Fine bubble generating method and fine bubble generating apparatus
11511241 · 2022-11-29
Assignee
Inventors
Cpc classification
B01F23/2323
PERFORMING OPERATIONS; TRANSPORTING
B01F23/23123
PERFORMING OPERATIONS; TRANSPORTING
B01F23/2331
PERFORMING OPERATIONS; TRANSPORTING
B01F2215/0431
PERFORMING OPERATIONS; TRANSPORTING
B01J10/00
PERFORMING OPERATIONS; TRANSPORTING
B01F33/813
PERFORMING OPERATIONS; TRANSPORTING
B01F25/53
PERFORMING OPERATIONS; TRANSPORTING
B01F23/231156
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01F23/23
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A fine bubble generating apparatus has a storage tank, a liquid feeding unit suctioning and feeding liquid stored in the storage tank, a gas discharge unit discharging gas into the liquid which is being fed by the liquid feeding unit, and a storage tank. The gas discharge unit includes a gas discharge member with pores having pore diameters of 1.5 μm or less, and a base member having a groove formed in a surface contacting the gas discharge surface of the gas discharge member. The liquid feeding unit moves the liquid along the gas discharge surface of the gas discharge member by causing the liquid to flow in a flow channel enclosed by the gas discharge surface of the gas discharge member and the groove of the base member such that a velocity relative to the gas discharge member is not less than 1 msec.
Claims
1. A fine bubble generating method for generating, in liquid, fine bubbles having nano-order diameters, the fine bubble generating method comprising: bringing liquid into contact with a gas discharge surface of a gas discharge member located within a gas discharge unit, the gas discharge member having multiple gas discharge pores having pore diameters of 1.5 μm or less that are opened, and discharging gas into the liquid from the gas discharge member while the liquid is relatively moved along the gas discharge surface of the gas discharge member such that a velocity relative to the gas discharge member is not less than 1 m/sec, wherein: the gas discharge unit includes a flow channel forming member that has a groove formed in a surface on which the flow channel forming member contacts with the gas discharge surface of the gas discharge member and that is attached so as to be in surface contact with the gas discharge surface of the gas discharge member, and a relative movement unit moves the liquid along the gas discharge surface of the gas discharge member by causing the liquid to flow in a flow channel enclosed by the gas discharge surface of the gas discharge member and the groove of the flow channel forming member.
2. The fine bubble generating method according to claim 1, wherein a pore diameter distribution of the gas discharge pores satisfies (D90−D10)/D50≤3.0 where D10 represents a pore diameter with which a cumulative number of pores counted from a small diameter side corresponds to 10% of a total number of pores, D50 represents a pore diameter with which a cumulative number of pores counted from the small diameter side corresponds to 50% of the total number of pores, and D90 represents a pore diameter with which a cumulative number of pores counted from the small diameter side corresponds to 90% of the total number of pores.
3. The fine bubble generating method according to claim 1, wherein the gas discharge member is disposed in a flow of the liquid to move the liquid along the gas discharge surface of the gas discharge member.
4. The fine bubble generating method according to claim 1, wherein the flow channel for the liquid is disposed on the gas discharge surface of the gas discharge member in a state where the liquid is in contact with the gas discharge surface, and the liquid is caused to flow in the flow channel and the liquid is thus moved along the gas discharge surface of the gas discharge member.
5. The fine bubble generating method according to claim 2, wherein the gas discharge member is disposed in a flow of the liquid to move the liquid along the gas discharge surface of the gas discharge member.
6. The fine bubble generating method according to claim 2, wherein the flow channel for the liquid is disposed on the gas discharge surface of the gas discharge member in a state where the liquid is in contact with the gas discharge surface, and the liquid is caused to flow in the flow channel and the liquid is thus moved along the gas discharge surface of the gas discharge member.
7. A fine bubble generating apparatus for generating, in liquid, fine bubbles having nano-order diameters, the fine bubble generating apparatus comprising: a gas discharge unit having a gas discharge member in which multiple gas discharge pores are opened in a gas discharge surface, and a relative movement unit configured to relatively move liquid along the gas discharge surface of the gas discharge member, wherein: the gas discharge member has the gas discharge pores having pore diameters of 1.5 μm or less, gas is discharged into the liquid from the gas discharge member while the liquid is relatively moved along the gas discharge surface of the gas discharge member by the relative movement unit such that a velocity relative to the gas discharge member is not less than 1 m/sec, the gas discharge unit includes a flow channel forming member that has a groove formed in a surface on which the flow channel forming member contacts with the gas discharge surface of the gas discharge member and that is attached so as to be in surface contact with the gas discharge surface of the gas discharge member, and the relative movement unit moves the liquid along the gas discharge surface of the gas discharge member by causing the liquid to flow in a flow channel enclosed by the gas discharge surface of the gas discharge member and the groove of the flow channel forming member.
