Method for producing a biodigester reactor and membrane template
11582895 · 2023-02-21
Assignee
Inventors
Cpc classification
Y02E50/30
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
Y02W30/40
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
International classification
A01C3/02
HUMAN NECESSITIES
C12M1/12
CHEMISTRY; METALLURGY
C12M1/107
CHEMISTRY; METALLURGY
Abstract
Methods, systems and/or apparatus related to the manufacture and use of biodigesters are disclosed. Moreover, techniques for the manufacture of reactors whose final shape increases the lifespan of the biodigester, as well as modular techniques for the manufacture of the reactors, are included.
Claims
1. A biodigester system comprising: a biodigester reactor made from a single rectangular membrane template, wherein the template includes at least one cut in each corner; an inlet deposit tank connected to the reactor; an outlet deposit tank connected to the reactor; a biogas pipeline connected from the reactor to a domestic use end; a pressure relief valve coupled to the biogas pipeline; at least one water trap coupled to the biogas pipeline; and at least one hydrogen sulfide reducer coupled to the biogas pipeline; wherein the reactor and the outlet deposit tank are made of a same resistant-to-solar-radiation material.
2. The system in accordance with claim 1, wherein the resistant-to-solar-radiation material is selected from the list of: high- or low-density polyethylene, high- or low-density polypropylene, bituminous elastomer, or polyvinyl chloride.
3. The system in accordance with claim 1, wherein the inlet deposit tank is made of the same material as the reactor.
4. The system in accordance with claim 1, wherein the biogas pipeline is connected to the reactor via a flange.
5. The system in accordance with claim 1, wherein the inlet deposit tank is connected to the reactor via a flange.
6. The system in accordance with claim 1, wherein the inlet deposit tank is connected to the reactor via a pipeline.
7. The system in accordance with claim 1, wherein the outlet deposit tank is connected to the reactor via a flange.
8. The system in accordance with claim 1, wherein the outlet deposit tank is connected to the reactor via a pipeline.
9. The system in accordance with claim 1, wherein the hydrogen sulfide reducer includes a filter with filtering material comprised of any ferrous material.
10. The system in accordance with claim 1, wherein the hydrogen sulfide reducer includes a filter with filtering material comprising natural fibers.
11. The system in accordance with claim 10, wherein the natural fibers comprise coconut fibers.
12. The system in accordance with claim 1, wherein the at least one cut in each corner is conducted once the template has formed a sleeve.
13. The system in accordance with claim 1, wherein the membrane template also includes: cuts, in a first pair of opposite ends of the rectangular template, for removal of membrane forming two quadrilaterals per said each opposite end, wherein each quadrilateral includes two first non-consecutive parallel sides and being also parallel to a second pair of opposite ends of the rectangular template and a third side being orthogonal to the two first non-consecutive parallel sides located over a corresponding edge of the rectangular template, and wherein a spacing distance between said quadrilaterals is the same distance as the sum of the spacing distances between each quadrilateral and a closest end of the second pair of ends of the rectangular template; means for joining an edge of an end of the second pair ends of the rectangular template to an edge of the other end of the second pair of ends of the rectangular template, thereby forming a sleeve; means for joining each fourth quadrilateral side to an adjacent side, such that an adjacent side of a quadrilateral is the closest side to an adjacent side of another quadrilateral, thereby partially sealing the sleeve; and means for joining remaining edges of the first pair of opposite ends, thereby totally sealing the sleeve.
14. The system in accordance with claim 13, wherein one of the quadrilateral parallel sides has a longer length than the other side of the quadrilateral parallel sides, thereby defining a longer quadrilateral parallel side and a smaller quadrilateral parallel side, and further defining a fourth quadrilateral side not orthogonal to said parallel sides.
15. The system in accordance with claim 14, wherein the longer parallel side has a length relying on mechanical properties of the membrane material.
16. The system in accordance with claim 13, wherein at least one of the quadrilateral parallel sides has a length of 60%±5% the distance defined by a diameter forming the sleeve.
17. The system in accordance with claim 13, wherein it further includes: means for making an additional cut, wherein said cut is straight and parallel to a distal end of the rectangular template, and wherein said cut is made between each quadrilateral longer side of each first end.
18. The system in accordance with claim 13, wherein the quadrilateral parallel sides have the same length, thereby defining a fourth quadrilateral side being orthogonal to said parallel sides.
