In some embodiments, the present disclosure relates to a method for processing organic waste material into organic compost, the method comprising: a) fermenting the organic waste material, comprising adding at least one or more lactic acid bacteria to the organic waste material under facultative anaerobic conditions at an acidic pH, thereby obtaining a fermented organic material; b) maturing the fermented organic material obtained in step a) under aerobic conditions, thereby obtaining a matured organic material; and c) vermicomposting the matured organic material obtained in step b), thereby obtaining organic compost. Includes:

[0027] definition In the following claims and in the description of this specification, any one of the terms "comprises," "includes," "containing," "consisting of," or "having" is an open term meaning the inclusion of at least the following elements / features, but not the exclusion of other elements / features. Therefore, the term "comprises" used in the claims should not be interpreted as being limited to the means, elements, or steps listed thereafter. For example, the scope of an expression "a method including steps A and B" should not be limited to a method consisting only of steps A and B. Any one of the terms "comprises," "comprising," or "containing" used in this specification is also an open term meaning the inclusion of at least the element / feature following the term, but not the exclusion of other elements / features. Therefore, "comprising" is synonymous with "comprises" and means "comprising."

[0028] The term "consisting of" does not include any element, step, or ingredient not specified in the claim. The transitional phrase "consisting essentially of" does not materially affect the scope of the claim to the specified substances or steps and the basic and novel feature(s) of the claimed disclosure. The claim language "consisting essentially of" occupies a central area between closed claims written in the "consisting of" format and entirely open claims written in the "comprising" format.

[0029] As used herein, the terms "waste material" and "organic waste material" are used interchangeably and refer to any type of waste organic material originating from human, animal, or industrial sources. Organic waste can include waste selected from municipal sewage, domestic garbage, slaughterhouse waste, human waste, plant waste from horticulture, animal waste, and industrial waste from the food, feed, and pharmaceutical industries, including, but not limited to, waste from fermentation processes, brewing, or the production of recombinant enzymes. Waste can be provided from waste storage facilities, i.e., facilities for the storage, storage, or treatment of waste, including pits or lagoons where animal waste is stored.

[0030] As used herein, the term "energy density" refers to the amount of energy per weight of an organic material. Typically, energy density can be expressed in kilojoules per kilogram of dry matter.

[0031] As used herein, acidic pH means a pH below 7.0, preferably a pH below 5.0. As used herein, basic pH means a pH above 7.0, preferably a pH above 8.0.

[0032] Providing organic waste materials Any type of organic waste material can be provided for carrying out the method of the present disclosure.

[0033] Preferably, the organic waste material provided for carrying out the method of the present disclosure may be "fresh" organic waste material, i.e., organic waste material that has not yet begun to undergo detectable decomposition.

[0034] Thus, preferably, organic waste materials that can be used as starting materials to be treated by the methods disclosed herein may not have previously been subjected to any fermentation step in the presence of exogenous microorganisms. This does not mean that the starting organic waste material itself is naturally free of microorganisms. By way of illustration, animal manure that can be incorporated into the composition of the starting organic waste material naturally includes enteric bacteria, such as, but not limited to, E. coli and / or Lactobacillus.

[0035] However, although not a preferred embodiment, the starting organic waste material may have already begun to decompose, at least in part.

[0036] Because a wide variety of organic waste materials can be processed according to the methods disclosed herein, the starting organic waste materials can contain varying amounts of carbon, hydrogen, oxygen, and nitrogen, and in particular can have varying C:N ratios (ratios of carbon to nitrogen).

[0037] As an example, there exists an organic waste material that is primarily comprised of fresh weeds, which has a significantly higher C:N ratio value compared to an organic waste material that is primarily comprised of fish residues, as known in the art. As a further example, there exists an organic waste material that is primarily comprised of pig or chicken droppings, which has a significantly lower C:N ratio value compared to sawdust or wood chips and twigs.

[0038] In some embodiments, the starting organic waste material can include multiple types of organic waste material, such as, but not limited to, household waste, industrial organic waste material, and agricultural organic waste material.

[0039] In some embodiments, the starting organic waste material can be a mixture of multiple waste materials.

[0040] In embodiments where the starting organic waste material is a mixture of multiple waste materials, the composition of the mixture can preferably be adapted to avoid excessive temperature rise during the fermentation step of the disclosed method. Avoiding excessive temperature rise during the fermentation step of the disclosed method can be achieved by preparing a mixture of waste materials having an appropriate average energy density, for example, an energy density of less than about 1000 kJ per 100 g of wet matter of the starting organic waste material.

[0041] A skilled artisan will know in advance the approximate energy density of almost all organic substances and will therefore also know the approximate energy densities of various materials that may be included in the starting organic waste material used to implement the method of the present disclosure. Specific examples are provided in Table 1 below. Detailed information regarding the energy density values ​​of hundreds of organic materials that may be included in the composition of the starting organic waste material used to implement the method of the present disclosure is readily available to a skilled artisan. By way of illustration, detailed information is disclosed, inter alia, on the website entitled "Informations Nutritionnelles.fr" (the following internet address: "https:\\informationsnutritionnelles.fr / energie-kilojoules", the contents of which are hereby incorporated by reference).

[0042] [Table 1-1]

[0043] [Table 1-2]

[0044] In some embodiments, the starting organic waste material can be prepared to include a mixture of various waste materials having different energy density values, to obtain the organic waste material used in the methods of the present disclosure, said organic waste material having a suitable average energy density.

[0045] Typically, the starting organic waste material may include waste materials with high energy density values ​​(e.g., vegetable oil, chocolate, etc.) and waste materials with low energy density values ​​(e.g., vegetables, animal feed, sawdust, cardboard).

[0046] In some embodiments, the starting organic waste material can be prepared by blending different types of waste material contained therein, resulting in said material having a suitable average energy density within its overall mass or volume.

[0047] In some embodiments, a suitable average energy density of the starting organic waste material can be obtained through a multi-layer structure. In an exemplary multi-layer structure, the starting organic waste material can be prepared by (i) forming a first layer of organic waste material having a first average energy density value (e.g., a high energy density value), (ii) forming a second layer of waste material having a second energy density value (e.g., a low density value), and repeating the alternating formation of high energy density layers and low energy density layers until the starting organic waste material to be processed by the method of the present disclosure is provided.