8. The fine bubble generating apparatus according to claim 7, wherein a pore diameter distribution of the gas discharge pores satisfies (D90−D10)/D50≤3.0 where D10 represents a pore diameter with which a cumulative number of pores counted from a small diameter side corresponds to 10% of a total number of pores, D50 represents a pore diameter with which a cumulative number of pores counted from the small diameter side corresponds to 50% of the total number of pores, and D90 represents a pore diameter with which a cumulative number of pores counted from the small diameter side corresponds to 90% of the total number of pores.
9. A fine bubble generating method for generating, in liquid, fine bubbles having nano-order diameters, the fine bubble generating method comprising: bringing liquid into contact with a gas discharge surface of a gas discharge member in which multiple gas discharge pores having pore diameters of 1.5 μm or less are opened, and discharging gas into the liquid from the gas discharge member while the liquid is relatively moved along the gas discharge surface of the gas discharge member such that a velocity relative to the gas discharge member is not less than 1 m/sec, wherein a spiral flow channel for the liquid is disposed on the gas discharge surface of the gas discharge member in a state where the liquid flows along a spiral path while in contact with the gas discharge surface, and the liquid is caused to flow along the spiral path in the flow channel and the liquid is thus moved along the gas discharge surface of the gas discharge member.
10. The fine bubble generating method according to claim 9, wherein a pore diameter distribution of the gas discharge pores satisfies (D90−D10)/D50≤3.0 where D10 represents a pore diameter with which a cumulative number of pores counted from a small diameter side corresponds to 10% of a total number of pores, D50 represents a pore diameter with which a cumulative number of pores counted from the small diameter side corresponds to 50% of the total number of pores, and D90 represents a pore diameter with which a cumulative number of pores counted from the small diameter side corresponds to 90% of the total number of pores.
11. A fine bubble generating apparatus for generating, in liquid, fine bubbles having nano-order diameters, the fine bubble generating apparatus comprising: a gas discharge unit having a gas discharge member in which multiple gas discharge pores are opened in a gas discharge surface, and a relative movement unit configured to relatively move liquid along the gas discharge surface of the gas discharge member, wherein the gas discharge member has the gas discharge pores having pore diameters of 1.5 μm or less, the gas discharge unit and the relative movement unit are configured such that gas is discharged into the liquid from the gas discharge member while the liquid is relatively moved along the gas discharge surface of the gas discharge member by the relative movement unit such that a velocity relative to the gas discharge member is not less than 1 m/sec, and a spiral flow channel for the liquid is disposed on the gas discharge surface of the gas discharge member in a state where the liquid flows along a spiral path while in contact with the gas discharge surface, and the liquid is caused to flow along the spiral path in the flow channel and the liquid is thus moved along the gas discharge surface of the gas discharge member.
12. The fine bubble generating apparatus according to claim 11, wherein a pore diameter distribution of the gas discharge pores satisfies (D90−D10)/D50≤3.0 where D10 represents a pore diameter with which a cumulative number of pores counted from a small diameter side corresponds to 10% of a total number of pores, D50 represents a pore diameter with which a cumulative number of pores counted from the small diameter side corresponds to 50% of the total number of pores, and D90 represents a pore diameter with which a cumulative number of pores counted from the small diameter side corresponds to 90% of the total number of pores.
13. The fine bubble generating apparatus according to claim 11, wherein the gas discharge unit includes a flow channel forming member that has a groove formed in a surface on which the flow channel forming member contacts with the gas discharge surface of the gas discharge member and that is attached so as to be in surface contact with the gas discharge surface of the gas discharge member, and the relative movement unit moves the liquid along the gas discharge surface of the gas discharge member by causing the liquid to flow in the spiral flow channel enclosed by the gas discharge surface of the gas discharge member and the groove of the flow channel forming member.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(15) Hereinafter, embodiments will be described with reference to the drawings.
