A SYSTEM FOR ENHANCING PLANT GROWTH
20170334801 · 2017-11-23
Assignee
Inventors
Cpc classification
Y02P20/145
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
C05F17/914
CHEMISTRY; METALLURGY
C05F11/08
CHEMISTRY; METALLURGY
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
A01N63/20
HUMAN NECESSITIES
International classification
C05F17/00
CHEMISTRY; METALLURGY
Abstract
A mobile system for growing microorganisms and circulating nutrients for administering to plants. The system has minimal interior obstructions that can be easily removed for effective cleaning. The system comprises a mobile structure; a vessel supported by the structure for receiving water and nutrients; a pump supported by the structure; a generator supported by the structure for powering the pump; a vessel outlet from a bottom portion of the vessel to the pump; a first discharge line from the pump extending from the pump into the bottom portion of the vessel, wherein the contents of the vessel can be circulated by the pump from the vessel outlet back into the vessel through the first discharge line; a second discharge line from the pump for discharging contents of the vessel; and an aerator for injecting air into the first discharge line for aerating the contents of the vessel.
Claims
1. A system comprising: a) a mobile structure; b) a vessel supported by the structure for receiving water and nutrients; c) a pump supported by the structure and exterior to the vessel; d) a generator supported by the structure for powering the pump; e) a vessel outlet from a bottom portion of the vessel to the pump; f) a first discharge line from the pump extending from the pump into the bottom portion of the vessel, wherein the contents of the vessel can be circulated by the pump from the vessel outlet back into the vessel through the first discharge line; g) a second discharge line from the pump for discharging contents of the vessel; and h) an aerator for injecting air into the first discharge line for aerating the contents of the vessel.
2. The system of claim 1 wherein the aerator is removable.
3. The system of claim 1 wherein the aerator comprises a venturi.
4. The system of claim 1 wherein vessel contains water, microorganisms and microorganism growth media.
5. The system of claim 1 further comprising a power cord for optionally providing AC power to the pump.
6. The system of claim 1 wherein the aerator is disposed exterior to the vessel and above the top of the vessel.
7. The system of claim 1 wherein each discharge line has a valve for selecting where the pumped contents of the vessel are discharged.
8. The system of claim 1 further comprising a valve in the outlet.
9. The system of claim 1 wherein the top of the vessel is open to the atmosphere.
10. A method for growing microorganisms and circulating nutrients for administering to plants, the method comprising the steps of: a) selecting the system of claim 1; b) adding water, microorganisms, and microorganism growth media into the vessel; c) circulating the contents with the pump by withdrawing contents of the vessel from the vessel outlet back into the vessel through the first discharge pipe, wherein air is sucked into the first discharge line by the venturi for aerating the contents of the vessel; d) cease pumping the contents of the vessel through the first discharge line; and e) pumping contents of the vessel with the pump out of the vessel through the second discharge line for enhancing the growth of plants.
11. A method for growing microorganisms and circulating nutrients for administering to plants, the method comprising the steps of: a) selecting the system of claim 2; b) removing the aerator; c) adding water, microorganisms, and microorganism growth media into the vessel; d) circulating the contents with the pump by withdrawing contents of the vessel from the vessel outlet back into the vessel through the first discharge pipe, wherein air is sucked into the first discharge pipe by the venturi for aerating the contents of the vessel; e) cease pumping the contents of the vessel through the first discharge pipe; and f) pumping contents of the vessel with the pump out of the vessel through the second discharge pipe for enhancing the growth of plants.
12. The method of claim 10 wherein the method further comprises connecting the second discharge pipe to an irrigation system before the last step.
13. The method of claim 10 wherein the method further comprises connecting the second discharge pipe to a spray before the last step.
14. The system of claim 1 wherein the first discharge line comprises a first section from the pump to the top of the vessel and a second down section extending to the bottom portion of the vessel.
15. The system of claim 1 wherein the vessel is modular so the vessel can be separated from the other components of the system for cleaning.
16. The system of claim 1 wherein the second section of the first discharge line is manually removable without tools.
17. The system of claim 1 wherein the aerator comprises two air inlets into the first discharge line.
18. The system of claim 1 wherein the vessel can contain from 200-600 gallons of water.
19. The method of claim 11 wherein the method further comprises connecting the second discharge pipe to an irrigation system before the last step.