[0048] Illustratively, a starting organic waste material intended to be treated according to the methods of the present disclosure may comprise a mixture of (i) a waste material with a high energy density value, such as a sugar-containing material, e.g., cocoa pulp, and (ii) a waste material with a low energy density value, such as a fiber-containing material, e.g., cat litter. Illustratively, a balanced composition of such a starting organic waste material may comprise, for example, about 40 kg of cocoa pulp and 30 kg of cat litter.

[0049] Typically, the presence of fibrous materials, such as plant waste, in the starting organic waste material promotes fungal growth during the method steps of the present disclosure.

[0050] In some embodiments, the starting organic waste material can include a mixture of solid waste material(s) and liquid waste material(s).

[0051] In some embodiments, the organic waste material can be provided for carrying out the methods of the present disclosure after being cut into pieces about 1 to 10 cm in length, thereby optimizing the conditions of the methods of the present disclosure, such as, for example, (i) shortening the duration of one or more of the incubation, fermentation, maturation, and vermicomposting steps of the methods, and / or (ii) obtaining more complete processing of the material at the end of one or more of the steps of the methods.

[0052] Step a) of the method In step a), the organic waste material to be treated is subjected to a fermentation step under facultative anaerobic conditions and at an acidic pH.

[0053] To initiate fermentation in step a), the starting organic waste material can be inoculated with a microbial composition comprising lactic acid bacteria.

[0054] In some embodiments, the properties of the various waste materials contained in the organic waste material to be treated by the method of the present disclosure may be substantially different, and in these embodiments, it may be preferable to separately seed one or more of the distinct constituent waste organic materials intended to be incorporated into the organic waste material to be treated in step a) of the method.

[0055] As used herein, to carry out the method of the present disclosure, individual waste materials that can be used in the composition of the starting organic waste material can be separately inoculated with a microbial composition comprising lactic acid bacteria, and then the individual microbially inoculated waste materials are collected to obtain the microbially inoculated organic waste material that is used at the start of step a) of the method of the present disclosure. In other words, in embodiments in which the individual organic waste materials that go into the composition of the starting organic waste material are separately inoculated with the microbial composition, a multi-layer structure of the starting organic waste material is formed after these individual materials are inoculated with the microbial composition.

[0056] As an example, in the case of a starting organic waste material having the aforementioned multi-layered structure, by seeding each of the waste materials forming a layer with a microbial composition containing lactic acid bacteria, a starting organic waste material containing a microbial composition in which lactic acid bacteria are dispersed within the entire volume of the starting organic waste material can be obtained.

[0057] As a further example, inoculating pet food kibble (as organic waste material) with a microbial composition comprising lactic acid bacteria typically requires soaking the kibble in the microbial composition comprising lactic acid bacteria for a time sufficient to allow the microorganisms to colonize the entire volume of the pet food kibble.

[0058] Microbial Composition for Inoculating Starting Organic Waste Material In step a), the lactic acid bacteria added to the organic waste material may be selected from Lactobacillus, Propionibacterium, Pediococcus, Streptococcus, or a combination thereof.

[0059] In some embodiments, the Lactobacillus bacterium can be selected from Lactobacillus bulgaricus and Lactobacillus casei.

[0060] In some embodiments, the Propionibacterium bacterium may comprise Propionibacterium freudenreichi.

[0061] In some embodiments, the Pediococcus bacteria can comprise Pediococcus halophilus.

[0062] In some embodiments, the streptococcus bacteria may comprise Streptococcus lactis or Streptococcus faecalis.

[0063] In some embodiments, in addition to lactic acid bacteria, one or more further microorganisms selected from actinomycetes, photosynthetic bacteria (sometimes referred to as "phototrophic bacteria"), molds, fungi, and / or yeasts can be added to the organic waste material at the start of step a).

[0064] In some embodiments, the one or more actinomycetes can be selected from Streptomyces, Streptoverticilium, Nocardia, Micromonospora, and Rhodococcus.

[0065] In some embodiments, the Streptomyces actinomycetes can be selected from Streptomyces albus and Streptomyces griseus.

[0066] In some embodiments, the Streptoverticilium actinomycetes can comprise Streptoverticilium baldacii.

[0067] In some embodiments, the Nocardia actinomycete may comprise Nocardia asteroides.

[0068] In some embodiments, the Micromonospora actinomycete can comprise Micromonospora chalcea.

[0069] In some embodiments, the Rhodococcus actinomycete can be comprised of Rhodospirilum rubrum.

[0070] In some embodiments, the one or more filamentous fungi can be selected from Aspergillus and Mucor.

[0071] In some embodiments, the Aspergillus fungi can be comprised of Aspergillus japonicus or Aspergillus oryzae, and Mucor hiemalis.

[0072] In some embodiments, the Mucor fungi may comprise Mucor hiemalis.

[0073] In some embodiments, the one or more yeasts may be selected from Saccharomyces and Candida.

[0074] In some embodiments, the Saccharomyces yeast may comprise Saccharomyces cerevisiae or Saccharomyces lactis.

[0075] In some embodiments, the Candida yeast may comprise Torula yeast (Candida utilis).

[0076] In some embodiments, the microbial composition added in step a) comprises only lactic acid bacteria.

[0077] In some other embodiments, lactic acid bacteria are combined with one or more of actinomycetes, photosynthetic bacteria, filamentous fungi, and yeasts.

[0078] Various exemplary embodiments of microorganisms that can be combined with lactic acid bacteria in the microbial composition added in step a) of the method of the present disclosure are listed in Table 2 below.

[0079] [Table 2]

[0080] In Table 2, (i) Ref a : Combination reference number; (ii) Actino b : Actinomycetes; (iii) Photo Bact c :It is a photosynthetic bacterium.

[0081] Microorganisms that can be combined with lactic acid bacteria for addition to organic waste materials are publicly available, including those available through microbial culture collections such as the American Type Culture Collection (ATCC).

