IP Library Patent Application 18623069
Patent Application
App. No. 18/623,069

LIGHTWEIGHT NANOBUBBLE GENERATOR

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Quick Facts
Patent No.
US None
App. No.
18/623,069
Abstract

The present invention relates to provides a lightweight, free-standing, non-electricity driven nanobubble generating device, which can be applied to water faucets with municipal water supplies. In comparison to the common electricity-driven nanobubble generators, the nanobubble generating device of the present invention utilizes the Venturi effect for gas introduction and bubble formation, and no water pumps are needed for operation, therefore compactness is achieved. The device of the present invention is also directly applicable to water faucets of municipal water supply, enabling facile nanobubble generation for a wide variety of applications.

Claims (26)

1 . A lightweight, free-standing, non-electricity driven and municipal water supply-applicable nanobubble generating device, comprising:

a liquid inlet;

a liquid outlet;

a frustoconical-shaped inlet passage, wherein the wider part of the frustoconical shape is connected to the liquid inlet;

multiple stacks of porous layers connected to the liquid outlet, wherein the number of stacks of porous layers is at least 2;

an inverted frustoconical-shaped outlet passage, wherein the wider part of the frustoconical shape is connected to the multiple stacks of porous layers;

a tubular flow-constricting tunnel interconnecting the narrower part of the frustoconical-shaped inlet passage and the narrower part of the inverted frustoconical-shaped outlet passage, and

a gas inlet externally connected to a gas supply, wherein the gas inlet is perpendicularly connected to the tubular flow-constricting tunnel;

wherein the liquid inlet further comprises a filtering mesh of 300 to 350 mesh;

wherein the gas inlet further comprises a non-return valve;

wherein the concentration of the nanobubble generated is at least 1×10 7 particles/mL under a liquid flow into the device through the inlet with liquid pressure of at least 2 bar and flow rate of at least 24 litres per minute.

2 . The lightweight, free-standing, non-electricity driven and municipal water supply-applicable nanobubble generating device of claim 1 , wherein the ratio of the cross-sectional diameter of the wider part of the frustoconical-shaped inlet passage to the cross-sectional diameter of the tubular flow-constricting tunnel is 1:1.5 to 1:2.

3 . The lightweight, free-standing, non-electricity driven and municipal water supply-applicable nanobubble generating device of claim 1 , wherein the ratio of the length of the liquid inlet to the length of the liquid outlet is 1:4 to 1:5.

4 . The lightweight, free-standing, non-electricity driven and municipal water supply-applicable nanobubble generating device of claim 1 , wherein the ratio of the cross-sectional diameter of the tubular flow-constricting tunnel to the cross-sectional diameter of the wider parts of the frustoconical-shaped inlet passage is 1:3.5 to 1:4.5.

5 . The lightweight, free-standing, non-electricity driven and municipal water supply-applicable nanobubble generating device of claim 1 , wherein the ratio of the cross-sectional diameter of the tubular flow-constricting tunnel to the cross-sectional diameter of the wider part of the inverted frustoconical-shaped outlet passage is 1:5 to 1:6.

6 . The lightweight, free-standing, non-electricity driven and municipal water supply-applicable nanobubble generating device of claim 1 , wherein the multiple stacks of porous layers each further comprises at least 2 overlapping rimless coarse membranes with pore size of 70-90 μm.

7 . The lightweight, free-standing, non-electricity driven and municipal water supply-applicable nanobubble generating device of claim 1 , wherein each stack of the multiple stacks of porous layers has a total thickness of 0.45-0.90 mm.

8 . The lightweight, free-standing, non-electricity driven and municipal water supply-applicable nanobubble generating device of claim 1 , wherein the gap between each stack of the multiple stacks of porous layers is 2.25-2.75 mm.

9 . A method of generating nanobubbles directly from a water source with the lightweight, free-standing, non-electricity driven and municipal water supply-applicable nanobubble generating device of claim 1 , comprising:

aligning the device to a water supply;

connecting an external gas supply to the gas inlet of the device to allow gas supply into the device through the gas inlet,

switch on the water supply and control the water flow into the device through the inlet to have a liquid pressure of at least 2 bar and flow rate of at least 24 litres per minute; and

receiving the nanobubble flow through the outlet of the device;

wherein the concentration of nanobubbles in the nanobubble flow generated is at least 1×10 7 particles/ml.

10 . The method of generating nanobubbles of claim 9 , wherein the external gas supply is selected from ambient air, oxygen concentrator, ozone generator or gas cylinder.

11 . The method of generating nanobubbles of claim 9 , wherein the nanobubble flow is generated without the use of electrical power supply.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 17, 2026
From: NANO AND ADVANCED MATERIALS INSTITUTE LIMITED
To: HONG KONG APPLIED SCIENCE AND TECHNOLOGY RESEARCH INSTITUTE COMPANY LIMITED
Reel/Frame 075402/0632 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 9, 2024
From: CHENG, YEE HAU; LIN, KOON YEE; POON, SUM HANG GRACE
To: NANO AND ADVANCED MATERIALS INSTITUTE LIMITED
Reel/Frame 067039/0846 →