(16) The liquid feeding unit 20 includes a liquid feeding pipe 21 and a liquid feeding pipe 22 that form a liquid flow channel, a variable-flow-rate-type liquid feeding pump 23 disposed in the liquid feeding pipe 22 portion, and a valve 24 disposed in the liquid feeding pipe 21 portion for adjusting a negative pressure level of the gas discharge unit 30, as shown in
(17) The gas discharge unit 30 includes a base member (flow channel forming member) 31 that is a resin molded product and has a spiral groove 31b formed in a round recessed bottom surface 31a, a disk-shaped gas discharge member 32 disposed such that the lower surface (gas discharge surface) is in contact with the recessed bottom surface 31a of the base member 31, an annular packing 33 disposed in surface contact with the upper surface peripheral edge portion of the disk-shaped gas discharge member 32, and a round cap 34 that is a resin molded product and is fitted into the recess of the base member 31 so as to press the annular packing 33 downward, as shown in
(18) The base member 31 has a screw hole 31c that penetrates the end portion, on the center side, of the spiral groove 31b in the up-down direction, as shown in
(19) On the side surface of the base member 31, a bamboo-shoot-shaped piping joint 31d to which the upstream-side end portion of the liquid feeding pipe 22 of the liquid feeding unit 20 is connected, is formed integrally with the side surface of the base member 31. Inside the base member 31, a flow channel 31e that connects between the piping joint 31d and the end portion, on the outer side, of the spiral groove 31b is formed.
(20) Therefore, liquid stored in the storage tank 10 is fed through the liquid feeding pipe 21 of the liquid feeding unit 20 to the gas discharge unit 30, fed through the flow channel FC and the flow channel 31e of the base member 31 to the liquid feeding pipe 22 of the liquid feeding unit 20, and fed into the storage tank 40 through the liquid feeding pipe 22.
(21) The gas discharge member 32 is formed from an air-permeable porous body made of porous ceramics such as a porous alumina material and porous glass, and multiple gas discharge pores having pore diameters (mode diameter) of 1.5 [μm] or less are opened in the lower surface. Specifically, the gas discharge members 32 that have gas discharge pores having six pore diameters (mode diameters) of 1.5 μm, 1 μm, 0.8 μm, 0.4 μm, 0.05 μm, and 0.005 μm, respectively, and that have two kinds of pore diameter distributions for each of the pore diameters, are used, so that 12 kinds of the gas discharge members 32 are used in total. The pore diameter distribution of the gas discharge pores is evaluated according to a value of (D90-D10)/D50 in which D10 represents a pore diameter with which a cumulative number of pores counted from a small diameter side corresponds to 10% of a total number of pores, D50 represents a pore diameter with which a cumulative number of pores counted from the small diameter side corresponds to 50% of the total number of pores, and D90 represents a pore diameter with which a cumulative number of pores counted from the small diameter side corresponds to 90% of the total number of pores. When the value is small, variation in pore diameter is small. When the value is great, variation in pore diameter is great. The pore diameters (mode diameter), and the values of D10, D50, and D90 of the gas discharge pores of each gas discharge member 32 are obtained as follows. That is, for a test piece (20 mm×5 mm) which is cut out from each gas discharge member 32, a pore diameter distribution is measured three times by a gas adsorption method by using a pore diameter distribution measuring device (for porous alumina material: Perm-Porometer manufactured by POROUS MATERIALS in the U.S.A., for porous glass: Nano-PermPorometer manufactured by Seika Digital Image CORPORATION), and a distribution table obtained by the obtained pore diameter distributions being averaged is used to obtain the pore diameters and the values of D10, D50, and D90.
(22) The cap 34 has a screw hole 34a that penetrates through the center of the cap 34 in the up-down direction. A gas supply pipe for supplying various gases can be connected to the gas supply chamber GR through a piping joint 36 screwed into the screw hole 34a. In examples described below, air is used as gas. Therefore, the piping joint 36 is opened to the atmosphere without connecting to the gas supply pipe.
