Wire bundle fitting test apparatus, system and method therefor
10942082 ยท 2021-03-09
Assignee
Inventors
- Travis E. Dreyfoos (Woodinville, WA, US)
- Kane M. Mordaunt (Bellevue, WA, US)
- Robert Davis (Redmond, WA, US)
Cpc classification
G01M3/14
PHYSICS
International classification
G01M3/14
PHYSICS
Abstract
A leak test apparatus including a sleeve member having a first end and a second end and being configured to surround a portion of a transmission medium, a first retaining device configured to couple the first end of the sleeve member to a boundary fitting to which the transmission medium is coupled, and where the sleeve member is configured to contain a leak detection medium and effect a pressurization of the boundary fitting with the leak detection medium.
Claims
1. A leak test apparatus comprising: a sleeve member having a first end and a second end and being configured to surround a portion of a transmission medium; a first retaining device configured to couple the first end of the sleeve member to a boundary fitting to which the transmission medium is coupled; a fluid flow restrictor that is separate and distinct from the sleeve member, the fluid flow restrictor is disposed adjacent the second end of the sleeve member and configured to couple with the transmission medium to at least restrict leak detection medium egress from the second end of the sleeve member; a leak detection medium fluid supply conduit extending through the fluid flow restrictor in parallel with the transmission medium so that the fluid flow restrictor is common to both the transmission medium and the leak detection medium fluid supply conduit; and wherein the sleeve member is coupled to both the boundary fitting and the fluid flow restrictor and configured to contain a leak detection medium and effect a pressurization of the boundary fitting with the leak detection medium.
2. The leak test apparatus of claim 1, wherein the leak detection medium fluid supply conduit is integral to the fluid flow restrictor.
3. The leak test apparatus of claim 1, further comprising a second retaining device configured to couple the fluid flow restrictor to both the sleeve member and the transmission medium so that the sleeve member forms a pressure vessel between the boundary fitting and the fluid flow restrictor.
4. The leak test apparatus of claim 1, further comprising a leak detection medium supply configured to couple with the leak detection medium fluid supply conduit to effect pressurization of the sleeve member.
5. The leak test apparatus of claim 1, wherein the sleeve member comprises a substantially rigid conduit.
6. The leak test apparatus of claim 1, wherein the sleeve member comprises a substantially flexible conduit.
7. The leak test apparatus of claim 1, wherein the sleeve member comprises: a body having a longitudinal axis extending between the first end and the second end; longitudinally extending edges of the body that extend along the longitudinal axis and form a seam through which the transmission medium is inserted into the sleeve member; and a seal extending along the seam and being configured to couple the longitudinally extending edges.
8. The leak test apparatus of claim 7, wherein the seal comprises a fluid-tight zipper.
9. The leak test apparatus of claim 8, wherein the fluid-tight zipper is coupled to the body with a frangible coupling.
10. A leak test apparatus comprising: a pressure vessel having a first end and a second end longitudinally spaced from the first end, the pressure vessel including a sleeve member configured to surround a portion of a transmission medium and a leak detection medium fluid supply conduit, a fluid flow restrictor configured to couple the sleeve member to both the transmission medium and the leak detection medium fluid supply conduit adjacent the second end, and a first retaining device configured to couple the first end of the sleeve member to a boundary fitting to which the transmission medium is coupled; and wherein the pressure vessel is configured to contain a leak detection medium received from the leak detection medium fluid supply conduit and effect a pressurization of the boundary fitting with the leak detection medium.
11. The leak test apparatus of claim 10, further comprising a second retaining device configured to couple the sleeve member to the fluid flow restrictor.
12. The leak test apparatus of claim 10, wherein the leak detection medium comprises one or more of liquid and a gas.
13. The leak test apparatus of claim 10, further comprising a leak detection medium supply configured to couple with the leak detection medium fluid supply conduit and pressurize the sleeve member.
14. The leak test apparatus of claim 13, wherein the leak detection medium supply comprises a pressurized fluid source.
15. A method for leak testing a boundary fitting, the method comprising: coupling a first end of a sleeve member to a boundary fitting with a first retaining device so that the sleeve member surrounds a portion of a transmission medium coupled to the boundary fitting; coupling a fluid flow restrictor to the transmission medium; pressurizing the sleeve member with a leak detection medium introduced within the sleeve member through a leak detection medium fluid supply conduit that extends through the fluid flow restrictor, the fluid flow restrictor being separate and distinct from the sleeve member and disposed adjacent the second end of the sleeve member so that the fluid flow restrictor couples with the transmission medium, the leak detection medium fluid supply conduit, and the sleeve member to at least restrict leak detection medium egress from the second end of the sleeve member; and detecting a presence or absence of the leak detection medium on a side of the boundary fitting that is opposite the sleeve member.