[0082] A variety of microbial cocktails are also commercially available and can be used in step a) of the method.

[0083] In some embodiments, the microorganisms added in step a) may consist of a combination of microorganisms called "effective microorganisms" (also referred to as "EM"), as disclosed, for example, by Yamada et al. (2001, Journal of crop production, Vol. 3: 255-268) or Szymenski et al. (2003, Lanfax Laboratories, Armidale, NSW, Australia, RA and Jones, MJ (Eds) (ISBN 0-9579438-1-4, the contents of which are incorporated herein by reference).

[0084] In some embodiments, the combination of microorganisms added in step a) is present in a cultured mixed product, the microorganisms optionally being present on a carrier, said cultured mixed product including wheat bran and optionally molasses.

[0085] An exemplary embodiment of the lactic acid bacteria-containing microbial composition added to the organic waste material at the beginning of step a) comprises, per milliliter of said composition, (i) 10 4 CFU ("colony forming units") of lactic acid bacteria, (ii) 10 3 CFU of photosynthetic bacteria, and (iii) 10 3 It may contain CFU of yeast.

[0086] One embodiment of a lactic acid bacteria-containing microbial composition that can be added to waste organic material to carry out step a) is a composition commercialized by TeraGanix Company under the name "EM-1 (trademark)."

[0087] Preparation of a microbial composition containing lactic acid bacteria As previously described herein, some embodiments of step a) include adding a microbial composition comprising lactic acid bacteria, which may be commercially available.

[0088] In some embodiments of step a), the microbial composition comprising lactic acid bacteria may be specially prepared before being added to the organic waste material.

[0089] A microbial composition comprising lactic acid bacteria can be prepared in step a) of the method of the present disclosure by pre-culturing lactic acid bacteria, and optionally one or more additional microorganisms selected from actinomycetes, photosynthetic bacteria, molds, fungi, and / or yeasts, in a suitable culture medium to provide a stock microbial composition that can be repeatedly used as a starting microbial composition comprising lactic acid bacteria.

[0090] A stock microbial composition containing lactic acid bacteria can be prepared by adding an appropriate amount of lactic acid bacteria or a microbial composition containing lactic acid bacteria to a suitable culture medium.

[0091] Next, to carry out step a), an appropriate portion (eg, volume) of said stock solution is collected to provide a microbial composition comprising lactic acid bacteria to be added to the organic waste material to be treated.

[0092] In some embodiments, the stock solution, and thus the microbial composition comprising lactic acid bacteria harvested therefrom, comprises about 10 4 It may contain CFU (for "colony forming units") of lactic acid bacteria.

[0093] In some embodiments, the stock solution further comprises photosynthetic bacteria. 3 It may contain CFU of photosynthetic bacteria.

[0094] In some embodiments, the stock solution further comprises yeast. 3 It may contain CFU of yeast.

[0095] In some embodiments, a suitable culture medium for pre-culturing lactic acid bacteria, and optionally one or more additional microorganisms selected from actinomycetes, photosynthetic bacteria, molds, fungi, and / or yeasts, comprises primarily water to which organic molasses and fiber, such as wheat bran, are added. Illustratively, in such embodiments, the culture medium may comprise a mixture of about 20 L of water (e.g., at room temperature), about 250 mL of organic molasses, and about 20 kg of wheat bran.

[0096] Lactic acid bacteria, and optionally one or more further microorganisms selected from actinomycetes, photosynthetic bacteria, molds, fungi, and / or yeasts, are added to the pre-culture medium.

[0097] In some embodiments, the pre-culture medium inoculated with lactic acid bacteria, and optionally one or more further microorganisms selected from actinomycetes, photosynthetic bacteria, molds, fungi, and / or yeasts, is incubated at about 25°C, preferably under facultative anaerobic conditions, for a period of, for example, two weeks, to allow the lactic acid bacteria, and optionally one or more further microorganisms selected from actinomycetes, photosynthetic bacteria, molds, fungi, and / or yeasts to grow.

[0098] At the end of the incubation period of the pre-culture medium, a stock microbial composition comprising lactic acid bacteria is provided, a portion of which can be used as the microbial composition comprising lactic acid bacteria to be added to the organic waste material in step a) of the method of the present disclosure.

[0099] These embodiments provide continuous availability of a microbial composition comprising lactic acid bacteria that can be used in step a) of the disclosed method.

[0100] Embodiments of step a) In step a), depending in particular on the average qualitative and quantitative composition of the organic waste material to be treated, the lactic acid bacteria-containing microbial composition is added in an average amount of about 10 kg of organic waste material to be treated. 2 from about 10 6 , preferably about 10 3 from about 10 5 CFU of lactic acid bacteria can be added.

[0101] In step a), the microbial composition can be added according to any method well known to those skilled in the art. Typically, the microorganisms (optionally supported on a specific carrier) can simply be dispersed on top of the fermentable organic waste material to be treated, or alternatively, they can be dispersed separately on top of each waste material contained in the starting organic waste material to be treated, or even alternatively, the organic waste material can be immersed in the microbial composition, especially if it is in liquid form.

[0102] In some embodiments, the lactic acid bacteria-containing microbial composition used in step a) may be a liquid composition.

[0103] The facultative anaerobic conditions applied in step a) mean that the complete absence of oxygen is avoided, in other words, step a) is not carried out under strictly anaerobic conditions.

[0104] Typically, under strict anaerobic conditions, microorganisms grow in organic materials with an oxygen content of about 1% to about 2%. The application of strict anaerobic conditions results in the growth of primarily anaerobic microorganisms, including, in embodiments where the organic waste material comprises animal manure, microorganisms that may have been originally present in the organic waste material prior to inoculation with the lactic acid bacteria-containing microbial composition, such as indigenous bacteria, such as Enterobacteriaceae. Treating the organic waste material under strict anaerobic conditions to promote the growth of anaerobic microorganisms typically results in the production of alcohol (particularly as a result of fermentation of sugar-containing substances) and ammonia (particularly as a result of fermentation of protein-containing substances). The application of strict anaerobic conditions typically induces a very basic pH, typically in the range of 8 to 9, in the waste organic material being treated, particularly due to the production of large amounts of ammonia. This basic pH, if present, kills most microorganisms, including fungi and yeasts, which are highly useful in the methods of the present disclosure, particularly in the next step b) of the methods of the present disclosure. Furthermore, as is known in the art, application of strict anaerobic conditions will allow the growth of pathogenic bacteria (including, in some embodiments, pathogenic bacteria that may be found in animal manure). Furthermore, fermentation of the starting organic waste material under strict anaerobic conditions will typically result in temperatures up to 70°C, which will destroy a variety of beneficial microorganisms, including fungi and yeasts.