(23) In the fine bubble generating apparatus 1 having the above-described configuration, when liquid is introduced into the storage tank 10 and the liquid feeding pump 23 is operated, the liquid in the storage tank 10 is fed through the flow channel FC of the gas discharge unit 30 to the storage tank 40. The pressure in the flow channel FC of the gas discharge unit 30 disposed on the suctioning side of the liquid feeding pump 23 is negative pressure, and air is suctioned into the liquid that passes through the flow channel FC, through the gas discharge pores opened in the lower surface of the gas discharge member 32, due to the negative pressure. When the pump flow rate is adjusted such that the liquid flow velocity in the flow channel FC of the gas discharge unit 30 is not less than 1 [m/sec], air suctioned into the liquid that passes through the flow channel FC, through the gas discharge pores of the gas discharge member 32, is divided into fine bubbles having sizes of 1.5 μm or less, by the liquid flow in the flow channel FC, and the fine bubbles slowly contract to generate nano-order fine bubbles, so that the liquid containing the nano-order fine bubbles is stored in the storage tank 40.
(24) Hereinafter, examples 1 to 19 of the present invention and comparative examples 1 to 7 in which fine bubbles of air were generated in pure water by using the fine bubble generating apparatus 1 described above, will be described with reference to Table 1. However, needless to say, the present invention is not limited to the examples described below.
Example 1
(25) As indicated in Table 1, as the gas discharge member 32 of the gas discharge unit 30, the gas discharge member 32 in which the gas discharge pores had pore diameters (mode diameter) of 1.5 μm and the pore diameter distribution (D90−D10)/D50 was 2.898, was used. Pure water was introduced into the storage tank 10, and the pump flow rate was adjusted such that the flow velocity in the flow channel FC of the gas discharge unit 30 was 2 [m/sec]. In this state, the liquid feeding pump 23 was operated to generate fine bubbles of air in the pure water.
Example 2
(26) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 1 except that the gas discharge member 32 in which the gas discharge pores had the pore diameters (mode diameter) of 1 μm and the pore diameter distribution (D90−D10)/D50 was 2.591 was used as the gas discharge member 32 of the gas discharge unit 30.
Example 3
(27) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 1 except that the gas discharge member 32 in which the gas discharge pores had the pore diameters (mode diameter) of 0.8 μm and the pore diameter distribution (D90−D10)/D50 was 2.268 was used as the gas discharge member 32 of the gas discharge unit 30.
Example 4
(28) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 1 except that the gas discharge member 32 in which the gas discharge pores had the pore diameters (mode diameter) of 0.4 μm and the pore diameter distribution (D90−D10)/D50 was 1.553 was used as the gas discharge member 32 of the gas discharge unit 30.
Example 5
(29) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 1 except that the gas discharge member 32 in which the gas discharge pores had the pore diameters (mode diameter) of 0.05 μm and the pore diameter distribution (D90−D10)/D50 was 1.206 was used as the gas discharge member 32 of the gas discharge unit 30.
Example 6
(30) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 1 except that the gas discharge member 32 in which the gas discharge pores had the pore diameters (mode diameter) of 0.005 μm and the pore diameter distribution (D90−D10)/D50 was 1.025 was used as the gas discharge member 32 of the gas discharge unit 30.
Example 7
(31) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 4 except that the pump flow rate was adjusted such that the flow velocity in the flow channel FC of the gas discharge unit 30 was 1 [m/sec].
Example 8
(32) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 4 except that the pump flow rate was adjusted such that the flow velocity in the flow channel FC of the gas discharge unit 30 was 3 [m/sec].
Example 9
(33) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 4 except that the pump flow rate was adjusted such that the flow velocity in the flow channel FC of the gas discharge unit 30 was 5 [m/sec].
Example 10
(34) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 4 except that the pump flow rate was adjusted such that the flow velocity in the flow channel FC of the gas discharge unit 30 was 10 [m/sec].
Example 11
(35) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 1 except that the gas discharge member 32 in which the gas discharge pores had the pore diameters (mode diameter) of 1.5 μm and the pore diameter distribution (D90−D10)/D50 was 8.474 was used as the gas discharge member 32 of the gas discharge unit 30.
Example 12
(36) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 2 except that the gas discharge member 32 in which the gas discharge pores had the pore diameters (mode diameter) of 1 μm and the pore diameter distribution (D90−D10)/D50 was 9.611 was used as the gas discharge member 32 of the gas discharge unit 30.
Example 13
(37) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 3 except that the gas discharge member 32 in which the gas discharge pores had the pore diameters (mode diameter) of 0.8 μm and the pore diameter distribution (D90−D10)/D50 was 4.893 was used as the gas discharge member 32 of the gas discharge unit 30.