16. The method of claim 15, further comprising coupling a second end of the sleeve member to the fluid flow restrictor with a second retaining device.
17. The method of claim 15, wherein detecting the presence or absence of the leak detection medium on the side of the boundary fitting that is opposite the sleeve member comprises: applying a liquid soap solution to the side of the boundary fitting that is opposite the sleeve member; and detecting a presence of bubbles formed by an interaction between the liquid soap solution and the leak detection medium.
18. The method of claim 15, wherein detecting the presence or absence of the leak detection medium on the side of the boundary fitting that is opposite the sleeve member comprises detecting the presence of the leak detection medium flowing through the boundary fitting in an infrared spectrum.
19. The method of claim 15, wherein detecting the presence or absence of the leak detection medium on the side of the boundary fitting that is opposite the sleeve member comprises detecting the presence of the leak detection medium flowing through the boundary fitting in a visible spectrum.
20. The method of claim 15, wherein detecting the presence or absence of the leak detection medium on the side of the boundary fitting that is opposite the sleeve member comprises detecting the presence of the leak detection medium flowing through the boundary fitting in a liquid form.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Having thus described examples of the present disclosure in general terms, reference will now be made to the accompanying drawings, which are not necessarily drawn to scale, and wherein like reference characters designate the same or similar parts throughout the several views, and wherein:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
DETAILED DESCRIPTION
(15) Illustrative, non-exhaustive examples, which may or may not be claimed, of the subject matter according to the present disclosure are provided below.
(16) Referring to
(17) The boundary fitting 110 may be installed on or through a boundary structure/wall (referred to herein as the pressure boundary 190) of any suitable vehicle 198 or building 199 that is subject to a differential pressure (e.g., different pressures on opposite sides of the boundary structure/wall) that would cause fluid flow through the boundary fitting 110 if it were not for the boundary fitting 110 being sealed. For example, pressure P1 may exist on a first side 191 of the pressure boundary 190 and pressure P2 may exist on a second side 192 of the pressure boundary 190, where pressure P1 is different than pressure P2 so as to create the pressure differential across the pressure boundary. Suitable examples of vehicles 198 in which the aspects of the present disclosure may be employed include aircraft, spacecraft, maritime vessels, submersibles, automotive vehicles and/or any other vehicle having a pressure boundary through which wires or pipes pass.
(18) The aspects of the disclosed embodiments provide for leak testing of the boundary fitting 110 in hard to reach areas having limited access during vehicle 198 or building 199 assembly; or during maintenance of a completed vehicle 198 or building 199. The aspects of the disclosed embodiment also provide for rework of the boundary fitting 110 if a leak is found prior to any vehicle 198 or building 199 structure/furnishings being installed over or in front of the boundary fitting 110, which substantially reduces rework costs, reduces production delays, and/or prevents damage to the vehicle 198 or building 199 structure/furnishings as the rework of the boundary fitting 110 is performed prior to the installation of the structure/furnishings.
(19) The aspects of the disclosed embodiment provide for an apparatus 100 that is easy to use without formal operational training. The apparatus 100 provides for inspection of the boundary fitting 110 by pressurizing the boundary fitting 110 and visually detecting leaks, which may substantially eliminates any interpretation of inspection criteria. For example, the apparatus 100 provides for a simple pass/fail criteria for leak detection across the boundary fitting 110 where the leak is detected directly using a leak detection medium 250 (see e.g.,
(20) Still referring to
(21) In one aspect, the sleeve member 101 may be a substantially rigid conduit 101R, such as for example, formed of a rigid pipe as illustrated in
(22) Referring again to
(23) In one aspect, referring to
(24) Referring again to
(25) Referring to
(26) The leak detection medium 250 stored or generated by the leak detection supply includes one or more of liquid 250L leak detection medium 250 (see
(27) Referring to
(28) As noted above, the sleeve member 101 may only be partially sealed such that there may be some leakage of the leak detection medium 250 from the sleeve member 101. This leakage of leak detection medium from the sleeve member 101 may not affect the detection of leaks through the boundary fitting 110 as long as sufficient pressure (as noted above) is maintained against the boundary fitting so that if there is a leak in the boundary fitting 110 the leak detection medium migrates through the boundary fitting 110 along a path of the leak.
(29) Referring to
(30) A presence or absence of the leak detection medium 250 is detected on the side of the boundary fitting 110 that is opposite the sleeve member 101 (
(31) The following examples are provided in accordance with the aspects of the present disclosure:
(32) A1. A leak test apparatus comprising:
(33) a sleeve member having a first end and a second end and being configured to surround a portion of a transmission medium;
(34) a first retaining device configured to couple the first end of the sleeve member to a boundary fitting to which the transmission medium is coupled; and
(35) wherein the sleeve member is configured to contain a leak detection medium and effect a pressurization of the boundary fitting with the leak detection medium.
