Micro bi-Directional Valves and Systems
20230112564 · 2023-04-13
Inventors
Cpc classification
F04B19/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M16/208
HUMAN NECESSITIES
F04B23/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K99/0055
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K99/0011
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K2099/0086
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K99/0028
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K2099/0094
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
A61M16/00
HUMAN NECESSITIES
A61M16/20
HUMAN NECESSITIES
F04B19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B23/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Disclosed is a bi-directional exhalation valve useful for many applications such as in CPAP devices. The exhalation valve includes a valve body having a center chamber, side chambers, and bidirectional ports coupled to the center chamber via passages and a mechanism that provides fluid ingress into the bi-directional valve in a first mode of operation or fluid egress from the bi-directional valve in a second mode of operation. Unidirectional ports are coupled to the plurality of bidirectional ports to provide providing fluid egress from the valve in the second mode of operation, and a unidirectional port provides fluid ingress into the bi-directional valve in the first mode of operation. A mechanism including a center paddle, side paddles, and a shaft are arranged in an elongated compartment of the valve body, such that the shaft is pivots and the central and side paddles open and close corresponding ones of the input and output ports.
Claims
1. A valve comprises: a valve body having a center chamber, a plurality of side chambers, and an elongated compartment and a plurality of bidirectional ports coupled to the center chamber via a set of passages to provide fluid ingress into the bi-directional valve in a first mode of operation or fluid egress from the bi-directional valve in a second mode of operation, and a plurality of unidirectional ports coupled to the plurality of bidirectional ports to provide providing fluid egress from the valve in the second mode of operation, and a single unidirectional port to provide fluid ingress into the bi-directional valve in the first mode of operation; and a mechanism comprising a center paddle and a plurality of side paddles, and a shaft supporting the center paddle and the plurality of side paddles along the length of the shaft, the shaft disposed in the elongated compartment of the valve body and allowed to pivot to cause the center paddle and the plurality of side paddles to open and close the input and output ports according the first and second modes.
2. The valve of claim 1 wherein the plurality of unidirectional ports are outlet ports and are coupled to the bidirectional ports by a pair of portions of the body.
3. The valve of claim 1 wherein the single port is an inlet port.
4. The valve of claim 1 wherein the plurality of unidirectional ports are outlet ports and the single port is an inlet port and the inlet port is orthogonal to the outlet ports.
5. The valve of claim 1 wherein the plurality of unidirectional ports are outlet ports, the single port is an inlet port, and the mechanism opens the inlet port and closes unidirectional ports in the first mode of operation.
6. The valve of claim 1 wherein the plurality of unidirectional ports are outlet ports, the single port is an inlet port, and the mechanism closes the inlet port and opens the unidirectional ports in the second mode of operation.
7. The valve of claim 1 wherein the plurality of unidirectional ports are outlet ports, the single port is an inlet port, and the mechanism opens the inlet port and closes unidirectional ports in the first mode of operation and allows fluid from the inlet port to egress from the bidirectional ports.
8. The valve of claim 1 wherein the plurality of unidirectional ports are outlet ports, the single port is an inlet port, and the mechanism closes the inlet port and opens the unidirectional ports in the second mode of operation and allows fluid from the bidirectional port to egress from the unidirectional ports.
9. The valve of claim 1 wherein the center paddle are orthogonal to the plurality of side paddles on the shaft.
10. The valve of claim 1 further comprising: a shaft seal member to hold the shaft in the elongated compartment in the valve body.
11. An airway pressure breathing device comprises: an airway pressure breathing device body having at least one air passage to receive air and at least one passage to expel air; and a bi-directional exhalation valve, the bi-directional valve coupled to the at least one air passage to receive air and the at least one air passage to expel air, the bi-directional exhalation valve comprising: a valve body having a center chamber, a plurality of side chambers, and an elongated compartment and a plurality of bidirectional ports coupled to the center chamber via a set of passages to provide fluid ingress into the bi-directional valve in a first mode of operation or fluid egress from the bi-directional valve in a second mode of operation, and a plurality of unidirectional ports coupled to the plurality of bidirectional ports to provide providing fluid egress from the valve in the second mode of operation, and a single unidirectional port to provide fluid ingress into the bi-directional valve in the first mode of operation; and a mechanism comprising a center paddle and a plurality of side paddles, and a shaft supporting the center paddle and the plurality of side paddles along the length of the shaft, the shaft disposed in the elongated compartment of the valve body and allowed to pivot to cause the center paddle and the plurality of side paddles to open and close the input and output ports according the first and second modes.