Example 14
(38) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 4 except that the gas discharge member 32 in which the gas discharge pores had the pore diameters (mode diameter) of 0.4 μm and the pore diameter distribution (D90−D10)/D50 was 7.474 was used as the gas discharge member 32 of the gas discharge unit 30.
Example 15
(39) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 5 except that the gas discharge member 32 in which the gas discharge pores had the pore diameters (mode diameter) of 0.05 μm and the pore diameter distribution (D90−D10)/D50 was 3.980 was used as the gas discharge member 32 of the gas discharge unit 30.
Example 16
(40) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 7 except that the gas discharge member 32 in which the gas discharge pores had the pore diameters (mode diameter) of 0.4 μm and the pore diameter distribution (D90−D10)/D50 was 7.474 was used as the gas discharge member 32 of the gas discharge unit 30.
Example 17
(41) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 8 except that the gas discharge member 32 in which the gas discharge pores had the pore diameters (mode diameter) of 0.4 μm and the pore diameter distribution (D90−D10)/D50 was 7.474 was used as the gas discharge member 32 of the gas discharge unit 30.
Example 18
(42) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 9 except that the gas discharge member 32 in which the gas discharge pores had the pore diameters (mode diameter) of 0.4 μm and the pore diameter distribution (D90−D10)/D50 was 7.474 was used as the gas discharge member 32 of the gas discharge unit 30.
Example 19
(43) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 10 except that the gas discharge member 32 in which the gas discharge pores had the pore diameters (mode diameter) of 0.4 μm and the pore diameter distribution (D90−D10)/D50 was 7.474 was used as the gas discharge member 32 of the gas discharge unit 30.
Comparative Example 1
(44) As indicated in Table 1, as the gas discharge member 32 of the gas discharge unit 30, the gas discharge member 32 in which the gas discharge pores had the pore diameters (mode diameter) of 2 μm, and the pore diameter distribution (D90−D10)/D50 was 2.734, was used. Pure water was introduced into the storage tank 10, and the pump flow rate was adjusted such that the flow velocity in the flow channel FC of the gas discharge unit 30 was 5 [m/sec]. In this state, the liquid feeding pump 23 was operated to generate fine bubbles of air in the pure water.
Comparative Example 2
(45) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in comparative example 1 except that the gas discharge member 32 in which the gas discharge pores had the pore diameters (mode diameter) of 2.5 μm and the pore diameter distribution (D90−D10)/D50 was 2.649 was used as the gas discharge member 32 of the gas discharge unit 30.
Comparative Example 3
(46) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in comparative example 1 except that the gas discharge member 32 in which the gas discharge pores had the pore diameters (mode diameter) of 5 μm and the pore diameter distribution (D90−D10)/D50 was 2.981 was used as the gas discharge member 32 of the gas discharge unit 30.
Comparative Example 4
(47) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 4 except that the pump flow rate was adjusted such that the flow velocity in the flow channel FC of the gas discharge unit 30 was 0.8 [m/sec].
Comparative Example 5
(48) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 4 except that the pump flow rate was adjusted such that the flow velocity in the flow channel FC of the gas discharge unit 30 was 0.5 [m/sec].
Comparative Example 6
(49) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 4 except that the pump flow rate was adjusted such that the flow velocity in the flow channel FC of the gas discharge unit 30 was 0.3 [m/sec].
Comparative Example 7
(50) As indicated in Table 1, fine bubbles of air were generated in pure water in the same manner as in example 4 except that the pump flow rate was adjusted such that the flow velocity in the flow channel FC of the gas discharge unit 30 was 0.1 [m/sec].
(51) The water generated according to examples 1 to 19 and comparative examples 1 to 7 described above was left as it was for 15 minutes, and was thereafter stirred slightly by a stirring rod. The mode diameter, D90, D50, and D10, and the number of bubbles contained in the generated water in each example were measured five times by using a nanoparticle analyzing system (NanoSight LM10 manufactured by Malvern), and the average values are indicated in Table 1.