(36) A2. The leak test apparatus of paragraph A1, further comprising a leak detection medium supply configured to couple with and pressurize the sleeve member.
(37) A3. The leak test apparatus of paragraph A2, wherein the leak detection medium supply comprises a pressurized fluid source.
(38) A4. The leak test apparatus of paragraph A3, wherein the pressurized fluid source comprises compressed air.
(39) A5. The leak test apparatus of paragraph A4, wherein the leak detection medium further comprises a liquid and soap solution configured to provide a visual indication of a leak at an interface between the compressed air and the liquid and soap solution.
(40) A6. The leak test apparatus of paragraph A2, wherein the leak detection medium supply comprises a heat source.
(41) A7. The leak test apparatus of paragraph A2, wherein the leak detection medium supply comprises a liquid container.
(42) A8. The leak test apparatus of paragraph A1, further comprising a fluid flow restrictor disposed adjacent the second end of the sleeve member, the fluid flow restrictor being configured to couple with the transmission medium to at least restrict leak detection medium egress from the second end of the sleeve member.
(43) A9. The leak test apparatus of paragraph A8, further comprising a second retaining device configured to couple the fluid flow restrictor to both the sleeve member and the transmission medium so that the sleeve member forms a pressure vessel between the boundary fitting and the fluid flow restrictor.
(44) A10. The leak test apparatus of paragraph A8, further comprising a leak detection medium supply configured to couple with the fluid flow restrictor to effect pressurization of the sleeve member.
(45) A11. The leak test apparatus of paragraph A8, wherein the fluid flow restrictor includes a coupling member configured to couple with a leak detection medium supply.
(46) A12. The leak test apparatus of paragraph A8, wherein the fluid flow restrictor comprises a grommet.
(47) A13. The leak test apparatus of paragraph A1, wherein the sleeve member comprises a substantially rigid conduit.
(48) A14. The leak test apparatus of paragraph A1, wherein the sleeve member comprises a substantially flexible conduit.
(49) A15. The leak test apparatus of paragraph A1, wherein the sleeve member comprises:
(50) a body having a longitudinal axis extending between the first end and the second end;
(51) longitudinally extending edges of the body that extend along the longitudinal axis and form a seam through which the transmission medium is inserted into the sleeve member; and
(52) a seal extending along the seam and being configured to couple the longitudinally extending edges.
(53) A16. The leak test apparatus of paragraph A15, wherein the seal comprises a fluid-tight zipper.
(54) A17. The leak test apparatus of paragraph A16, wherein the fluid-tight zipper is coupled to the body with a frangible coupling.
(55) A18. The leak test apparatus of paragraph A17, wherein the frangible coupling comprises a single line of stitching.
(56) A19. The leak test apparatus of paragraph A17, wherein the frangible coupling comprises one or more of a chemical adhesive and a mechanical adhesive.
(57) A20. The leak test apparatus of paragraph A1, wherein the leak detection medium comprises one or more of liquid and a gas.
(58) A21. The leak test apparatus of paragraph A1, wherein the leak detection medium comprises a visible gas.
(59) A22. The leak test apparatus of paragraph A21, wherein the visible gas is visible in a visible spectrum.
(60) A23. The leak test apparatus of paragraph A21, wherein the visible gas is visible in an infrared spectrum.
(61) A24. The leak test apparatus of paragraph A23, further comprising an infrared detector.
(62) B1. A leak test apparatus comprising:
(63) a pressure vessel having a first end and a second end longitudinally spaced from the first end, the pressure vessel including
(64) a sleeve member configured to surround a portion of a transmission medium,
(65) a fluid flow restrictor configured to couple the sleeve member to the transmission medium adjacent the second end, and
(66) a first retaining device configured to couple the first end of the sleeve member to a boundary fitting to which the transmission medium is coupled; and
(67) wherein the pressure vessel is configured to contain a leak detection medium and effect a pressurization of the boundary fitting with the leak detection medium.
(68) B2. The leak test apparatus of paragraph B1, further comprising a second retaining device configured to couple the sleeve member to the fluid flow restrictor.
(69) B3. The leak test apparatus of paragraph B1, further comprising a leak detection medium supply configured to couple with and pressurize the sleeve member.
(70) B4. The leak test apparatus of paragraph B3, wherein the leak detection medium supply comprises a pressurized fluid source.
(71) B5. The leak test apparatus of paragraph B4, wherein the pressurized fluid source comprises compressed air.
(72) B6. The leak test apparatus of paragraph B5, wherein the leak detection medium further comprises a liquid and soap solution configured to provide a visual indication of a leak at an interface between the compressed air and the liquid and soap solution.
(73) B7. The leak test apparatus of paragraph B4, wherein the leak detection medium supply comprises a heat source.