[0105] As known in the art, strict anaerobic digestion of organic waste materials uses a naturally occurring consortium of bacteria to decompose the organic substrate and subsequently convert it into a mixture of methane and carbon dioxide. Typically, the strict anaerobic digestion step of organic waste materials known in the art is carried out under either (i) uncontrolled pH conditions or (ii) basic pH conditions, which are pH conditions that promote the production of methane.

[0106] However, according to the present disclosure, although methanogenesis can provide a useful energy source, it is believed to be a source of air pollution, and furthermore, the resulting fermented organic material is unsuitable for subsequent use as fertilizer, particularly since it contains ammonia, which is detrimental to further immediate processing of the resulting fermented material after further steps of microbial conversion.

[0107] In contrast, the acidic pH conditions of step a) can avoid the production of methane.

[0108] In contrast, in step a) of the disclosed method, facultative anaerobic fermentation conditions can (i) avoid excessive production of alcohol and ammonia, and (ii) promote the production of lactic acid, particularly as a result of fermentation of sugar-containing substances.

[0109] In some embodiments of step a) in which a fermentation broth is produced, said fermentation broth can preferably be removed periodically or continuously to avoid oxygen depletion which would result in strictly anaerobic conditions.

[0110] Step a) can be carried out under acidic conditions due to the production of acetic acid in step a).

[0111] In some embodiments, step a) can be carried out at a pH ranging from about 3.0 to about 5.0, such as a pH ranging from about 3.5 to about 4.0.

[0112] The pH can be measured according to any method known in the art, such as a pH probe known per se.

[0113] In step a), the facultative anaerobic conditions can be readily obtained by techniques well known in the art, including, but not limited to, initially providing an "aerated" organic waste material. The aerated organic waste material can be obtained by simply stirring the organic waste material to be treated at the start of step a), and optionally stirring the organic waste material being fermented one or more times during step a).

[0114] Typically, step a) is carried out under facultative anaerobic conditions, allowing the microorganisms to grow in the fermenting organic waste material, where the oxygen content is in the range of about 5% to about 20%.

[0115] As used throughout this specification, the oxygen content of the organic material, in particular the oxygen content of the organic waste material treated in step a), may be measured according to any method known in the art, such as by using an oxygen probe, if desired.

[0116] Acidification of the organic waste material is generally not required, since the acidic pH is obtained by generating acetic acid during step a).

[0117] In some embodiments, an acidic pH can be achieved, at least in part, by adding one or more organic acids to the waste.

[0118] In some embodiments, the one or more organic acids can be straight-chain or branched, saturated or unsaturated carboxylic acids having 2 to 6 carbon atoms. In some embodiments, the one or more organic acids can be selected from acetic acid, lactic acid, citric acid, malic acid, ascorbic acid, and gluconic acid. The most preferred organic acid is lactic acid.

[0119] Step a) is carried out under facultative anaerobic conditions and therefore does not result in elevated temperatures.

[0120] Typically, step a) can be carried out at a temperature that does not substantially affect the viability of microorganisms that have been added to and settled on the waste organic material being treated.

[0121] Step a) can be carried out at a temperature preferably below about 50°C, and preferably in the range of about 10°C to about 45°C.

[0122] In practice, the anaerobic fermentation process will proceed over a wide range of temperatures, and in most embodiments, daily temperature monitoring and / or control will not be necessary.

[0123] Since step a) applies facultative anaerobic conditions, the fact that step a) can be carried out at moderate temperatures favors the growth of desirable mesophilic bacteria and is detrimental to the growth of undesirable thermophilic bacteria.

[0124] Furthermore, step a) can be carried out under facultative anaerobic and acidic conditions, which allow the growth of fungi and yeasts that would die or not grow under basic pH or strictly anaerobic conditions.

[0125] Generally, no additional water needs to be added when carrying out step a) since no elevated temperatures occur during fermentation and therefore there is no or only reduced loss of water due to evaporation.

[0126] In some embodiments, the duration of step a) can range from about 15 days to about 45 days, depending on the type of organic waste material provided in step a), the degree of completion of the culture in step a), the type of microorganism added in step b), and the temperature of the waste material treated in step a).

[0127] Depending on the type, and in particular the amount, of organic waste material provided at the start of step a), the facultative anaerobic conditions of step a) can be carried out by methods well known in the art.

[0128] In some embodiments, step a) can be carried out in an anaerobic digester of known model and of appropriate size, which may also be referred to herein as a fermenter.

[0129] It is to be understood that when step a) is carried out in an anaerobic digester, the facultative anaerobic conditions of step a) are achieved by contacting the internal compartment of the digester, and thus the organic waste material being fermented, with the atmospheric environment.

[0130] Furthermore, avoidance of strictly anaerobic conditions can be achieved by avoiding oxygen starvation of the internal volume of the organic waste material during fermentation by limiting the height of the organic waste material, for example, by limiting the height of the organic waste material in the digester to less than about 80 centimeters.

[0131] At the end of step a), the fermented organic product obtained mainly comprises solids containing moisture.

[0132] At the end of step a), the resulting fermented organic product can be stored until further processing, either in the digester used in step a) or alternatively in a separate container.

[0133] Notably, the initial color of each composite waste material used to prepare the starting organic waste material remained substantially unchanged. Without wishing to be bound by any particular theory, it is believed that the depletion of oxygen associated with the production of lactic acid in step a) at least partially preserved the organic waste material and therefore only partially decomposed it. For example, it is believed that carbohydrates contained in the starting organic waste material were decomposed and produced into lactic acid and / or acetic acid.