12. The airway pressure breathing device of claim 11 wherein the airway pressure breathing device body has the at least one air passage to receive air coupled to a source of air and the plurality of bidirectional ports of bi-directional exhalation valve, and the at least one passage to expel air coupled to the plurality of unidirectional ports of the bi-directional exhalation valve.
13. The airway pressure breathing device of claim 12 wherein the source of air is a micro pump supported by the airway pressure breathing device body.
14. The airway pressure breathing device of claim 11 further comprising: a micro pump supported by the body, the micro pump configured to pump ambient air through the air passages and the bi-directional exhalation valve.
15. The airway pressure breathing device of claim 11 wherein the airway pressure breathing device body is a mask that is configured to be secured over a user's head or against a user's nostrils.
16. The airway pressure breathing device of claim 15 wherein the bi-directional exhalation valve is supported in the mask.
17. The airway pressure breathing device of claim 15 wherein the mask is configured to receive a hose.
Description
DESCRIPTION OF DRAWINGS
[0010]
[0011]
[0012]
[0013]
DETAILED DESCRIPTION
Overview
[0014] As disclosed in the above co-pending incorporated by reference patent applications micro pumps can be made using micro fabrication methods and can be used for performing micro pumping processes that are widely implemented in industrial, medical, and biological applications. For example, micro pumps can be incorporated into CPAP devices. The micro pumps can transport fluids, e.g., gas or liquids, in small, accurately measured quantities. In some implementations, the micro pumps can transport the fluids at high flow rates, e.g., about microliters per second to about a few milliliters per second, and/or high pressure, e.g., about thousandths of one psi to about tenths of one psi. The micro pumps can be designed such that the fluid transport, the flow rates, and/or the pressure are scalable.
[0015] Referring now to
[0016] The CPAP device 10 can take a conceptual form as disclosed in the above applications. In this configuration, the CPAP device 10 includes a body 12 that houses micro pumps 16 here plural component-pump stacked elements generally denoted by a curved line, indicating that the micro pumps are disposed behind an inlet port 15. (See
[0017] Referring now to
[0018] The exhalation valve 20 has inlets 20a, 20b and outlets 21a, 21b. The exhalation valve 20 is coupled between the micro pumps 16 (via the exhalation valve inlets 20a, 20b and inlets 16a, 16b of the micro pump 16) and outlets 18a, 18b of the device 10, (via the exhalation valve ports 21a, 21b), as shown. The inlets 16a, 16b of the micro pump 16 are coupled to inlet port 15 of the CPAP device 10.
[0019] The above mentioned patent applications disclose an exhalation valve of a butterfly configuration having a flap that is disposed inside a passageway of the valve. The flap is rotatable about an axial member to open and close the passageway that is between a pair of ports and an outlet port. The exhalation valve 20 discussed below is an alternative to the exhalation valve in the above applications and will now be described.
[0020] Referring now to
[0021] Referring now to
[0022]
[0023]
[0024] While, the central paddle 51 in this embodiment is generally orthogonal to the side paddles 49a, 49b other configurations of the body 41 could provide other positioning configurations of the paddles on the shaft. Also while two side paddles (and hence two bidirectional ports 45a, 45b and two outlet ports 47a, 47b are shown) more or fewer side paddles may be used. Also while a single inlet port 43 is shown in some configurations plural inlet ports could be used. Configurations with more than two outlet ports and two bi-directional ports and more than one inlet port would necessitate adjustments to the mechanism 55.
[0025] Referring now to
[0026] Referring now to
[0027]
[0028] Passages between the air outlet ports 47a, 47b and the bidirectional ports 45a, 45b are, in general rounded, but other shapes could be used. Passages 63a, 63b can be rounded, oblong, etc. The central passage 61 is somewhat rectangular. However, any shapes could be used for the passages, ports, chambers, etc. and in general all surfaces and interior passages, ports, chambers, etc. are smooth. Dimensions of the various components of the exhalation valve 20 would be selected according to various design considerations, such as the volume of air that will be convected during modes of operation, the size of the CPAP device 10, and available space within the CPAP device 10.