(52) TABLE-US-00001 TABLE 1 Gas discharge pore Generated bubble Pore diameter Liquid Bubble diameter Pore diameter distribution flow Bubble diameter distribution The number of (mode diameter) (D90-D10)/D50 velocity (mode diameter) (D90-D10)/D50 bubbles [mμ] [—] [m/s] [nm] [—] [bubbles/ml] Example 1 1.5 2.898 2.0 121.3 1.973 140000000(1.4 × 10.sup.8) Example 2 1 2.591 2.0 145.9 1.425 190000000(1.9 × 10.sup.8) Example 3 0.8 2.268 2.0 108.6 1.355 340000000(3.4 × 10.sup.8) Example 4 0.4 1.553 2.0 102.0 1.095 840000000(8.4 × 10.sup.8) Example 5 0.05 1.206 2.0 98.9 0.825 690000000(6.9 × 10.sup.8) Example 6 0.005 1.025 2.0 95.8 0.748 540000000(5.4 × 10.sup.8) Example 7 0.4 1.553 1.0 105.3 0.928 610000000(6.1 × 10.sup.8) Example 8 0.4 1.553 3.0 100.6 1.085 720000000(7.2 × 10.sup.8) Example 9 0.4 1.553 5.0 112.3 0.968 790000000(7.9 × 10.sup.8) Example 10 0.4 1.553 10.0 98.4 0.882 930000000(9.3 × 10.sup.8) Example 11 1.5 8.474 2.0 162.9 6.283 790000(7.9 × 10.sup.5) Example 12 1 9.611 2.0 168.8 6.201 1000000(1.0 × 10.sup.6) Example 13 0.8 4.893 2.0 117.0 3.101 1100000(1.1 × 10.sup.5) Example 14 0.4 7.474 2.0 120.8 5.541 2600000(2.6 × 10.sup.6) Example 15 0.05 3.980 2.0 128.9 3.031 2100000(2.1 × 10.sup.6) Example 16 0.4 7.474 1.0 119.2 5.281 350000(3.5 × 10.sup.5) Example 17 0.4 7.474 3.0 149.4 9.857 2100000(2.1 × 10.sup.6) Example 18 0.4 7.474 5.0 113.1 11.777 18000000(1.8 × 10.sup.7) Example 19 0.4 7.474 10.0 102.9 13.408 230000000(2.3 × 10.sup.8) Comp. Ex. 1 2 2.734 5.0 178.6 2.269 20000(2.0 × 10.sup.4) Comp. Ex. 2 2.5 2.649 5.0 159.3 2.925 5200(5.2 × 10.sup.3) Comp. Ex. 3 5 2.981 5.0 183.2 3.866 840(8.4 × 10.sup.2) Comp. Ex. 4 0.4 1.553 0.8 93.6 1.036 24000(2.4 × 10.sup.4) Comp. Ex. 5 0.4 1.553 0.5 95.4 1.165 5400(5.4 × 10.sup.3) Comp. Ex. 6 0.4 1.553 0.3 102.6 1.957 340(3.4 × 10.sup.2) Comp. Ex. 7 0.4 1.553 0.1 178.9 3.254 150(1.5 × 10.sup.2)
(53) According to Table 1, it was confirmed that, in the water generated according to examples 1 to 10 configured such that the gas discharge member 32 in which the gas discharge pores had pore diameters (mode diameter) of 1.5 μm or less and variation in the pore diameter distribution was small ((D90−D10)/D50≤3), was used and the pump flow rate was adjusted such that the flow velocity in the flow channel FC of the gas discharge unit 30 was not less than 1 [m/sec], a large number of fine bubbles in which the bubble diameters (mode diameter) were around 100 nm and variation in bubble diameter distribution was small ((D90−D10)/D50≤3) were generated at the order of 10.sup.8 bubbles.
(54) In examples 11 to 19 configured such that the gas discharge member 32 in which the gas discharge pores had pore diameters (mode diameter) of 1.5 μm or less but variation in the pore diameter distribution was great ((D90−D10)/D50>3), was used and the pump flow rate was adjusted such that the flow velocity in the flow channel FC of the gas discharge unit 30 was not less than 1 [m/sec], it was indicated that fine bubbles, in which the bubble diameters (mode diameter) were about 100 nm to about 170 nm and variation in the bubble diameter distribution was great ((D90−D10)/D50>3), were generated at the order of 10.sup.5 to 10.sup.8 bubbles, the generated fine bubbles had a wide range of bubble diameters (mode diameter), variation in bubble diameter distribution was great, and the number of generated fine bubbles was small, as compared with examples 1 to 10.
