Non-return valve

The non-return valve design with damping chambers addresses oscillation-induced wear and breakage by stabilizing the valve position through fluidic channels, enhancing durability.

FR3162494A1Pending Publication Date: 2025-11-28SAFRAN AEROSYST
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Patent Information

Application Number
FR2024005313
Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-05-24
Publication Date
2025-11-28

AI Technical Summary

Technical Problem

Non-return valves experience high amplitude oscillations due to variations in fluid flow rate and pressure, leading to repeated impacts with the guide and potential breakage.

Method used

A non-return valve design featuring a guide tube with variable-volume damping chambers and fluidic channels to dampen oscillations, reducing impacts and wear by allowing fluid exchange to stabilize the valve position.

Benefits of technology

The damping chambers limit valve oscillations, reducing wear and breakage risks, and maintaining valve integrity by absorbing fluid pressure fluctuations.

✦ Generated by Eureka AI based on patent content.

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Abstract

A non-return valve (1) comprising: a body (10) defining a fluid flow channel (CE) (F) and internally delimiting a valve seat (11); and a valve (20) mounted movably in translation within the flow channel between an open position in which the valve is recessed from the valve seat, and a closed position in which the valve is in tight contact with the valve seat, the valve comprising a valve head and a stem (22) which extends axially from the valve head and is slidably mounted in a guide tube (14), characterized in that the guide tube comprises a first and a second end delimiting respectively with the stem a first and a second damping chamber (CH1, CH2) having variable volumes and being in fluidic communication with the flow channel via respectively a first and a second fluidic channel (C1, C2) arranged to dampen any displacement of the valve.SUMMARY FIGURE: Fig.1.
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Description

Title of the invention: Non-return valve

[0001] The present invention relates to valves for circuits through which fluids flow, in particular gaseous fluids, and more particularly concerns non-return or flow control valves.

[0002] BACKGROUND OF THE INVENTION

[0003] In a manner known per se, a non-return valve, also called a "check valve", imposes a direction of flow on the fluids that pass through it and is used to prevent the return of a fluid inside a system.

[0004] A non-return valve generally comprises: • a body defining a fluid flow channel between an inlet port and an outlet port of the body; and • a valve mounted movable in translation in a guide arranged inside the body, between an open position in which the valve allows the flow of fluid, and a closed position in which said valve prevents the flow of fluid and towards which the valve is returned by a spring.

[0005] If the pressure in the system exceeds the spring stiffness, the valve moves from the closed position to the open position until it reaches an operating position and allows fluid to flow. If the pressure in the system then falls below the spring stiffness or if the direction of flow changes, the valve automatically returns to the closed position and prevents fluid from passing through.

[0006] The flow rate and pressure of the fluid are generally not perfectly constant and undergo slight variations resulting, in service, in slight oscillations of the valve around the operating position.

[0007] However, these oscillations can have such high amplitudes that the valve repeatedly strikes its guide and causes the latter to break.

[0008] SUBJECT OF THE INVENTION

[0009] The invention aims to provide a non-return valve that makes it possible to overcome, at least in part, the aforementioned disadvantages. Summary of the invention

[0010] To this end, a non-return valve is proposed comprising: • a body that defines a fluid flow channel between a first end and a second end of the body and that includes an internal surface delimiting a valve seat; and • a valve mounted movable in translation in the flow channel of the body between an open position in which the valve is recessed from the valve seat, and a closed position in which the valve is in tight contact with the valve seat and towards which the valve is returned by an elastic return member.

[0011] The valve comprises a valve head and a stem which extends axially from the valve head and which is slidably mounted in a guide tube connected to the body by delimiting fluid passages.

[0012] According to the invention, the guide tube comprises a first end and, opposite it, a second end, respectively defining with the stem a first damping chamber and a second damping chamber having volumes that vary according to the position of the valve. The first chamber and the second chamber are in fluidic communication with the flow channel via, respectively, a first fluidic channel and a second fluidic channel arranged to dampen any displacement of the valve around an operating position arranged between the closed and open positions.

[0013] The first chamber and the second chamber serve to limit the amplitude of the valve's oscillations around its operating position and thus limit the impacts between the valve and the guide tube. Wear on the stem and the risk of breakage of the guide tube or its connections to the body are thereby reduced.