19. The system in accordance with claim 13, wherein the spacing distance between the quadrilateral parallel sides relies on mechanical properties of the membrane material.
20. The system in accordance with claim 13, wherein the spacing distance between the quadrilateral parallel sides is 18%±10% a spacing distance between the edges of the second pair of opposite ends of the rectangular template.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(16) The following description is provided to enable those skilled in the art to make and use the embodiments, and said description is provided within the context of a particular application and the requirements thereof. Various modifications to the embodiments disclosed herein will become easily evident to those skilled in the art and the general principles defined herein may be applied to other embodiments and applications without departing from the spirit and scope of the present disclosure. Therefore, the present invention is not limited to the embodiments shown, but on the contrary, the present invention must conform to the widest scope consistent with the principles and characteristics disclosed herein.
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(18) In an embodiment of the invention, the reactor 10, the inlet deposit tank 2, and the outlet deposit tank 6 are manufactured with the same membrane material. In an embodiment of the invention, the material used for the manufacture of said elements 10, 2, and 6 is selected from the list of: high- or low-density polyethylene, high- or low-density polypropylene, bituminous elastomer, or polyvinyl chloride.
(19) The organic matter mixed with water is introduced in the reactor 10 through the inlet deposit tank 2 and the piping 3. In this regard, there is a difference in heights between said inlet deposit tank 2 and the reactor 10 so that a water seal is formed to prevent the organic matter from returning to the inlet deposit tank 2.
(20) Once biogas starts to be produced, the biogas comes out through the outlet piping 5 to be collected in the outlet deposit tank 6. In this regard, the biogas coming out through the gas outlet 20 is then channeled by a piping 21 to a certain apparatus or device wherein said gas can be used as a fuel. In order for the biogas to reach suitable conditions for use, said biogas is firstly passed through a pressure relief valve 22 and a water trap 23, and through a filter 24 which removes hydron sulfide from the biogas.
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(26) In this regard, the mechanical properties also include features such as resilient properties of the material, thermal properties of the material, etc.
(27) Distance EF results from the sum of distances AB+IJ. Distance AB and distance IJ may or may not be the same.
(28) Thus, the joining of the longest edges of the template or of the rectangle AJWZ (dashed line) forms a sleeve including the cuts previously defined, such that elements AB and IJ, when joined together, form the element BI.
(29) In an embodiment of the invention (not shown in the figures), the rectangle formed by points DEFG is cut to form a rectangle with a smaller projection relative to the template body.
(30) In this regard, a method of joining the edges of template 100 is included, said method includes the steps of:
(31) joining element EF to element BI, wherein point B is in direct contact with point E, and point F is in contact with point I;
(32) joining element CD to elements DE and BC accordingly;
(33) joining element GH to elements FG and HI accordingly;
(34) Those skilled in the art will appreciate that said method may also be applied to the right counterpart of template 100.
(35) Moreover, those skilled in the art will appreciate that there are different techniques for making the cuts in rectangle AJWZ to form the respective template, without affecting the subject matter of the present invention.
(36) In an embodiment of the invention, the cuts are made after having formed the sleeve, defined by the joining of the longest ends AZ and JW of said rectangle AJWZ.
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(38) Distance EF results from the sum of distances AB+IJ. Distance AB and distance IJ may or may not be the same.
(39) Thus, the joining of the longest edges of the template or of the rectangle AJWZ (dashed line), forms a sleeve including the cuts previously defined, such that elements AB and IJ, after said joining, become the element BI.
(40) Moreover,
(41) In this regard, a method of joining the edges of template 100B is included, said method includes the steps of:
(42) for the lower left quadrilateral:
(43) forming a sleeve by joining line AZ to line JW;
(44) joining line CD to adjacent line DE, partially sealing the sleeve;
(45) joining line EF to line AB+IJ, accordingly;
(46) Those skilled in the art will appreciate that said method may also be applied to each quadrilateral of template 100B. Moreover, those skilled in the art will appreciate that there are different techniques for making the cuts for the removal of quadrilaterals 50B. In this regard, in an embodiment of the invention, said cuts are made before forming the sleeve. In a further embodiment of the invention, said cuts are made after forming the sleeve.
(47) In an embodiment of the invention, the rectangle formed by points DEFG is cut to form a rectangle with a smaller projection relative to the template body. In an embodiment of the invention, said rectangle DEFG is cut until reaching approximately the line defined by points CH.