(55) Meanwhile, in comparative examples 1 to 3 using the gas discharge member 32 in which the gas discharge pores had pore diameters (mode diameter) exceeding 1.5 μm, it was confirmed that, even when the flow velocity in the flow channel FC of the gas discharge unit 30 was 5 [m/sec] that was much greater than 1 [m/sec], the generated fine bubbles had relatively large bubble diameters (mode diameter) of about 160 nm to about 180 nm, and the fine bubbles were generated at the order of 10.sup.2 to 10.sup.4 bubbles and the number of generated fine bubbles was extremely small.
(56) In comparative examples 4 to 7 in which, although the gas discharge pores had the pore diameters (mode diameter) of 0.4 μm that was much less than 1.5 μm, the flow velocity in the flow channel FC of the gas discharge unit 30 was less than 1 [m/sec], it was confirmed that the generated fine bubbles had a wide range of bubble diameters (mode diameter) of about 90 nm to about 180 nm, and the fine bubbles were generated at the order of 10.sup.2 to 10.sup.4 bubbles and the number of the generated fine bubbles was extremely small.
(57) According to the above-described results, in order to generate fine bubbles having bubble diameters (mode diameter) of about 100 nm to about 170 nm at the order of 10.sup.5 bubbles or more, the gas discharge member 32 in which the gas discharge pores have pore diameters (mode diameter) of 1.5 μm or less needs to be used, and the flow velocity in the flow channel FC of the gas discharge unit 30 needs to be adjusted so as to be not less than 1 [m/sec]. Furthermore, in order to generate a large number of fine bubbles in which the bubble diameters (mode diameter) are around 100 nm and variation in bubble diameter distribution is small ((D90-D10)/D50≤3), at the order of 10.sup.8 bubbles, the pore diameter distribution (D90−D10)/D50 of the gas discharge pores of the gas discharge member 32 to be used needs to be reduced to be not greater than 3.
(58) In the above-described embodiment, the spiral flow channel FC is disposed on the gas discharge surface in order to move liquid along the gas discharge surface (lower surface) of the gas discharge member 32. However, the present invention is not limited thereto. For example, as shown in
(59) In the above-described embodiment, the disk-shaped gas discharge member 32 is used. However, the present invention is not limited thereto. For example, as shown in
(60) In the embodiments described above, the flow channel forming member 31, 31A, 31B is attached to the lower surface of the disk-shaped gas discharge member 32 or the outer circumferential surface of the cylindrical gas discharge member 32A to form the flow channel FC for liquid, or the hollow portion of the cylindrical gas discharge member 32B is used as the flow channel for liquid. However, the present invention is not limited thereto. For example, as shown in
(61) In each embodiment described above, the gas discharge unit 30 is disposed on the suctioning side of the liquid feeding pump 23. However, the present invention is not limited thereto. For example, as in a fine bubble generating apparatus 2 shown in
(62) In each embodiment described above, liquid in the storage tank 10 is fed to the storage tank 40 through the flow channel FC of the gas discharge unit 30. However, the present invention is not limited thereto. For example, as in a fine bubble generating apparatus 3 shown in
INDUSTRIAL APPLICABILITY
(63) The fine bubble generating method and the fine bubble generating apparatus according to the present invention can efficiently generate nano-order fine bubbles of various gases in various liquids, and can thus be used in various fields such as treatment of wastes from plants, cleaning, sterilization, disinfection, maintenance of freshness of perishable products, aquaculture, and the like, by selecting the liquid and the gas to be contained as fine bubbles in the liquid as appropriate.
DESCRIPTION OF THE REFERENCE CHARACTERS
(64) 1, 2, 3 fine bubble generating apparatus 10, 40 storage tank 20 liquid feeding unit (relative movement unit) 21, 22 liquid feeding pipe 23 liquid feeding pump 24 valve 30 gas discharge unit 31 base member (flow channel forming member) 31A, 31B flow channel forming member 31a recessed bottom surface 31b groove 31c screw hole 31d piping joint 31e flow channel 32, 32A, 32B, 32C, 32D gas discharge member 33 packing 34 cap 34a screw hole 35, 36 piping joint 37 cylindrical body 38 gas supply pipe 39 gas supply pump FC flow channel GR gas supply chamber