[0014] According to a particular feature, the valve includes an annular skirt extending axially from the valve head and around the first end of the guide tube to delimit the first chamber.

[0015] In particular, the first end of the guide tube and the skirt form the first fluidic channel.

[0016] According to another particular feature, the second end of the guide tube includes a bottom delimiting the second chamber.

[0017] In particular, the bottom of the guide tube includes a hole forming the second fluidic channel.

[0018] According to another particular feature, the guide tube is connected to the body by fins extending radially from said guide tube.

[0019] According to another particular feature, the body is generally tubular in shape and extends along the axis of translation of the valve.

[0020] According to another particular feature, the valve head includes an external circumference defining an annular groove in which a sealing gasket is received, arranged to ensure a tight contact between the valve head and the valve seat when the valve is in the closed position. Brief description of the drawings

[0021] The invention will be better understood in the light of the following description, which is purely illustrative and not limiting, and should be read in conjunction with the accompanying figures, among which:

[0022] [Fig-1] [Fig.1] is an axial cross-sectional view of a non-return valve according to a a particular embodiment of the invention, in which the valve is in the closed position;

[0023] [Fig.2] [Fig.2] is a view identical to [Fig.1] in which the valve is in open position. DETAILED DESCRIPTION OF THE INVENTION

[0024] With reference to [Fig. 1], a non-return valve 1, according to a particular embodiment of the invention, comprises: • a body 10, generally tubular, which extends along an axis X to define a fluid flow channel CE and which has an internal surface defining a valve seat 11; and • a valve 20 mounted movably axially in the body 10 between an open position in which the valve 20 is recessed from the valve seat 11 ([Fig.2]), and a closed position in which the valve 20 is in tight contact with the valve seat 11 ([Fig.1]) and towards which the valve 20 is returned by a helical spring 30.

[0025] The body 10 has a first end 10.1 defining an inlet or intake port for a fluid and, opposite, a second end 10.2 defining an outlet or exhaust port for the fluid.

[0026] For assembly reasons, the body 10 is here made in two parts, namely a first part 10a and a second part 10b. The first part forms a first section of the body 10 and has a free end corresponding to the first end 10.1 of said body 10. The second part 10b forms a second section of the body 10 and has a free end corresponding to the second end 10.2 of said body 10. The first part 10a and the second part 10b of the body 10 are rigidly connected to each other by screws 12. The first part 10a includes an end face having an annular groove in which an O-ring seal 13 is axially received in tight contact with an end face of the second part 10b of the body. The sealing gasket 13 is axially compressed between a bottom of the groove and the end face of the second part 10.2 to ensure a leak-proof contact between the first part 10.1 and the second part 10.2.

[0027] The valve 1 further includes a guide tube 14 for the valve 20. The guide tube 14 extends along the X-axis in the second part 10b of the body 20 and is connected to the second part 10b of the body 10 by fins 15 extending radially from a central portion of the guide tube 14. The fins 15 are evenly distributed around the X-axis and, together with an internal surface of the second part 10.2 of the body 10, define fluid passages. The guide tube 14 and the fins 15 are integral with the body 10.

[0028] The guide tube 14 includes an internal shoulder 14.3 defining a first bore 14.1 of large diameter and a second bore 14.2 of small diameter. The first bore 14.1 has a free end opening into the first part 10a of the body 10 and receives two sliding bearings 16 arranged, as will be seen later, to allow the valve 20 to slide along the X-axis inside the body 10. The bearings 16 have an internal diameter slightly smaller than the diameter of the second bore 14.2. One of the bearings 16 is in contact with the shoulder 14.3 defining the first bore 14.1 and the second bore 14.2, and the other of the bearings 16 is slightly recessed from the free end of the first bore 14.1. The second bore 14.2 includes a free end having a bottom 17 on which is formed a hole 18 extending along the X axis and opening into the second part 10b of the body 10.

[0029] The valve 20 extends along the longitudinal X axis of the body 10 and includes a valve head 21 and a stem 22 extending axially from the valve head 21, towards the second end 10.2 of the body 10.

