CLAY-BASED CARRIER PLATFORM FOR BIOLOGICALS IN AGRICULTURE
20210059244 ยท 2021-03-04
Inventors
Cpc classification
Y02P60/21
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
C05F1/00
CHEMISTRY; METALLURGY
A01N63/30
HUMAN NECESSITIES
Y02A40/22
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
A01N63/30
HUMAN NECESSITIES
C05F11/08
CHEMISTRY; METALLURGY
International classification
Abstract
The present invention relates to an improved carrier for sustaining microbes, comprising of a composition having a base material with one or more of a clay or mineral, the composition further including a carbon source and a pH modifier. More specifically, an improved biological carrier platform is provided with scientifically customized formulations that provide hospitable environments for a variety of biologicals, including live microbes and bioactive essential oils. The platform offers an inert granular, mineral base in various grind sizes and forms having specific beneficial effects. In addition, present invention also provides the various processes and methods such as providing an improved carrier comprising a base material having one or more of a clay or mineral, the composition further comprising a carbon source and a pH modifier; and loading a microbial inoculant onto the carrier, wherein the microbial inoculant comprises a plurality of microbes.
Claims
1. An improved carrier for sustaining microbes, comprising: a composition comprising a base material comprising one or more of a clay or mineral, the composition further comprising a carbon source and a pH modifier.
2. The improved carrier of claim 1, wherein the base material comprises one or more of montmorillonites, calcium montmorillonites, attapulgites, palygorskites, sepiolites, kaolins, micas, zeolites, and diatomaceous earth.
3. The improved carrier of claim 1, wherein the carbon source comprises one or more of humic acid, leonardite, biochar, seaweed, corn meal, millet, oats, grain starches, carboxymethyl celluloses, polymers, or other organic cellulose carbohydrates.
4. The improved carrier of claim 1, wherein the pH modifier comprises one or more of salts of calcium, potassium, and sodium.
5. The improved carrier of claim 1, wherein the base material comprises about 85%-99% by weight of the total composition, the carbon source comprising no more than 10% by the weight of the total composition, and the pH modifier comprising no more than 5% of the weight of the total composition.
6. The improved carrier of claim 5, wherein the composition further comprises water, the water comprising no more than 15% by weight of the total composition.
7. The improved carrier of claim 1, wherein the base material comprises a plurality of particles, wherein each of the plurality of particles has a particle size ranging between 30 and 500 microns.
8. The improved carrier of claim 1, wherein the composition comprises a powder.
9. The improved carrier of claim 1, wherein the composition comprises a plurality of pellets.
10. The improved carrier of claim 1, wherein the base material comprises a calcium montmorillonite, the carbon source comprises a humic acid, and the pH modifier comprises a calcium carbonate powder, wherein the base material comprises about 88.5%-92% by weight of the total composition, the carbon source comprises about 2.5%-5% by weight of the total composition, and the pH modifier comprises about 0.5%-1.5% by weight of the total composition, wherein the composition further comprises water, the water comprising about 5% by weight of the total composition.
11. A method of sustaining microbes, comprising: providing an improved carrier comprising a base material comprising one or more of a clay or mineral, the composition further comprising a carbon source and a pH modifier; and loading a microbial inoculant onto the carrier, wherein the microbial inoculant comprises a plurality of microbes.
12. The method of claim 11, wherein the microbial inoculant comprises a fully grown broth.
13. The method of claim 11, wherein the microbial inoculant comprises microbial propagules.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The following detailed description, given by way of example, but not intended to limit the invention solely to the specific embodiments described, may best be understood in conjunction with the accompanying drawings.
[0019]
[0020]
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[0024]
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[0029]
DETAILED DESCRIPTION OF THE INVENTION
[0030] In an embodiment, a functionalized clay-based hybrid carrier has been developed as a substitute for peat as a carrier for sustaining microbes and extending shelf lives. Generally, the clay-based hybrid carrier involves the use of a clay or mineral as a base material along with a carbon source and a pH modifier (limestone, potassium carbonate, soda ash, etc.), although additional or different ingredients may be used such as polymers or a stabilizer etc. In this embodiment, the carbon source may include one or more the following: humic acid, leonardite, biochar, seaweed, corn meal, millet, oats, grain starches, carboxymethyl celluloses, polymers, or other organic cellulose carbohydrates. However, other carbon sources are contemplated.
[0031] In addition, in this embodiment, the pH modifier may include one or more of the following: salts of calcium, potassium, and sodium, etc., although other pH modifiers may be used. Further in this embodiment, the clay may include one or more of the following: montmorillonites, calcium montmorillonites, attapulgites, palygorskites, sepiolites, and kaolins. Alternatively or in addition to the clay, other minerals may be used, including but not limited to micas, zeolites, and diatomaceous earth. This embodiment provides a consistent and stable platform as a carrier for beneficial microbes. In this embodiment, a beneficial microbial inoculant in the form of fully grown broth or microbial propagules may be loaded onto the functionalized clay-based carrier. The clay-based carrier provides a suitable environment for the inoculated beneficial microbes for an extended period of 2-3 years.
[0032] The embodiment described above may have a variety of composition while still being effective for its intended purpose. However, the inventors have determined the following ranges by weight of composition for each of the three main ingredients is as follows: the clay or mineral may be about 85%-99% by weight of the total composition, the carbon source may be about 0.5%-10% by weight of the total composition, water may be about 0-15% by weight of the total composition, and the pH modifier may be about 0-5% by weight of the total composition.
