IP Library Granted Patent US 10,400,915
Granted Patent B2
US 10,400,915 · App. 15/488,119 · Granted Sep 3, 2019

Magnetically controlled valve and pump devices and methods of using the same

Inventors: Pulak Nath (Los Alamos, NM); Jen-Huang Huang (Los Alamos, NM)
Assignee: Triad National Security, LLC
F16K99/0046B01L3/00F04C2/14F04C15/064F04C18/14F04C29/124F04D15/0005F04D27/003F04D27/005F04C2/18F04C14/24F16K2099/0094
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Quick Facts
Patent No.
US 10,400,915
App. No.
15/488,119
Granted
Sep 3, 2019
Kind
B2
Abstract

Disclosed herein are embodiments of magnetically controlled valve and pump systems that can be used to control and facilitate fluid flow in fluidic devices. Various types of magnetically controlled valves and pumps are described as well as methods of magnetically-controlling such valves and pumps.

Claims (26)

1. A pump device, comprising:

a magnet substrate comprising a well configured to house an actuating magnet and comprising a first surface and a second surface, wherein the actuating magnet is a permanent magnet;

a flexible membrane component comprising a first surface and a second surface, wherein the first surface of the flexible membrane component is positioned adjacent to the first surface of the magnet substrate;

a well-containing substrate with a first surface and a second surface wherein the first surface of the well-containing substrate is coupled to the second surface of the flexible membrane component, the well-containing substrate comprising a well aligned with the well of the magnet substrate; and

a driver magnet component positioned adjacent to the magnet substrate, wherein the driver magnet component comprises a plurality of driver permanent magnets configured in a linear or circular array designed to selectively actuate the actuating magnet.

2. The pump device of claim 1 , wherein the well-containing substrate further comprises a fluidic channel fluidly coupled to the well and an inlet and outlet fluidly coupled to the fluidic channel and the well.

3. The pump device of claim 2 , further comprising one or more spacer substrates positioned adjacent to the second surface of the well-containing substrate, a driver component positioned adjacent to the well-containing substrate, and/or a driver component positioned adjacent to the one or more spacer substrates.

4. A valve device, comprising:

a magnet substrate comprising a well configured to house an actuating magnet and comprising a first surface and a second surface, wherein the actuating magnet is a permanent magnet;

a barrier layer comprising a first surface and a second surface wherein the first surface of the barrier layer is positioned adjacent to the first surface of the magnet substrate;

a fluid channel substrate with a first surface and a second surface wherein the first surface of the fluid channel substrate is coupled to the second surface of the barrier layer, the fluid channel substrate comprising a discontinuous fluidic channel comprising an elevation configured block fluid flow through the discontinuous fluid channel; and

a driver magnet component positioned adjacent to the magnet substrate, wherein the driver magnet component comprises a plurality of driver permanent magnets configured in a linear or circular array designed to selectively actuate the actuating magnet.

5. The valve device of claim 4 , wherein the valve device comprises a plurality of actuating magnets housed in a plurality of wells fabricated in the magnet substrate, wherein each actuating magnet of the plurality is a permanent magnet.

6. The valve device of claim 5 , wherein the plurality of wells are configured in a linear or circular array.

7. The valve device of claim 4 , further comprising one or more spacer substrates coupled to the second surface of the fluid channel substrate or coupled to the second surface of the magnet substrate.

8. The valve device of claim 4 , wherein the fluidic channel is a discontinuous fluidic channel.

9. The valve device of claim 8 , wherein the discontinuous fluidic channel comprises an elevation configured to block fluid flow through the fluidic channel.

10. The valve device of claim 4 , wherein the valve device comprises a plurality of magnet substrates wherein each magnet substrate comprises a valve actuating magnet, wherein the valve actuating magnet is a permanent magnet.

11. The device of claim 4 , wherein the fluidic channel of the fluid channel substrate is fluidly coupled to a fluid reservoir formed in the fluid channel substrate.

12. The device of claim 4 , wherein the fluid channel substrate comprises a plurality of fluidic channels that are fluidly coupled to one or more fluid reservoirs.

13. An integrated pump and valve device, comprising:

a pump component, comprising (i) a pump magnet substrate comprising a plurality of wells that each house a pump actuating magnet, wherein each pump actuating magnet is a permanent magnet, and comprising a first surface and a second surface; (ii) a flexible membrane component comprising a first surface and a second surface, wherein the first surface of the flexible membrane component is positioned adjacent to the first surface of the pump magnet substrate; (iii) a pump fluid channel substrate comprising a first surface and a second surface, wherein the first surface of the pump fluid channel substrate is coupled to the second surface of the flexible membrane component, and wherein the pump fluid channel substrate comprising a fluidic channel and an outlet;

a valve component, comprising (i) a valve actuating magnet, wherein the valve actuating magnet is a permanent magnet; (ii) a valve magnet substrate comprising a well configured to house the valve actuating magnet and comprising a first surface and a second surface; and (iii) a valve fluid channel substrate with a first surface and a second surface wherein the first surface of the valve fluid channel substrate is coupled directly or indirectly to the first surface of the valve magnet substrate, wherein the valve fluid channel substrate comprises a fluidic channel, a well fluidly coupled to the fluidic channel, or a combination thereof, wherein the valve fluid channel substrate further comprises an inlet; and

a first driver magnet component positioned adjacent to the pump component, wherein the first driver magnet component comprises a plurality of driver permanent magnets configured in a linear or circular array designed to selectively actuate each pump actuating magnet; and

a second driver magnet component positioned adjacent to the valve component, wherein the second driver magnet component comprises a plurality of driver permanent magnet configured in a linear or circular array designed to selectively actuate the valve actuating magnet of the valve component; wherein the pump component is fluidly coupled to the valve component such that the outlet of the fluid channel substrate of the pump component is aligned with the inlet of the fluid channel substrate of the valve component.

14. A method of magnetically controlling fluid flow through a fluidic channel, comprising using a driver magnet or a driver magnet component comprising a plurality of driver magnets to magnetically attract or magnetically repel the valve actuating magnet and/or the pump actuating magnet of the device of claim 13 , wherein each driver magnet is a permanent magnet.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 6, 2018
From: LOS ALAMOS NATIONAL SECURITY, LLC
To: TRIAD NATIONAL SECURITY, LLC
Reel/Frame 047438/0511 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 9, 2017
From: NATH, PULAK; HUANG, JEN-HUANG
To: LOS ALAMOS NATIONAL SECURITY, LLC
Reel/Frame 043246/0487 →
CONFIRMATORY LICENSE Recorded Jun 28, 2017
From: LOS ALAMOS NATIONAL SECURITY
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 042845/0670 →
Continuity (2)
Provisional Application 62322622 · Apr 14, 2016
Related Publication 20170298966A1 · Oct 19, 2017