[0030] The valve head 21 has substantially the shape of a frustoconical disc pointing towards the first end 10.1 of the body 10. This disc includes an outer perimeter delimiting an annular groove 21.1 in which is received a sealing gasket 23 arranged to ensure a tight contact between the valve head 21 and the valve seat 11 when the valve 20 is in the closed position ([Fig.1]): an external peripheral portion of the sealing gasket 23 is compressed between a lateral wall of the annular groove 21.1 and the valve seat 11.

[0031] The stem 22 is generally cylindrical in shape and is formed from the same material as the valve head 21. The stem 22 includes a shoulder 22.3 delimiting a first stem portion 22.1 of large diameter and a second stem portion 22.2 of small diameter. The first stem portion 22.1 is directly connected to the valve head 21, and the second stem portion 22.2 includes a free end forming a free end of the stem 22.

[0032] The stem 22 receives a sleeve 24 fitted lightly onto an outer circumference of the first portion of the stem 22.1. The sleeve 24 has a first end in contact with the valve head 21 and, opposite, a second end fitting around an end portion of the guide tube 14 to define a first annular fluidic channel Ci. The sleeve 24 forms a skirt extending in The axial projection of the valve head 21 includes an internal surface which, together with the shoulder 22.3 of the stem 22, the second stem portion 22.2, and the end portion of the guide tube 14, defines a first variable-volume damping chamber CHi. The first chamber CHi is in fluidic communication with the flow channel CE, delimited by the body 10, via the first fluidic channel Ci, delimited by the sleeve 24 and the guide tube 14.

[0033] The second stem portion 22.2 is slidably mounted in the guide tube 14 via the bearings 16. It is understood that the bearings 16 form means for guiding the valve 20 in translation along the X-axis. The free end of the stem 22 extends into the second bore 14.2 and, together with said second bore 14.2 and the bottom 17 of said second bore 14.2, defines a second variable-volume damping chamber CH2. The second chamber CH2 is in fluidic communication with the flow channel CE delimited by the body 10 via a second cylindrical fluidic channel C2, delimited by the hole 18.

[0034] The helical spring 30 has a first end bearing against an external shoulder of the sleeve 24 and, on the opposite side, a second end bearing against an end face of the fins 15, so as to exert, via the sleeve 24, a restoring force on the valve head 21 tending to return the valve 20 to the closed position.

[0035] The operation of valve 1 will now be detailed.

[0036] The first end 10.1 and the second end 10.2 of the body 10 are respectively connected to a pressurized fluid supply conduit F and a flow conduit. The fluid F entering the valve 1 through the first end 10.1 of the body 10 exerts an axial force on the valve head 21 tending to move the valve 20 from the closed position to the open position against the spring 30. The position of the valve 20 is a function of the pressure of the fluid F: • when the pressure of the fluid F entering the body 10 is less than or equal to a predetermined pressure, the valve 20 is, under the action of the spring 30, in the closed position in which the valve head 21 opposes the flow of the fluid F through the body 10, the axial force exerted by the fluid F on the valve head 21 being substantially equal to or less than the restoring force exerted by the spring 30 on said valve head 21 via the sleeve 24; and • when the pressure of the fluid F entering the body 10 is greater than the predetermined pressure, the valve 20 is or reaches an operating position that is arranged between the closed position and the open position and in which the valve head 21 does not oppose the flow of the fluid F through the body 10, the axial force exerted by the fluid F on the head of valve 21 being substantially equal to the return force exerted by the spring 30 on said valve head 21 via the bushing 24.

[0037] In service, the valve 20 tends to oscillate axially around the operating position, particularly depending on slight variations in the flow rate of the fluid F entering the body 10.

[0038] The slight displacement of the valve 20 from the operating position to the open position results in a slight decrease in the volume of the first chamber CH1 and the volume of the second chamber CH2, and therefore a compression of the fluid contained in the first chamber CH1 and the fluid contained in the chamber CH2 which opposes the displacement of the valve 20. The fluid contained in the first chamber CH2 and the fluid contained in the second chamber CH2 then tend to escape respectively through the first fluidic channel Ci delimited by the sleeve 24 and the guide tube 14 and through the second fluidic channel C2 delimited by the hole 18.