[0134] Step b) of the method The processing of the fermented organic material obtained in step a) can be continued by subjecting said material to a further step b) under aerobic conditions, which step b) can also be referred to as the "maturation stage" of the disclosed method.

[0135] At the end of step a), the resulting fermented organic material generally contains only solids and may have a high moisture content, since liquid that may be produced during fermentation step a) is periodically or continuously removed to maintain facultative anaerobic conditions and thus avoid strict anaerobic conditions.

[0136] In contrast to step a), in which one or more microorganisms are specifically added to the starting organic waste material to be treated, in step b) of the method no further microorganisms are specifically added.

[0137] The facultative anaerobic conditions applied in step a) allow for the preservation of microorganisms that grow in aerobic conditions, including aerobic bacteria, fungi, and yeasts, which are in conditions suitable for their growth in step b) of the disclosed method.

[0138] Preferably, in step b) the fermented organic material obtained in step a) can be contacted with air to implement aerobic conditions for further conversion.

[0139] Since the atmosphere carries a variety of microorganisms, including aerobic microorganisms, the fermented organic material placed under aerobic conditions will over time be colonized by airborne microorganisms, which also contribute to the transformation and decomposition of the fermented organic waste material, more precisely the fermented organic material obtained in step a) of the method.

[0140] As a result, in step b), an aerobic microflora, including bacteria, spontaneously develops in the fermented organic material obtained in step a).

[0141] Step b) is carried out under aerobic conditions, so that the entire mass of the fermented organic material is in contact with oxygen, for example atmospheric air, as far as possible.

[0142] In step b), care must be taken to avoid an excessive increase in the temperature of the treated fermented organic product and to avoid undesirable gas emissions, especially methane emissions.

[0143] Depending on the mass of fermented organic product being treated and the size and shape of the reactor, the treated fermented organic product may be gently agitated in step b) so that step b) is carried out under aerobic conditions.

[0144] In some embodiments, carrying out step b) under aerobic conditions may include adding plant material to the treated fermented organic material to reduce its density and ensure air circulation within the fermentation mass. Illustratively, in step b), fiber-containing material, particularly lignin-containing material (such as, but not limited to, shredded wood, sawdust, feed, or animal litter) may be added to the fermented organic material obtained in step a) to reduce the density of the waste material treated in step b) and to promote the growth of fungi and yeasts.

[0145] Preferably, the moisture content (ie, water content) of the waste material treated in step b) of the method of the present disclosure may generally range from about 45% to about 75%.

[0146] In embodiments in which the organic waste material provided for carrying out the methods of the present disclosure is high energy dense, e.g., organic waste material having a high content of one or more of carbohydrates, fats, and proteins, materials with a low energy density can also be added to the fermented organic product at the start of step b).

[0147] Preferably, the pH of the waste material treated in step b) of the method of the present disclosure may range from about 4 to about 6.

[0148] In step b), the temperature of the waste material may preferably range from about 25°C to about 50°C, and most preferably from about 25°C to about 45°C.

[0149] Typically, a temperature increase is observed in step b) due to the exothermic conversion reactions occurring within the fermented organic waste material being treated. In most embodiments, the temperature of the fermented organic waste material being treated in step b) is increased by up to 15°C above the temperature of the surrounding environment, for example, by up to 15°C above ambient temperature or by up to 20°C above ambient temperature.

[0150] The duration of step b) can range from about 2 weeks to about 6 weeks, and generally can be about 30 days.

[0151] In some embodiments, completion of step b) can be determined when, after the temperature increase described above, the temperature of the treated fermented organic waste material has decreased to a temperature that is at most 2°C above the temperature of the surrounding environment, e.g., when the temperature has decreased to a temperature that is at most 2°C above ambient temperature.

[0152] In some embodiments, the completion of step b) can also be determined by the color of the resulting aged organic material, which is brownish in color.

[0153] In some embodiments, completion of step b) can also be determined when yeast and fungal growth is achieved, for example, when an odor characteristic of the presence of fungi is detected by an operator.

[0154] At the end of step b) of the aerobic fermentation, a mature organic product is obtained.

[0155] Step c) of the method In step c) of the method of the present disclosure, the mature organic material obtained at the end of step b) can be subjected to a vermicomposting step, thereby obtaining treated organic compost.

[0156] Vermicomposting itself is a waste conversion method known in the art. General teachings on vermicomposting as a technique for converting waste into organic fertilizer can be found, for example, in Guttierrez-Miceli et al. (2011, Journal of Plant Nutrition, Vol. 34: 1642-1653) and Yadav et al. (2011, Waste Management, Vol. 30: 50-56, the contents of which are incorporated herein by reference).

[0157] The resulting product of vermicomposting is produced by a non-thermophilic process involving the interaction of earthworms and microorganisms (Edwards et al., 1988, In Neuhauser, CA (Ed.), Earthworms in Environmental and Waste Management, SPB Academic Publishing, The Hague, The Netherlands. 211-220), resulting in the oxidation and stabilization of organic material (Aira et al., 2000, Eur J Soil Biol, Vol. 38: 7-10, the contents of which are incorporated herein by reference), and is known as a finely divided, mature, peaty material.

[0158] As used herein, "vermicomposting" refers to the decomposition of organic matter through ingestion and digestion by earthworms. Vermicomposting also includes the concomitant biotransformation of organic matter through microbiological action, such as the action of bacteria indigenous to such systems. Thus, vermicomposting is the process by which earthworms transform raw materials to produce worm waste (worm castings) and vermicompost (materials transformed by contact with the worms, not waste).

[0159] As is known in the art, vermicomposting increases the conversion of ammonium (ie, ammonia or ammoniacal form) to nitrates.

[0160] Step c) of vermicomposting the mature organic product obtained at the end of step b) is made possible in particular by the fact that said mature organic product has a low ammonia content.