20. The method of claim 11 wherein the method further comprises connecting the second discharge pipe to a spray before the last step.
Description
DRAWINGS
[0011] These and other features, aspects and advantages of the present invention will become better understood with regard to the following description, appended claims, and accompanying figures where:
[0012]
[0013]
[0014]
[0015]
DESCRIPTION
[0016] With reference to the figures, there is a system having features of the present invention comprising a mobile structure 36. The structure 36 can be towable or self-propelled. The structure supports the entire system including a vessel 12, a generator 32, a pump 26, piping, and a venturi 34 serving as an aerator.
[0017] Herein, the term “line” can refer to any structure capable of transporting a liquid, for example this could include a pipe. The term “pipe” is not meant to be exclusive but an example of one such “line” and can include other structures capable of transporting a liquid. The term “aerator” can comprise any structure capable of introduce air into the system; a venturi is one type of aerator.
[0018] Referring to
[0019] Referring to
[0020] Any generator capable of powering such pump is envisioned. In one embodiment, the generator is a 4,000 watt portable Predator™ generator.
[0021] The system is designed for ease of access and ease of cleaning. An important aspect of brewing these high-quality aids is cleanliness of the equipment. “Harmful” microbes can live in biofilm. Biofilm is the substance that builds up in, and remains in a brewing machine if it is not thoroughly cleaned after each brew. If the machine is not clean for subsequent brews, then the “harmful” microbes that remain in the biofilm can reproduce exponentially along with the “good” microbes and negatively affect the quality of the organic aid produced. The vessel 12 is modular so the vessel can be separated from the other components of the system for cleaning. The entire vessel 12 can be removed from the system, as it is lightweight and detachable. Therefore, the invention is a system that is easy to use and easy to clean, and that is economical and simple to operate.
[0022] Referring to
[0023] Only the vessel outlet 28 and the second down section 38 of the first discharge line 50 are located interior to the vessel 12. However, both pipes can be easily removed and the vessel 12 completely removed for thorough cleaning. The pipes can be removed manually without tools or can require simple tools such as a screw and a wrench. Referring to
[0024] Referring to
[0025] The piping can be plastic or metal; the preferred piping is polyvinyl chloride.
[0026] It is desirable to control the flow rate and direction of the liquid. To accomplish this, the system comprises three valves: a vessel outlet valve 30 on the vessel outlet 28 disposed between the pump 26 and the vessel 12, a first discharge valve 20 on the first section 14 of the first discharge line 50 disposed between the pump 26 and the “cross” 47, and a second discharge valve 21 on the second discharge line 22 disposed between the pump 26 and a barbed fitting 24 for attachment to an irrigation system. Using the valves, a user can alternate the direction and flow of the liquid from continuous circulation to the application on plants. For example, to maintain constant circulation, the pump 26 and generator 32 are turned on and first discharge valve 20 and vessel outlet valve 30 are opened while second discharge valve 21 is closed. Alternately, to discharge the contents of the vessel 12 while the pump 26 and generator 32 are on, second discharge valve 21 and vessel outlet valve 30 are opened while first discharge valve 20 is closed.
[0027] The water demand of the irrigation can vary during a typical irrigation cycle so it is desirable measure the flow rate. This enables all of the water in the irrigation lines to be nutrient treated to assure even application of the nutrients to the medium. By varying the pressure output from the second discharge line 22 and diameter of the discharge pipes, the system can be adapted to any irrigation system and will precisely measure the dilution rate of the solution in the irrigation system and the flow of irrigation water.
[0028] Furthermore, it is desirable to be able to accommodate different irrigation systems of which can have different size piping and maximum and minimum pressure loads. This can be accomplished by varying the pressure output of the pump 26, varying the degree that the second discharge valve 21 is opened or closed in the second discharge line 22, or by varying the diameter of the piping in the second discharge line 22. In order to account for the varying pressures needed in different irrigation systems, it is preferred to use a diaphragm pump for pumping the solution. A diaphragm pump, such as a double diaphragm pump, provides the benefits, among others, of pumping chambers preventing the material being pumped to come in contact with any close fitting rotary or sliding seals to and capacities are infinitely variable within the pumps range. Because of the double diaphragm pump structure, it is ideal to be used with abrasives, slurries or even run dry. Therefore, there is no need to use variable speed motors or variable drives with a diaphragm pump.
