IP Library Granted Patent US 8,991,796
Granted Patent B2
US 8,991,796 · App. 13/381,220 · Granted Mar 31, 2015

Micro-bubble generator and micro-bubble generation device

Inventor: Yoko Hato (Imabari, JP)
Assignee: Yoshinori Nakamoto
A01K63/042B01F3/0451B01F5/0068B01F2003/04858
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Quick Facts
Patent No.
US 8,991,796
App. No.
13/381,220
Granted
Mar 31, 2015
Kind
B2
Abstract

An object is to provide a micro-bubble generator, etc., capable of efficiently generating bubbles having a particle size of a nanometer order. One aspect of the present invention is a micro-bubble generator provided with a swirl chamber, a fluid introduction opening connected to the swirl chamber, the fluid introduction opening for introducing fluid along a line tangent to an inner surface of the swirl chamber, and a discharge tube for guiding the fluid in the direction substantially perpendicular to the direction in which the fluid is introduced. The discharge tube penetrates a wall surface of the swirl chamber and protrudes to an interior of the swirl chamber. According to the present configuration, by isolating a path of the introduced fluid, a loss of kinetic energy of a swirl flow of the fluid can be reduced. Thus, the micro-bubble generator capable of reducing the size of the generated micro-bubbles can be obtained.

Claims (26)

1. A micro-bubble generation device, comprising:

a micro-bubble generator provided with a cylindrical gas-liquid swirl chamber having a space in which a gas-liquid mixture fluid is capable of swirling, a gas-liquid introduction cylinder including a gas-liquid introduction opening for introducing the gas-liquid mixture fluid along a line tangent to an inner surface of the gas-liquid swirl chamber, a gas-liquid introduction cylinder including a gas-liquid introduction opening for introducing the gas-liquid mixture fluid along a line tangent to an inner surface of the gas-liquid swirl chamber, a first wall surface orthogonal to a surface in which the gas-liquid introduction opening is arranged, a second wall surface facing the first wall surface, the second wall surface being positioned close to the gas-liquid introduction opening, and a gas-liquid discharge opening positioned on a central axis line of the cylindrical gas-liquid swirl chamber, the gas-liquid discharge opening penetrating the second wall surface and reaching to a position close to the first wall surface;

a pump for supplying the fluid to the micro-bubble generator;

a suction piping connected to a suction opening of the pump;

a discharge piping connected to a discharge opening of the pump and connected to the gas-liquid introduction opening;

a cylindrical casing forming a gas-liquid mixture fluid storage tank accommodating the micro-bubble generator and storing micro-bubble containing fluid discharged from the micro-bubble generator;

a semi-spherical third wall surface forming an upper part of the gas-liquid mixture fluid storage tank;

a storage tank discharge opening positioned in an upper part of a central axis line of the gas-liquid mixture fluid storage tank, the storage tank discharge opening penetrating the third wall surface;

a semi-spherical fourth wall surface forming a lower part of the gas-liquid mixture fluid storage tank;

a drainage opening positioned in a lower part of the central axis line of the gas-liquid mixture fluid storage tank, the drainage opening penetrating the fourth wall surface;

a storage tank discharge pipe connected to the storage tank discharge opening; and

a drainage pipe connected to the drainage opening.

2. A micro-bubble generation device, comprising:

a micro-bubble generator provided with a cylindrical gas-liquid swirl chamber having a space in which a gas-liquid mixture fluid is capable of swirling, a gas-liquid introduction cylinder including a gas-liquid introduction opening for introducing the gas-liquid mixture fluid along a line tangent to an inner surface of the gas-liquid swirl chamber, a first wall surface orthogonal to a surface in which the gas-liquid introduction opening is arranged, a second wall surface facing the first wall surface, the second wall surface being positioned close to the gas-liquid introduction opening, and a tubular gas-liquid discharge opening positioned on a central axis line of the cylindrical gas-liquid swirl chamber, the gas-liquid discharge opening penetrating the second wall surface and reaching to a position close to the first wall surface;

a pump for supplying the fluid to the micro-bubble generator;

a suction piping connected to a suction opening of the pump;

a discharge piping connected to a discharge opening of the pump and connected to the gas-liquid introduction opening;

a gas-liquid ejection opening positioned on a negative pressure axis formed by a swirl flow of micro-bubble containing fluid discharged from the micro-bubble generator;

a cylindrical casing forming a gas-liquid mixture fluid storage tank accommodating the micro-bubble generator and storing the micro-bubble containing fluid ejected from the gas-liquid ejection opening;

a semi-spherical third wall surface forming an upper part of the gas-liquid mixture fluid storage tank;

a storage tank discharge opening positioned in an upper part of a central axis line of the gas-liquid mixture fluid storage tank, the storage tank discharge opening penetrating the third wall surface;

a semi-spherical fourth wall surface forming a lower part of the gas-liquid mixture fluid storage tank;

a drainage opening positioned in a lower part of the central axis line of the gas-liquid mixture fluid storage tank, the drainage opening penetrating the fourth wall surface;

a storage tank discharge pipe connected to the storage tank discharge opening; and

a drainage pipe connected to the drainage opening, wherein

the gas-liquid mixture fluid introduced from the gas-liquid introduction opening circulates around a circumference of the gas-liquid discharge opening, then turns backward at the first wall surface, flows in from an opened one end of the gas-liquid discharge opening, and flows from the one end of the gas-liquid discharge opening to the other end.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 18, 2012
From: HATO, YOKO
To: NAKAMOTO, YOSHINORI
Reel/Frame 027551/0044 →
Priority Claims (1)
JP 2009-243930 · Oct 22, 2009 · national
Continuity (1)
Related Publication 20120126436A1 · May 24, 2012