NANOBUBBLE MANUFACTURING METHOD AND SYSTEM THEREOF, AND A FERTILIZER MANUFACTURING METHOD AND SYSTEM THEREOF
20210016234 · 2021-01-21
Inventors
Cpc classification
B01F23/2375
PERFORMING OPERATIONS; TRANSPORTING
B01F23/2373
PERFORMING OPERATIONS; TRANSPORTING
C02F1/68
CHEMISTRY; METALLURGY
B01F23/237
PERFORMING OPERATIONS; TRANSPORTING
B01F31/80
PERFORMING OPERATIONS; TRANSPORTING
B01F23/238
PERFORMING OPERATIONS; TRANSPORTING
B01F2101/32
PERFORMING OPERATIONS; TRANSPORTING
C02F2303/26
CHEMISTRY; METALLURGY
International classification
C02F1/68
CHEMISTRY; METALLURGY
Abstract
A nanobubble manufacturing system comprising: a gas supply unit, supplying gas; a mixing device, mixing the gas with liquid into a first solution; and an ultrasonic oscillator, vibrating the first solution to produce a second solution having nanobubbles.
Claims
1. A nanobubble manufacturing system, comprising: a gas supply unit, supplying gas; a mixing device, mixing the gas with liquid into a first solution; and an ultrasonic oscillator, vibrating the first solution to produce a second solution having nanobubbles.
2. The nanobubble manufacturing system according to claim 1, wherein the gas is at least one of nitrogen, oxygen, and carbon dioxide, and the liquid is water.
3. The nanobubble manufacturing system according to claim 1, wherein the gas supply unit mixes the gas into the liquid through the mixing device under a condition of 6 PSI, 20 minutes.
4. The nanobubble manufacturing system according to claim 1, wherein the ultrasonic oscillator vibrates the first solution at 40 kHz for 10 to 30 minutes to generate nanobubbles.
5. The nanobubble manufacturing system according to claim 1, wherein the nanobubble manufacturing system further comprising: a detector, detecting the number of particles in the second solution; and a vacuum device, removing the gas from the second solution into a sample to be detected; wherein, the number of residual particles of the sample to be detected is detected by the detector or another detector.
6. A fertilizer manufacturing system using the nanobubble manufacturing system according to any one of claims 1 to 5.
7. A nanobubble manufacturing method, comprising: injecting gas into liquid to become a first solution; vibrating the first solution by ultrasonic waves to produce a second solution having nanobubbles.
8. The nanobubble manufacturing method according to claim 7, wherein the gas is at least one of nitrogen, oxygen, and carbon dioxide, and the liquid is water; wherein, injecting the gas into the liquid to become the first solution under a condition of 6 PSI, 20 minutes; wherein, vibrating the first solution by ultrasonic waves at 40 kHz for 10 to 30 minutes to generate nanobubbles.
9. The nanobubble manufacturing method according to claim 7, wherein the nanobubble manufacturing method further comprising: detecting the number of particles in the second solution; removing the gas from the second solution into a sample to be detected; and detecting the number of residual particles of the sample to be detected by the detector or another detector.
10. A fertilizer manufacturing method comprising using the nanobubble manufacturing method according to any one of claims 7 to 9.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0004] The embodiments of the present application are shown by way of example and not limitation in the accompanying drawings, like numerals being used for like elements.
[0005]
[0006]
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DETAILED DESCRIPTION
[0011] The principles of the present invention will be described below with reference to a number of illustrative embodiments shown in the accompanying drawings. It should be understood that these embodiments are described merely to enable those persons skilled in the art to better understand the present invention, and are not intended to limit the scope of the present invention in any way.
[0012] Please refer to
[0013] In one embodiment, the gas supply unit 101 may supply a desired gas such as carbon dioxide, nitrogen, or the like, but the present invention is not limited thereto. In one embodiment, the gas supply unit 101 mixes the solvent supplied from the solvent supply unit 102 with the gas supplied from the gas supply unit 101 through the mixing device 103 to form a first solution, in another embodiment, the solvent supply unit 102 may also be a container directly filled with a solvent, and the gas supply unit 101 may directly supply the gas to the solvent supply unit 102 to be mixed into the first solution. In one embodiment, the gas supply unit 101 mixes the gas into the solvent supplied from the solvent supply unit 102 under a condition of 6 PSI (pounds per square inch), 20 minutes.
[0014] Next, the first solution is vibrated by the ultrasonic oscillator 104 to produce a second solution having nanobubbles. In one embodiment, the ultrasonic oscillator 104 vibrates the first solution at 40 kHz for 1030 minutes to produce a second solution having nanobubbles.
[0015] Please refer to
[0016] However, in the process of generating the nanobubbles described above, if impurities are incorporated, there is a possibility that the measured particle diameter may be the particle diameter of the impurities. Therefore, in one embodiment, a detecting process may be added during the process of manufacturing the nanobubbles to confirm that the manufactured nanobubbles meet the required conditions, such that the manufactured nanobubbles meet the required standard, and it is not misunderstood that the particle size of the impurity as the particle size of the nanobubbles.