[0161] According to the present disclosure, it has been observed that earthworms are able to immediately colonize the mature organic material obtained in step b) of the method of the present disclosure, in contrast to what is generally observed in known waste treatment methods, in particular when vermicomposting materials that have been subjected to a fermentation step under anaerobic conditions, where earthworm colonization does not occur immediately but begins after an incubation period necessary to process the fermented material and eliminate substances that are toxic to earthworms, such as ammonia.

[0162] In some embodiments, step c) may include adding a substrate containing earthworms to the mature organic product obtained in step b) and initiating vermicomposting under suitable conditions for earthworm growth.

[0163] In some embodiments, step c) of vermicomposting may comprise adding earthworms of one or more earthworm species to the mature organic material obtained in step b).

[0164] There are many species of earthworms, particularly the so-called "red" worms that are suitable for vermicomposting. One non-limiting example is Lumbricus rubellus, and another is Eisenia fetida (which was renamed from fetida in 2004). Other species of earthworms that can be used in step e) are Eisenia andrei, Perionyx excavatus, and African night crawlers (Eudrilus eugeniae) (see Dominguez et al., 2010, In CA Edwards, NQ Arancon, and RL Sherman (Eds), Vermiculture Technology: Earthworms, Organic Waste, and Environmental, Boca Raton, FL: CRC Press, pp. 11-25, the contents of which are incorporated herein by reference). The red earthworms used in the present system can be Eisenia fetida. However, the system is not limited to a particular type of red earthworm, and will work with other types of earthworms, depending in part on the type of organic matter and the sustainable environment available. That is, other types of earthworms can be used in addition to or instead of "red" earthworms such as Eisenia fetida. As used herein, the term "earthworm" is intended to include all types and genera of earthworms that can be utilized in vermicomposting of organic material.

[0165] Advantageously, the organic-loving "Eisenia Andrei" type earthworm (also known as the "California worm") is well adapted to this function and can be used. Naturally, earthworms excrete odorless, dark brown droplets called seepage from their digestive tract, which are very rich in minerals and organic elements, but also in anaerobic bacteria. Therefore, seepage is an excellent "fertilizer" that can be used as liquid fertilizer.

[0166] Nematode inoculants are commercially available, but these products are packaged in a moist sponge designed to be rinsed with water and can be applied directly with water to the product requiring treatment, here the mature organic product obtained in step c) of the method of the present disclosure.

[0167] In embodiments where the earthworm-containing substrate comprises a moist sponge containing earthworms, the sponges can also be immersed in extraction water or fertilizer and squeezed to release the deliverable seeds into a compost and vermifertilizer extraction tank. Because traditional vermifertilizers have extraction times of 24 hours or less, these fertilizers only function as carriers for the added nematodes, rather than growing the added nematode population.

[0168] In some embodiments, earthworms can be added to the mature organic material obtained in step b) at the start of step c) of the method of the present disclosure at a rate of at least about 10 earthworms per kilogram of mature organic product being treated.

[0169] In some embodiments, at the end of step c), a desired amount of treated organic waste material colonized with earthworms can be collected and then used as an earthworm-containing substrate for repeating step d) with the mature organic material obtained in step b) to perform another cycle of the methods disclosed herein.

[0170] The earthworm population can be maintained indefinitely through reproduction and natural selection. Unless special circumstances exist, there is no need to add or remove members of the earthworm population after the initial formation of the bed. Accordingly, the present disclosure also provides an apparatus and process for producing earthworms by exposing the earthworms to conditioned feedstock. However, to maintain suitable environmental conditions for the earthworms, the biomass must be kept moist, and in some embodiments, parameters such as salinity, pH, and nitrogen may be monitored.

[0171] Preferably, if necessary, step c) may further comprise adding cellulosic waste and / or water to the matured organic material obtained in step b).

[0172] In fermentation reactors equipped with a sprinkler system, the moisture content of the worm bed can be regulated. The amount of water applied is adjusted to avoid saturation, which can cause the worms to float to the surface, while still providing enough moisture to maintain a moisture gradient throughout the height of the worm bed. The temperature of the applied water can also be monitored to prevent excessive heat being removed from or added to the worm bed. That is, if the water is too cold, even if the amount of water is appropriate for the moisture content, too much heat may be removed, causing the worms to migrate downward and away from the last applied feed.

[0173] The sprinkler system can be adjusted to produce a fine mist above the digester bed, thus allowing evaporative cooling to prevail, and a corresponding temperature reduction achieved without significantly increasing the moisture content of the digester bed, and thus the worm bed; i.e., most of the pushed-out water evaporates before descending to the surface of the worm bed, thereby locally cooling the area and cooling the worm bed.

[0174] In step c) of the method of the present disclosure, the temperature of the waste organic material being treated can be at least about 15° C., preferably at least about 20° C. In step c) of the method of the present disclosure, the temperature of the waste organic material being treated can be at most about 40° C., most preferably at most about 30° C.

[0175] In step c) of the method of the present disclosure, the moisture content of the waste organic material being treated may be at least about 50%, such as at least about 60%, and the moisture content of the waste organic material being treated may be up to about 75%. The moisture content of the waste organic material being treated may range from about 65% to about 80%.

[0176] In step c) of the method of the present disclosure, the pH of the waste organic material being treated can range from about 5 to about 7.

[0177] Typically, the vermicomposting process can involve two distinct phases related to worm activity: (i) an active phase, during which the worms process the organic products to be treated, and (ii) a maturation phase, characterized by the worms' migration to newer layers of undigested organic substrate as microorganisms decompose the substrate processed by the worms. Thus, the worms effectively move upward through the wormbed, always seeking higher parts of the wormbed, i.e., areas with higher food concentrations (and away from bottom lighting). Adjusting the amount and temperature of water applied to the exposed top of the wormbed allows the worms to continuously migrate upward within the wormbed. That is, the water application rate and water temperature can be selected to prevent the worms from expelling from the surface of the wormbed within the digester bed.

[0178] The applied mature organic material obtained in step b) can be processed through earthworm beds in digester beds for a period ranging from about 12 weeks to about 18 weeks.