Example
[0029] Next, disclosed is the method of assembly of one embodiment of the invention. To create the venturi 34, take a 1.5 inch “bushing” and cut a “flange” off of the end (one quarter inch). Insert a 2.75 inch long 1 inch pvc pipe into the “bushing” so that it “seats” against the interior “flange” inside the “bushing” and hold in place in the center of the “cross” for one minute so that the glue dries. Insert the “bushing” into the “cross” 47 in the opposite direction that it was designed to be inserted so that the 2.75 inch long 1 inch pvc pipe extends into the center of the “cross” 47, leaving 0.5 inches of the (unglued) “bushing” outside the “cross” 47 so as to be accessible for inserting and gluing into a 1.5 inch “elbow”. This leaves the 1 inch pvc pipe terminating in the middle of the “cross” 47 reducing the flow of liquid so as to create a venturi effect as the liquid passes through the “cross” 47 from top to bottom with the perpendicular “arms” of the cross serving as air inlets 46a/b. Using a conical boring device, bore out the top of the “bushing” where it enters the “cross” 47 and reduces to 1 inch to enhance the venturi effect of the cross 47. This is now the top of the system.
[0030] Next, use two 2 inch lengths of pipe as “sleeves” and glue the (2) “arms” of the cross 47 to the “elbows” so that the opening of the “elbows” points down at a 30 degree angle. Glue the third “elbow” to the top of the “cross” 47 so that it is perpendicular to the arms of the “cross” where the “bushing” extends out 0.5 inch (over the venturi 34). Glue a 50 inch flexible pipe into the bottom arm of the “cross”. This is now the second down section of the first discharge line 50 that inserts into the tank. Glue the flexible pipe into the “elbow” above the venturi. This is now the first discharge pipe 14. Glue the end of the flexible pvc pipe to the “union”. This “union” will connect the flexible pipe to the valve 20 coming out of the pump.
[0031] Furthermore, the invention relates to a method for growing microorganisms and administering the microorganisms for enhancing the growth of plants using the systems of the invention. The method comprises adding water, microorganisms, and nutrients for the microorganisms into the vessel 12. Pumping to aerate the vessel 12 for a sufficient time to allow a majority of the microorganism to grow and develop. The contents of the vessel are circulated through the first section 14 of the first discharge line 50 to the discharge opening 45, wherein air is sucked into the first discharge pipe 50 for aerating the contents of the vessel. Next, pump contents of the vessel 12 with the pump 26 out of the vessel for enhancing the growth of plants. The time required to circulate the contents of the vessel depends on the amount of solution and the area necessary to be irrigated in order to allow a majority of the microorganisms to fully develop.
[0032] Alternatively, microorganisms and nutrients can be circulated for administering to plants wherein the aerator 34 is removed before pumping to allow circulation without the introduction for air into the system.
[0033] One embodiment of the invention provides for the capacity to brew at between 200 and 600 gallons of solution, preferably at least 300 gallons. Depending on the bacteria desired and cultivation time, in one embodiment brewing generally takes about 2-4 hours. However, it is envisioned that less brewing time can be required. Preferably, the system is transported to the site of application and then brewed on site; however, brewing can take place anywhere as the system is mobile.
[0034] Optionally, the user can move the vessel 12 before pumping the contents out of the vessel 12. Furthermore, the user can optionally choose to attach the second discharge pipe 22 to an irrigation system 40 or a spray 42 before pumping the contents of the vessel. After discharging the contents of the vessel 12, the user can disconnect the vessel entirely from all other component parts for effective cleaning.
[0035] The microorganisms can comprise aerobic microbes consisting of archaea, bacteria, fungal hyphae, flagellates, amoebae, some ciliates, yeast cells and yeast fungal hyphae. The nutrient solution can be composed of any appropriate nutrients for such microorganisms, for example but not limited to black strap molasses, fish hydrolysate, and kelp meal. A product containing both microorganisms and nutrients is available from Simple Science LLC located in Salt Lake City, Utah, under the mark Dirt2Soil.
[0036] Although the present invention has been described in considerable detail with reference to certain preferred versions thereof, other versions are possible. For example, different aerating means may be employed such as an air pump. Therefore, the spirit and scope of the appended claims should not be limited to the description of the preferred versions contained herein.