[0017] Please refer to
[0018] In one embodiment, the nanobubble manufacturing system of the previous embodiment is used as a fertilizer manufacturing device or a portion of a fertilizer manufacturing device. In one embodiment, at least one of oxygen, carbon dioxide, and nitrogen is added to the solvent as a fertilizer for agriculture by using a nanobubble manufacturing system, i.e., utilizing the characteristics that the nanobubbles can exist in the solvent for a long time, at least one of oxygen, carbon dioxide, and nitrogen can exist in the solvent for a longer period of time, such that gas such as carbon dioxide can be supplied as plant nutrients for a longer period of time when the fertilizer is added to the soil.
[0019] Next, referring to
[0020] In one embodiment, for example, oxygen, carbon dioxide, nitrogen, or the like may be supplied as the required gas, but the present invention is not limited thereto. In one embodiment, the solvent and gas are mixed into a first solution through a mixing device. In another embodiment, the gas may be directly supplied to a solvent-containing container and mixed into a first solution. In one embodiment, gas is supplied to be mixed into a solvent to form a first solution. In one embodiment, the gas is mixed to the supplied solvent under a condition of 6 PSI (pounds per square inch), 20 minutes.
[0021] Next, the first solution is vibrated by the ultrasonic oscillator to produce a second solution having nanobubbles. In one embodiment, the ultrasonic oscillator vibrates the first solution at 40 kHz for 1030 minutes to produce a second solution having nanobubbles. The relationship between the vibration conditions and the average size of the nanobubbles has been described in the previous embodiment and will not be repeated.
[0022] However, in the process of generating the nanobubbles described above, if impurities are incorporated, there is a possibility that the measured particle diameter may be the particle diameter of the impurities. Therefore, in one embodiment, a detecting process may be added during the process of manufacturing the nanobubbles to confirm that the manufactured nanobubbles meet the required conditions, to make the manufactured nanobubbles meet the required standard, and it is not misunderstood the particle size of the impurity as the particle size of the nanobubbles.
[0023] Next, please refer to
[0024] In one embodiment, the nanobubble manufacturing method of the previous embodiment is used as a fertilizer manufacturing method or a portion of a fertilizer manufacturing method. In one embodiment, at least one of oxygen, carbon dioxide, and nitrogen is added to the solvent as a fertilizer for agriculture by using a nanobubble manufacturing method, i.e., utilizing the characteristics that the nanobubbles can exist in the solvent for a long time, at least one of oxygen, carbon dioxide, and nitrogen can exist in the solvent for a longer period of time. Thus after the fertilizer is added to the soil, gas such as carbon dioxide can be supplied as plant nutrients for a longer period of time.
[0025] Now, examples related to the present invention will be added below. Note that the present invention is not limited to the following examples.
[0026] Example 1 may include a nanobubble manufacturing system, comprising: a gas supply unit, supplying gas; a mixing device, mixing the gas with liquid into a first solution; and an ultrasonic oscillator, vibrating the first solution to produce a second solution having nanobubbles.
[0027] Example 2 may include the nanobubble manufacturing system of example 1, wherein the gas is at least one of nitrogen, oxygen, and carbon dioxide, and the liquid is water
[0028] Example 3 may include the nanobubble manufacturing system of example 1, wherein the gas supply unit mixes the gas into the liquid through the mixing device under a condition of 6 PSI, 20 minutes.
[0029] Example 4 may include the nanobubble manufacturing system of example 1, wherein the ultrasonic oscillator vibrates the first solution at 40 kHz for 10 to 30 minutes to generate nanobubbles.
[0030] Example 5 may include the nanobubble manufacturing system of example 1, wherein the nanobubble manufacturing system further comprising: a detector, detecting the number of particles in the second solution; and a vacuum device, removing the gas from the second solution into a sample to be detected; wherein, the number of residual particles of the sample to be detected is detected by the detector or another detector.
[0031] Example 6 may include a fertilizer manufacturing system using the nanobubble manufacturing system according to any one of claims 1 to 5.
[0032] Example 7 may include a nanobubble manufacturing method, comprising: injecting gas into liquid to become a first solution; vibrating the first solution by ultrasonic waves to produce a second solution having nanobubbles.
[0033] Example 8 may include the nanobubble manufacturing method of example 7, wherein the gas is at least one of nitrogen, oxygen, and carbon dioxide, and the liquid is water; wherein, injecting the gas into the liquid to become the first solution under a condition of 6 PSI, 20 minutes; wherein, vibrating the first solution by ultrasonic waves at 40 kHz for 10 to 30 minutes to generate nanobubbles.
[0034] Example 9 may include the nanobubble manufacturing method of example 7, wherein the nanobubble manufacturing method further comprising: detecting the number of particles in the second solution; removing the gas from the second solution into a sample to be detected; and detecting the number of residual particles of the sample to be detected by the detector or another detector.
[0035] Example 10 may include a fertilizer manufacturing method comprising using the nanobubble manufacturing method according to any one of claims 7 to
[0036] The above are merely alternative embodiments of the present invention and are not intended to limit the invention. For those persons skilled in the art, the invention may have various changes and modifications. Any modification, equivalent replacement, or improvement made within the spirit and principle of the present invention shall fall within the protection scope of the present invention.