[0179] In some embodiments, as part of normal processing, a scraper bar can be passed periodically along the top of a screen at the bottom of the digester bed. The bridging properties of the worm castings and vermicompost that hold the material in place within the digester bed are disrupted, and material falls through the screen until new bridging action holds the bed in place above. The material that falls into the drop zone is transferred to a sieving machine, packaged, and sold.

[0180] The treated organic waste material obtained at the end of vermicomposting step c) has a reduced pathogen content, and may even be completely pathogen-free. The effectiveness of vermicomposting in reducing the presence of human pathogens is known in the art (see Eastman et al., 2001, Compost Science & Utilization, Vol. 9: 38-49, the contents of which are incorporated herein by reference).

[0181] Step c) can be carried out in any type of vermicomposting device known in the art. The skilled artisan can refer, for example, to the device disclosed in Tauseef et al. (2021, Biomass Conversion and Biorefinery), the contents of which are incorporated herein by reference.

[0182] The vermicomposting device (sometimes referred to as a "vermibin") used in step c) of the method disclosed herein must be substantially open to the atmosphere. The vermicomposting device is preferably open at the top and does not have a solid bottom, and in some embodiments may have additional ventilation holes on the side. In embodiments of a vermicomposting device suitable for carrying out step c) of the method disclosed herein, the bottom of the vermicomposting device may include an auger that can be rotated to collect worm castings and other components.

[0183] At the end of step c) of the method of the present disclosure, organic compost is obtained.

[0184] The present disclosure also relates to organic waste compost obtained by the methods disclosed herein.

[0185] use The treated organic compost material obtained at the end of step c) of the method of the present disclosure is believed to increase soil phosphorus availability.

[0186] Furthermore, the presence of humic substances in vermicompost is known, making the treated organic compost obtained in step c) of the disclosed method agriculturally efficient and environmentally friendly (Senesi et al., 2007, Soil Biol Biochem, Vol. 39: 1244-1262).

[0187] Furthermore, it has been reported that vermicompost produced by different types of earthworms contains a variety of bacteria.

[0188] Furthermore, vermicompost is known to enhance several plant parameters, including seedlings (Joshi et al., 2014, Rev Environ Sci Biotechnol, DOI 10.1007 / s11157-014-9347-1, see especially Table 3).

[0189] The present disclosure also relates to the use of organic compost obtained by the methods disclosed herein for soil fertilization.

[0190] The present disclosure relates to the use of treated organic compost obtained by the methods disclosed herein or the organic compost disclosed herein for soil fertilization.

[0191] The present disclosure provides: a) treating organic waste material according to the methods disclosed herein, thereby obtaining organic compost; and b) adding the organic compost obtained in step a) to the soil to be fertilized; The present invention also relates to a method for fertilizing soil, comprising:

[0192] The foregoing description of embodiments of the present disclosure is provided to enable any person skilled in the art to make or use the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles described herein may be applied to other embodiments without departing from the spirit or scope of the present invention. It is therefore understood that the description and drawings presented herein represent presently preferred embodiments of the invention and are therefore representative of the subject matter broadly contemplated by the present invention. It is further understood that the scope of the present invention fully encompasses other embodiments that may become apparent to those skilled in the art. [Example]

[0193] A-Step a: Facultative anaerobic fermentation Several types of waste are collected, including sealed dry kibble, gently used cat litter (98% spruce branch sawdust), and plastic- and metal-free cardboard.

[0194] 2 x 10 liters of stock solution (EM-1®, Agriton) are incubated with 2 x 10 liters of sugarcane molasses diluted with 2 x 180 liters of water at 30°C for 1 week to produce 400 liters of specific microbial solution.

[0195] The overall profile of the waste materials used in “step a” of this experiment is shown in Table 3 .

[0196] [Table 3]

[0197] The waste materials are sown separately at the appropriate seeding water mix rate (Table 4).

[0198] [Table 4]

[0199] Excess liquid is reintroduced until complete penetration of the waste is observed.

[0200] Complementary organic matter is then paired according to a rough estimate of the bioavailability of carbon, nitrogen, and energy content, taking into account availability in relation to waste production at the site. In this method, dog / cat kibble and used cat litter are mixed by stacking several slides (10 cm thick) of each in a dedicated 600 liter container. The same is done with cardboard and used coffee grounds.

[0201] Specifically, the kibble and used cat litter can be mixed at a ratio of about 20% to 40%.

[0202] Fermentation then takes place over a period of four weeks.

[0203] In this experiment, the average weight loss of the brute material during this step is approximately 6%.

[0204] B-Step b: Maturation, aerobic fermentation First, add water at a rate of 20% to 40% of the weight of the fermented material from "step a", depending on the moisture content.The fermented material is then stirred three times a week for two to six weeks, depending on the composition of the ferment.

[0205] During the first three weeks, especially for kibble / cat litter mixes, the temperature increases in proportion to the kibble content. The fermenting material can reach temperatures exactly 20°C above ambient (surface temperatures below 45°C in experiments). As the temperature increases, the release of CO2 increases, and the release of ammonia and fatty acids also appears in the material's odor.

[0206] The reaction is intensified by the weight of the fermenting material itself. At this stage, the size and shape of the stack are important. Building a zonal structure in a vessel less than 80 cm high to increase the exchange area with the air is a suitable adjustment to control the heat as needed.

[0207] Animal weight loss during these first 3 weeks of feeding ranges from 15% to 34% depending on kibble inclusion rate and thermal management.

[0208] At week 4, temperatures may still be above ambient, depending on the kibble formulation. During this oxidation stage, light-colored organic matter turns dark brown.

[0209] To be palatable to the worms, the food must be free of unpleasant odors such as ammonia, a problem that can be solved by adding moist fiber to the ripening mixture.

[0210] In fact, adding water-impregnated fiber (cardboard) at a ratio of 10 to 20% by weight of the fermenting material between the fourth and sixth weeks significantly stimulates fungal growth and suppresses gases that are unpleasant to earthworms within a week, presumably resulting in better sequestration of the organic elements.

[0211] The addition of this fiber also allows the density to be adjusted to an optimum range of about 0.5 to 0.75.

