PULSE DAMPER
20170350354 ยท 2017-12-07
Assignee
Inventors
Cpc classification
F02M37/0041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L55/053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L55/055
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M55/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B1/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L55/055
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L55/053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A pulse damper constructed in accordance to one example of the present disclosure includes a first housing member, a second housing member, a diaphragm and a valve. The first housing member defines a fuel chamber at an internal space thereof. The first housing member can further have a fuel inlet and a fuel outlet. The second housing member can define a pressurized chamber. The diaphragm can be disposed between the first and second housing. The diaphragm separates the fuel chamber and the pressurized chamber. The valve can be disposed on the second housing and be configured to selectively pass air into and out of the pressurized chamber corresponding to a desired predetermined pressure within the pressurized chamber. Increased pressure within the pressurized chamber will resist movement of the diaphragm into the pressurized chamber.
Claims
1. A pulse damper comprising: a first housing member that defines a fuel chamber at an internal space thereof, the first housing member further having a fuel inlet and a fuel outlet; a second housing member that defines a pressurized chamber; a diaphragm disposed between the first and second housing and that separates the fuel chamber and the pressurized chamber; and a valve disposed on the second housing and configured to selectively pass air into and out of the pressurized chamber corresponding to a desired predetermined pressure within the pressurized chamber, wherein increased pressure within the pressurized chamber will resist movement of the diaphragm into the pressurized chamber.
2. The pulse damper of claim 1 wherein the valve is a Schrader valve.
3. The pulse damper of claim 1, further comprising a crimp ring that couples the first and second housings together.
4. The pulse damper of claim 3 wherein the crimp ring sealingly couples the first and second housings together with the diaphragm sandwiched therebetween.
5. The pulse damper of claim 1 wherein the second housing member is dome shaped.
6. The pulse damper of claim 5 wherein the first and second housing members are formed of steel.
7. The pulse damper of claim 5 wherein the second housing member is formed of plastic.
8. The pulse damper of claim 7 wherein the first housing member is formed of plastic.
9. The pulse damper of claim 5, further comprising: a first gasket disposed between the first housing and the diaphragm; and a second gasket disposed between the second housing and the diaphragm.
10. The pulse damper of claim 1, wherein the valve further comprises a threaded stem having a removably coupled cap.
11. The pulse damper of claim 1 wherein the diaphragm is formed of Polyimide film.
12. The pulse damper of claim 3 wherein the crimp ring is formed of one of steel and aluminum.
13. A pulse damper comprising: a plastic first housing member that defines a fuel chamber at an internal space thereof, the first housing member further having a fuel inlet and a fuel outlet; a plastic second housing member that defines a pressurized chamber; and a diaphragm disposed between the first and second housing and that separates the fuel chamber and the pressurized chamber.
14. The pulse damper of claim 13, further comprising a crimp ring that couples the first and second housings together.
15. The pulse damper of claim 14 wherein the crimp ring sealingly couples the first and second housings together with the diaphragm sandwiched therebetween.
16. The pulse damper of claim 13 wherein the second housing member is dome shaped.
17. The pulse damper of claim 13, further comprising: a first gasket disposed between the first housing and the diaphragm; and a second gasket disposed between the second housing and the diaphragm.
18. The pulse damper of claim 13 wherein the diaphragm is formed of Polyimide film.
19. The pulse damper of claim 14 wherein the crimp ring is formed of one of steel and aluminum.
20. The pulse damper of claim 13 further comprising: a valve disposed on the second plastic housing member and configured to selectively pass air into and out of the pressurized chamber to provide a predetermined pressure within the pressurized chamber, wherein increased pressure within the pressurized chamber will resist movement of the diaphragm into the pressurized chamber.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The present disclosure will become more fully understood from the detailed description and the accompanying drawings, wherein:
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DETAILED DESCRIPTION
[0025] With initial reference to
[0026] The first housing member 12 defines a fuel chamber 40 at an internal space thereof. The second housing member 14 defines a pressurized chamber 42. The diaphragm 20 can be disposed between the first and the second housing members 12 and 14. The diaphragm 20 can separate the fuel chamber 40 and the pressurized chamber 42. In general, as fuel is passed from the fuel inlet 30 to the fuel outlet 32, pressure can act against the diaphragm 20 in a direction generally from the fuel chamber 40 into the pressurized chamber 42. The diaphragm 20 can move and as a result mitigate pressure amplitude.
[0027] The pulse damper 10 according to the present disclosure includes the valve 22. The valve 22 can be used to selectively pass air into and out of the pressurized chamber 42. As can be appreciated, more air in the pressurized chamber 42 will tend to resist movement of the diaphragm 20 toward the pressurized chamber 42. In this regard, a user can set the pressurized chamber 42 to have a predetermined pressure suitable for a given application. The valve 22 can be a Schrader valve. A cap 50 can be removably secured to a corresponding threaded stem 52. Other configurations are contemplated.
[0028] Turning now to
[0029] The first housing member 112 defines a fuel chamber 140 at an internal space thereof. The second housing member 114 defines a pressurized chamber 142. The diaphragm 120 can be disposed between the first and the second housing members 112 and 114. The diaphragm 120 can separate the fuel chamber 140 and the pressurized chamber 142. In general, as fuel is passed from the fuel inlet 130 to the fuel outlet 132, pressure can act against the diaphragm 120 in a direction generally from the fuel chamber 140 into the pressurized chamber 142. The diaphragm 120 can move and as a result mitigate pressure amplitude. A first gasket 146 can be disposed between the first housing 112 and the diaphragm 120. A second gasket 148 can be disposed between the second housing 114 and the diaphragm 120. The first and second gaskets 146 and 148 can be formed of fluorocarbon. The diaphragm 120 can be formed of Polyimide film. In other examples, the first and second housing members 12 and 14 of the pulse damper 10 can be formed of plastic.
[0030] With reference now to
[0031] The first housing member 212 defines a fuel chamber 240 at an internal space thereof. The second housing member 214 defines a pressurized chamber 242. The diaphragm 220 can be disposed between the first and the second housing members 212 and 214. The diaphragm 220 can separate the fuel chamber 240 and the pressurized chamber 242. In general, as fuel is passed from the fuel inlet 230 to the fuel outlet 232, pressure can act against the diaphragm 220 in a direction generally from the fuel chamber 240 into the pressurized chamber 242. The diaphragm 220 can move and as a result mitigate pressure amplitude.
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[0033] The pulse dampers disclosed herein can be used as pressure accumulators. The accumulator can function to provide high pressure gasoline direct injection (GDI). The accumulator can compensate for injector leakage, fuel thermal expansion and contraction. The accumulator can inhibit long-cranking engine starts.
[0034] The pulse damper disclosed herein provides many advantages over prior art offerings. The pressure on the non-fuel side (pressurized chamber 42) can be varied to meet application requirements for pressure pulsation magnitude. The pressure at which a customer has determined to meet all requirements can then be built into the production level damper.
[0035]
[0036] The foregoing description of the examples has been provided for purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure. Individual elements or features of a particular example are generally not limited to that particular example, but, where applicable, are interchangeable and can be used in a selected example, even if not specifically shown or described. The same may also be varied in many ways. Such variations are not to be regarded as a departure from the disclosure, and all such modifications are intended to be included within the scope of the disclosure.