[0029] Thus the bi-directional exhalation valve 20 includes the valve body 41 having the center chamber 61 and a plurality of side chambers (here two) 60a, 60b, and the elongated compartment 57. The plurality of bidirectional ports 45a, 45b (here two) are coupled to the center chamber 61 via the set of passages 63a, 63b to provide fluid ingress into the bi-directional valve 20 in a first mode of operation (inhalation) or fluid egress from the bi-directional valve 20 in a second mode of operation (exhalation). The plurality of unidirectional ports 47a, 47b act as output ports and are coupled to the plurality of bidirectional ports to provide fluid egress from the valve in the exhalation mode of operation, and a single unidirectional port 51 to provide fluid ingress into the bi-directional valve 22 inhalation. The paddle mechanism including the center paddle and the plurality of side paddles, and a shaft supporting the center paddle 51 and the plurality of side paddles 49a, 49b along the length of the shaft 53, the shaft 53 is arranged in the elongated compartment of the valve body, such that the shaft 53 is rotatable within the elongated compartment in the body.
[0030] The bi-directional valve 20 when used as the exhalation valve 20 in the CPAP device may allow a user to more easily overcome pressure caused by incoming air from the micro pump (micro blowers) during exhalation of air from the nose passages. This provides a more comfortable and improved breathing experience with CPAP device 10. When used in an airway pressure breathing device, e.g., the CPAP device 10, the bi-directional exhalation valve 20 is coupled to the at least one air passage to receive air from the CPAP device (e.g., the micro pump in a micro CPAP device or from a conventional CPAP) and the at least one air passage to expel air. The CPAP airway pressure breathing device 10 body has at least one air passage to receive air from a source of air, and which is coupled to the plurality of bidirectional ports of the bi-directional exhalation valve 20. The CPAP device 10 also has at least one passage to expel air that is coupled to the plurality of unidirectional ports of the bi-directional exhalation valve 20. The airway pressure breathing device can have the source of air being a micro pump supported by the airway pressure breathing device body where the micro pump is configured to pump ambient air through the air passages and the bi-directional exhalation valve.
[0031] Not being bound by the foregoing, but in the context of a CPAP device, operation can be approximated as follows: during inhalation, pressure P.sub.b at the bidirectional ports is approximately related to P.sub.b=P.sub.i+P.sub.h (the sum of pressure from the micro pump P.sub.i plus the pressure of inhalation P.sub.h), whereas during exhalation pressure P.sub.b at the bidirectional ports is approximately related to P.sub.b=P.sub.e+P.sub.i (the sum of pressure from exhalation P.sub.e (a negative pressure or vacuum) plus the pressure P.sub.i from the micro pump, a positive pressure). Provided that P.sub.b is positive during inhalation and P.sub.b is negative during exhalation, the valve 20 will operate in a bidirectional manner.
[0032] In other embodiments, the airway pressure breathing device body is a mask that is configured to be secured over a user's head and/or against a user's nostrils, with the mask configured to receive a hose as discussed below in
[0033] Referring now to
[0034] In order to satisfy various design considerations for different types of masks as well as different configurations of CPAP devices 10 the physical form of the exhalation valve may be altered from that shown in the figures.
[0035] Various techniques can be used to produce the exhalation valve 20, including molding the device from suitable (medical grade) plastic materials, 3D printing techniques, and so forth.
[0036] The exhalation valve 20 would generally have dimensions suitable for the application. Thus for example in the CPAP device 10 as envisioned in the incorporated by reference applications the dimensions are on the order of 10's or 100's of millimeters. In some applications of the exhalation valve 20 the valve can be smaller or larger.
[0037] Elements of different implementations described herein may be combined to form other embodiments not specifically set forth above. Elements may be left out of the structures described herein without adversely affecting their operation. Furthermore, various separate elements may be combined into one or more individual elements to perform the functions described herein. Other embodiments are within the scope of the following claims.