[0212] With certain fermenting materials, including cardboard and used coffee grounds, the maturation stage lasts only two weeks, but no unpleasant odors are detectable.

[0213] By properly managing this step, it is possible to observe earthworms showing interest in the aged bait in a short period of time.

[0214] In this experiment, 1190 kg of fermentation material from "step b" is matured with 476 kg of water and 36 kg of cardboard.

[0215] The average weight loss of the animal material during this step, measured overall, is 27% in this experiment.

[0216] C-Step c: Vermicomposting Eight 600-liter containers will be specially designed for vermicomposting, with key features including a tap to collect the vermicompost, a bottom slatted base (10 cm high) for oxygenation, and appropriate holes on the surface of the lid to optimize airflow, prevent condensation, and prevent the worms from escaping.

[0217] Each container was filled with 5 kg of Eisenia Andrei earthworms for a total weight of 40 kg.

[0218] Regarding the distribution of each food (ripened product), distribute it evenly among the containers.

[0219] The water is sieved and cardboard and used coffee grounds are added evenly directly to each vermicomposting bin to accommodate the worms' behavior.

[0220] Table 5 shows the input profile for the vermicomposting bin.

[0221] [Table 5]

[0222] The total weight of waste put into the eight vermicomposting bins is 1907.5 kg.

[0223] To calculate the weight loss of animal matter for this step, the three yields of "step c" are considered (Table 6).

[0224] [Table 6]

[0225] Analysis by an accredited laboratory has proven that vermicompost complies with NF 44-051.

[0226] In this experiment, the average weight loss of the animal material during this step is 15%.

[0227] Step c was stopped after 6-7 months of vermicomposting in this experiment, when it was determined that all the given food had been consumed. With a target of 1 ton of vermicompost, the optimal duration was approximately 4 months. Preferred embodiments of the present invention will be described below in detail. Embodiment 1 1. A method for processing organic waste materials into organic compost, comprising: a) fermenting said organic waste material, comprising adding at least one or more lactic acid bacteria to said organic waste material under facultative anaerobic conditions at an acidic pH, thereby obtaining a fermented organic material; b) maturing the fermented organic material obtained in step a) under aerobic conditions, thereby obtaining a matured organic material; and c) vermicomposting the matured organic material obtained in step b), thereby obtaining organic compost. A method comprising: Embodiment 2 2. The method of embodiment 1, wherein step a) comprises adding a microbial composition comprising lactic acid bacteria to the organic waste material. Embodiment 3 3. The method of embodiment 2, wherein the microbial composition comprises, in addition to the lactic acid bacteria, one or more microorganisms selected from Lactobacillus, Propionibacterium, Pediococcus, Streptococcus, or a combination thereof. Embodiment 4 4. The method of any one of embodiments 1 to 3, wherein step a) is carried out at a pH of about 3 to about 5. Embodiment 5 5. The method of any one of embodiments 1 to 4, wherein the moisture content of the fermented organic material treated in step b) is from about 45% to about 75%. Embodiment 6 6. The method of any one of embodiments 1 to 5, wherein step b) is carried out at a pH of about 4 to about 7. Embodiment 7 7. The method according to any one of the preceding claims, wherein step c) comprises adding earthworms of one or more earthworm species to the mature organic material obtained in step b). Embodiment 8 8. The method of any one of the preceding claims, wherein step c) further comprises adding cellulosic waste and / or water to the mature organic material in addition to earthworms. Embodiment 9 9. The method of any one of embodiments 1 to 8, wherein step c) is carried out at a T°C of about 15°C to about 30°C. Embodiment 10 10. The method of any one of the preceding claims, wherein step c) is carried out when the moisture content of the treated organic material is between about 60% and about 70%. Embodiment 11 11. Treated organic compost obtainable by the method according to any one of embodiments 1 to 10. Embodiment 12 12. Use of the treated organic compost obtained by the method according to any one of embodiments 1 to 10 or the organic compost according to embodiment 11 for soil fertilization. Embodiment 13 1. A soil fertilization method comprising: i) treating organic waste material according to the method of any one of embodiments 1 to 10, thereby obtaining organic compost; and ii) adding the organic compost obtained in step i) to the soil to be fertilized. A method comprising:

Claims

1. 1. A method for processing organic waste materials into organic compost, comprising: a) fermenting said organic waste material, comprising adding at least one or more lactic acid bacteria to said organic waste material, said fermentation being carried out under facultative anaerobic conditions at an acidic pH, thereby obtaining a fermented organic material; b) maturing the fermented organic material obtained in step a) under aerobic conditions, thereby obtaining a matured organic material; and c) vermicomposting the matured organic material obtained in step b), thereby obtaining organic compost. A method comprising:

2. 10. The method of claim 1, wherein step a) comprises adding a microbial composition comprising lactic acid bacteria to the organic waste material.

3. 3. The method of claim 2, wherein the microbial composition comprises, in addition to the lactic acid bacteria, one or more microorganisms selected from Lactobacillus, Propionibacterium, Pediococcus, Streptococcus, or a combination thereof.

4. 10. The method of claim 1, wherein step a) is carried out at a pH of 3 to 5.

5. 10. The method of claim 1, wherein the moisture content of the fermented organic material treated in step b) is between 45% and 75%.

6. 10. The method of claim 1, wherein step b) is carried out at a pH of 4 to 7.

7. 2. The method of claim 1, wherein step c) comprises adding earthworms of one or more earthworm species to the mature organic material obtained in step b).

8. 10. The method of claim 1, wherein step c) further comprises adding cellulosic waste and / or water to the mature organic material in addition to earthworms.

9. 10. The method of claim 1, wherein step c) is carried out at a T°C of 15°C to 30°C.

10. 10. The method of claim 1, wherein step c) is performed when the moisture content of the treated organic material is between 60% and 70%.

11. 11. Use of the treated organic compost obtained by the method according to any one of claims 1 to 10 for soil fertilization.

12. 1. A soil fertilization method comprising: i) treating organic waste material according to the method of any one of claims 1 to 10, thereby obtaining organic compost; and ii) adding the organic compost obtained in step i) to the soil to be fertilized. A method comprising:

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