[0033] Further, the embodiment described above may have a variety of composition while still being effective for its intended purpose. However, the inventors have determined that the following characteristics of the clay/mineral sources may be preferable. The particle size of the clay/mineral sources may range between 30 microns (400 Mesh) to 5000 microns (4 Mesh). The processing of the clay varies depending on the level of moisture desired in the clay after the drying process. The moisture level is referred to as regular volatile moisture (RVM) or low volatile moisture (LVM). For example, dry RVM clay granules can be superheated to make LVM products at temperatures less than 400 C. (750 F.). In addition, the clay/mineral sources may have a free moisture ranging from 4%-20% (RVM or Regular Volatile Material) or a range from 0%-4% (LVM or Low Volatile Material). Further, while the clay/mineral sources of this embodiment may be in a variety of shapes and sizes, agglomerated granules and extruded pellets of the clay/mineral sources may be used.
[0034] In a preferred embodiment, the clay source may be a 12/40 mesh LVM-MS Calcium Montmorillonite, the carbon source may be humic acid, and the pH modifier may be CaCO.sub.3 powder. Also in a preferred embodiment, the clay-based hybrid carrier may include about 88.5%-92% by weight of the clay or mineral, about 2.5%-5% by weight of the carbon source, about 0.5%-1.5% by weight of a pH modifier, and about 2.5-5.5% by weight of water.
[0035] In another preferred embodiment, the composition may include a combination of clay and millet flour. The composition may include about 80-90% by weight of the clay, 0.5-4% by weight of millet flour, and about 8-13% by weight of water. The clay may be any number of clays, but in this embodiment is 24/48 Taft clay.
[0036] In order to determine the efficacy of the clay-based hybrid carrier, the inventors conducted several experiments. Clay-based hybrid carriers are functionalized carriers with different concentrations of additives which are then tested for the viability and long-term stability of certain microbes in these functionalized clay. In one experiment, a microbial inoculant of Bradyrhizobium japonicium (ATCC 35170) was loaded onto two clay-based hybrid carriers 2, 4. The same microbial inoculant was also loaded onto a peat carrier 6 to provide a commercially available baseline to compare against.
[0037]
[0038] In another experiment, a microbial inoculant of Trichoderma harzianum (ATCC 42835) was tested with a clay-based hybrid carrier 8 especially designed for fungal microbes. clay-based hybrid carrier for an extended period of time, the results of which are shown in
[0039] In another experiment, five clay-based hybrid carriers 7, 9, 11, 13, 15 as described herein were used as carriers for the mycorrhizal fungi Glomus intraradices. Infectivity assay such as mean infection percentage can be early colonization indications and are a significant indicator of later spore production. The clay-based hybrid carriers 7, 9, 11, 13, 15 gave a primary infection within 21 days, which was significantly higher when compared to growth of the fungus in control media. While good standard colonization at 21 days starts at around 20% colonization, the clay-based hybrid carriers 7, 9, 11, 13, 15 described herein were at around 45-84% colonization. After three months of growth, the spores were extracted and counted from each fungal carrier 7, 9, 11, 13, 15, the results of which are shown in
[0040] A powdered form of this improved carrier can be used for seed coating and treatment applications. In addition, while this embodiment describes the use of the functionalized carrier platform as a carrier for microbes, it also has a variety of other uses in the agricultural industry, such as a carrier for enzymes, peptides, lysozymes or essential oils for use with crop plants.
[0041] Limited, experimental field trials were conducted to determine the efficacy of the clay-based hybrid carriers described above. Several types of carriers were used as a carrier for the bacteria Rhizobium leguminosarum biovar viceae to promote growth in pea/lentil at several locations in eastern Nebraska, Minnesota, Wisconsin, Illinois, and central Michigan. The same types of carriers were used for the bacteria Bradyrhizobium japonicum to promote growth of soybean at the same locations. The plot size was 10 feet40 feet or 20 feet80 feet, and each treatment was replicated 3 to 6 times depending on the plot size at each site.
[0042]
[0043] The named inventors conducted another experiment to determine the shelf life of the clay-based hybrid carrier, the results of which are shown in
[0044] The improved clay-based hybrid carrier may be made using several processes as illustrated in various flow-charts shown in
[0045] In another embodiment, as illustrated in
[0046] In yet another embodiment, as illustrated in
[0047] The foregoing examples have been provided merely for the purpose of explanation and are in no way to be construed as limiting of the present disclosure disclosed herein. While the disclosure has been described with reference to various embodiments, it is understood that the words which have been used herein are words of description and illustration, rather than words of limitation.
[0048] Further, although the disclosure has been described herein with reference to particular means, materials and embodiments, the disclosure is not intended to be limited to the particulars disclosed herein; rather, the disclosure extends to all functionally equivalent structures, methods and uses, such as are within the scope of the appended claims. Those skilled in the art, having the benefit of the teachings of this specification, may affect numerous modifications thereto and changes may be made without departing from the scope and spirit of the disclosure in its aspects.
[0049] Whereas particular aspects of this disclosure have been described above for purposes of illustration, it will be evident to those skilled in the art that numerous variations of the details of the present disclosure may be made without departing from the disclosure.
[0050] While particular preferred embodiments have been shown and described, it is to be understood that the foregoing description is exemplary and explanatory only and is not restrictive of the instant disclosure. Those skilled in the art will appreciate that changes and additions may be made without departing from the instant teachings. For example, the teachings of the instant disclosure may be directed to various combinations and sub-combinations of the disclosed features and/or combinations and sub-combinations of several further features described herein. It is therefore contemplated that any and all modifications, variations, or equivalents of the above-described teachings fall within the scope of the basic underlying principles disclosed above and claimed herein.