(48) In an embodiment of the invention, the template shown in
(49) Therefore, as evident from
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(54) Moreover, a method for manufacturing biodigester reactors is disclosed, wherein the creation of creases is prevented when the reactor is inflated.
(55) The membrane sleeve or plane pipe is a rectangular or partially rectangular membrane joined at a pair of opposite ends, said sleeve including an upper part and a lower part defined by the lines where folding of the plane membrane sleeve is made, being able to be different from the line of joining of the opposite ends. The lower part and the upper part having the same width and length. In this regard, said plain sleeve has a width X. As said sleeve is plain, the sleeve includes an upper part inner face in contact with the lower part inner face. Therefore, when the sleeve is inflated, a cylinder is formed, said cylinder having a 2X perimeter. Those skilled in the art will appreciate that the sleeve length (not specified in the figures) may vary without affecting the subject matter of the present invention. However, said length will determine the capacity of the biodigester system 1. Furthermore, those skilled in the art will appreciate that these measures are for ideal cases, since the final reactor product with gas and liquid waste inside said reactor will have a deformed shape or a shape similar to a circumference, wherein the heaviest waste will settle, deforming the lower part of the reactor and the biogas will tend to rise to accumulate at the upper part of the reactor.
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(57) In an embodiment of the invention, the width of pattern 500 ranges from 1% to 49% of the membrane sleeve or pipe width, with this value relying on the value of the mechanical properties of the membrane material.
(58) In a preferred embodiment, the width of pattern 500 is approximately 18%+10% the width of the membrane sleeve or pipe (said pipe or sleeve being in a plain condition).
(59) In an embodiment of the invention, the spacing distance between the quadrilateral parallel lines ranges from 1% to 49% the width of the rectangular template, with this value relying on the values of the mechanical properties of the membrane material. In a preferred embodiment, the spacing distance is approximately 18%+10% the width of the rectangular template.
(60) In an embodiment of the invention, the length of at least one of the quadrilateral parallel lines ranges from 1% to 70% of the inflated sleeve diameter, with this value ideally relying on the mechanical properties of the membrane material. In a preferred embodiment, said length is approximately 60%+5% the diameter.
(61) In an embodiment of the invention, the length of the longest height is approximately the same as the sum of the lengths of the upper slanted line 501 plus the lower slanted line 502.
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(64) In an embodiment of the invention, each reactor includes mechanical means allowing said reactor to be connected to at least another reactor, thereby defining a reactor with greater dimensions. Said connection may be made either in series and/or in parallel.
(65) In an embodiment of the invention, the reactor is manufactured by using a material with resilient properties for facilitating handling, such as the performance of the folds, and for helping prevent the formation of creases.
(66) In an embodiment of the invention, the filter uses organic matter fibers for filtering the biogas hydrogen sulfide. In an embodiment of the invention, said organic matter is coconut fiber.
(67) In an embodiment of the invention, the joining technique relies on the material selected, but, in particular, the thereto-fusion technique is used. In an embodiment of the invention, a welding technique is used, wherein a filler material known in the art is provided, depending on the membrane material. In an embodiment of the invention, a thereto-fusion and/or welding technique is used. In this regard, those skilled in the art will appreciate that other joining and/or welding techniques may be applied to the present invention without affecting the subject matter thereof.
(68) In an embodiment of the invention, the joining of line EF to the lines AB+IJ is performed by thereto-fusion.
(69) In an embodiment of the invention, the joining of CD to DE is performed by extrusion or a welding where a filler material is provided.
(70) In an embodiment of the invention, the biodigester system 1 further includes a biogas reservoir (not shown in the Figures), said biogas reservoir is coupled to the biogas outlet to collect the biogas produced by the biodigester system 1 and which has not yet been used. In an embodiment of the invention, the manufacture of said reservoir is performed from the templates and techniques disclosed herein.
(71) Moreover, those skilled in the art will appreciate that the system reactor template of the present invention may include fittings requiring orifices and/or additional cuts without affecting the subject matter of the present invention, and which are not shown in said template. Said fittings may include, but are not limited to, inlet deposit tank, outlet deposit tank, and/or gas outlet, etc.
(72) The preceding description of the various embodiments have been provided for illustration and description purposes only. Said description is not attempted to be exhaustive or to limit the present invention to those embodiments disclosed. Therefore, many modifications and variations will become evident to those skilled in the art. Moreover, the preceding disclosure is not attempted to limit the present invention.