[0039] The slight displacement of the valve 20 from the operating position to the closed position causes a slight increase in the volume of the first chamber CHi and the volume of the second chamber CH2, and therefore an expansion of the fluid contained in the first chamber CHi and the fluid contained in the second chamber CH2, which opposes the displacement of the valve 20. The fluid F contained in the flow channel CE delimited by the body then tends to pass into the first chamber CHi and into the second chamber CH2 via respectively the first fluidic channel Ci delimited by the sleeve 24 and the guide tube 14 and via the second fluidic channel C2 delimited by the hole 18.

[0040] It is understood that the first chamber CH1 and chamber CH2 act as shock absorbers and have the effect of limiting the amplitude of the oscillations of the valve 20 around its operating position and thus limiting the shocks between the valve 20 and the guide tube 14 (in particular between the shoulder 22.3 of the valve stem 22 and the end portion of the guide tube 14). Wear on the stem 22 and the bearings 16 and the risk of breakage of the fins 15 are thereby limited.

[0041] In a manner known per se, the depreciation rate generated by the first chamber CH1 and that generated by the second chamber CH2 are respectively a function of: • the dimensions of said first chamber CHi and those of the first fluidic channel Ci; and • the dimensions of said second chamber CH2 and those of the second fluidic channel C2.

[0042] Of course, the invention is not limited to the embodiment described but encompasses any variant falling within the scope of the invention as defined by the claims.

[0043] The spring 30 can be replaced by any elastic return means or device (Belleville washers, wave washers, etc.)

[0044] The sleeve 24 may be replaced by an annular skirt extending axially from the valve head 21 or by a tubular extension extending axially from the guide tube 14, so as to form the first chamber CHp

[0045] Although here the hole 18 extends axially in the bottom 17 of the guide tube 14, it can also extend radially at one end of said guide tube 14, in the vicinity of said bottom 17.

Claims

Demands

1. A non-return valve (1) comprising: • a body (10) defining a fluid flow channel (F) between a first end (10.1) and a second end (10.2) of the body and comprising an internal surface delimiting a valve seat (11); and • a valve (20) movably mounted about an axis (X) in the body's flow channel between an open position in which the valve is recessed from the valve seat, and a closed position in which the valve is in tight contact with the valve seat and towards which the valve is returned by an elastic return member (30), the valve comprising a valve head and a stem (22) extending axially from the valve head and slidably mounted in a guide tube (14) connected to the body by delimiting fluid passages, characterized in that the guide tube comprises a first end and, opposite,a second end delimiting respectively with the stem a first damping chamber (CHi) and a second damping chamber (CH2) having volumes varying according to the position of the valve, the first chamber and the second chamber being in fluidic communication with the flow channel (CE) via respectively a first fluidic channel (Ci) and a second fluidic channel (C2) arranged to dampen any displacement of the valve around an operating position arranged between the closed position and the open position.

2. Check valve (1) according to claim 1, wherein the valve (20) comprises an annular skirt (24) extending axially outward from the valve head (21) and around the first end of the guide tube (14) to delimit the first chamber (CHi).

3. Check valve (1) according to claim 2, wherein the first end of the guide tube (14) and the skirt (24) form the first fluidic channel (Ci).

4. Check valve (1) according to any one of the preceding claims, wherein the second end of the guide tube (14) includes a bottom (17) delimiting the second chamber (CH2).

5. Check valve (1) according to claim 4, wherein the bottom (17) of the guide tube (14) includes a hole (18) forming the second fluidic channel (C2).

6. Check valve (1) according to any one of the preceding claims, wherein the guide tube (14) is connected to the body (10) by fins (15) extending radially from said guide tube.

7. Check valve (1) according to any one of the preceding claims, wherein the body (10) is generally tubular in shape and extends along the axis (X) of translation of the valve (20).

8. Check valve (1) according to any one of the preceding claims, wherein the valve head (21) comprises an outer contour defining an annular groove (21.1) in which is received a sealing gasket (23) arranged to ensure a tight contact between the valve head and the valve seat (11) when the valve (20) is in the closed position.

Citation Information

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