(74) B8. The leak test apparatus of paragraph B4, wherein the leak detection medium supply comprises a liquid container.
(75) B9. The leak test apparatus of paragraph B1, wherein the fluid flow restrictor is configured to couple with the transmission medium to at least restrict leak detection medium egress from a second end of the sleeve member.
(76) B10. The leak test apparatus of paragraph B9, wherein the sleeve member forms, at least in part, a pressure vessel between the boundary fitting and the fluid flow restrictor.
(77) B11. The leak test apparatus of paragraph B9, further comprising a leak detection medium supply configured to couple with the fluid flow restrictor to effect pressurization of the sleeve member.
(78) B12. The leak test apparatus of paragraph B9, wherein the fluid flow restrictor includes a coupling member configured to couple with a leak detection medium supply.
(79) B13. The leak test apparatus of paragraph B9, wherein the fluid flow restrictor comprises a grommet.
(80) B14. The leak test apparatus of paragraph B1, wherein the sleeve member comprises a substantially rigid conduit.
(81) B15. The leak test apparatus of paragraph B1, wherein the sleeve member comprises a substantially flexible conduit.
(82) B16. The leak test apparatus of paragraph B1, wherein the sleeve member comprises:
(83) a body having a longitudinal axis extending between the first end and a second end;
(84) longitudinally extending edges of the body that extend along the longitudinal axis and form a seam through which the transmission medium is inserted into the sleeve member; and
(85) a seal extending along the seam and being configured to couple the longitudinally extending edges.
(86) B17. The leak test apparatus of paragraph B16, wherein the seal comprises a fluid-tight zipper.
(87) B18. The leak test apparatus of paragraph B16, wherein the fluid-tight zipper is coupled to the body with a frangible coupling.
(88) B19. The leak test apparatus of paragraph B18, wherein the frangible coupling comprises a single line of stitching.
(89) B20. The leak test apparatus of paragraph B18, wherein the frangible coupling comprises one or more of a chemical adhesive and a mechanical adhesive.
(90) B21. The leak test apparatus of paragraph B1, wherein the leak detection medium comprises one or more of liquid and a gas.
(91) B22. The leak test apparatus of paragraph B1, wherein the leak detection medium comprises a visible gas.
(92) B23. The leak test apparatus of paragraph B22, wherein the visible gas is visible in a visible spectrum.
(93) B24. The leak test apparatus of paragraph B22, wherein the visible gas is visible in an infrared spectrum.
(94) B25. The leak test apparatus of paragraph B24, further comprising an infrared detector.
(95) C1. A method for leak testing a boundary fitting, the method comprising:
(96) coupling a first end of a sleeve member to a boundary fitting with a first retaining device so that the sleeve member surrounds a portion of a transmission medium coupled to the boundary fitting;
(97) pressurizing the sleeve member with a leak detection medium; and
(98) detecting a presence or absence of the leak detection medium on a side of the boundary fitting that is opposite the sleeve member.
(99) C2. The method of paragraph C1, wherein pressurizing the sleeve member comprises filling the sleeve member with the leak detection medium in a form of a liquid.
(100) C3. The method of paragraph C1, wherein pressurizing the sleeve member comprises filling the sleeve member with the leak detection medium in a form of a gas.
(101) C4. The method of paragraph C1, further comprising:
(102) coupling a fluid flow restrictor to the transmission medium; and
(103) coupling a second end of the sleeve member to the fluid flow restrictor with a second retaining device.
(104) C5. The method of paragraph C1, wherein detecting the presence or absence of the leak detection medium on the side of the boundary fitting that is opposite the sleeve member comprises:
(105) applying a liquid soap solution to the side of the boundary fitting that is opposite the sleeve member; and
(106) detecting a presence of bubbles formed by an interaction between the liquid soap solution and the leak detection medium.
(107) C6. The method of paragraph C1, wherein detecting the presence or absence of the leak detection medium on the side of the boundary fitting that is opposite the sleeve member comprises detecting the presence of the leak detection medium flowing through the boundary fitting in an infrared spectrum.
(108) C7. The method of paragraph C1, wherein detecting the presence or absence of the leak detection medium on the side of the boundary fitting that is opposite the sleeve member comprises detecting the presence of the leak detection medium flowing through the boundary fitting in a visible spectrum.
(109) C8. The method of paragraph C1, wherein detecting the presence or absence of the leak detection medium on the side of the boundary fitting that is opposite the sleeve member comprises detecting the presence of the leak detection medium flowing through the boundary fitting in a liquid form.
(110) C9. The method of paragraph C1, wherein pressurizing the sleeve member comprises pressurizing the sleeve member to a pressure of greater than about 0 psi to about 12 psi.
(111) C10. The method of paragraph C9, wherein pressurizing the sleeve member comprises pressurizing the sleeve member to a pressure greater than about 0 psi to about 2 psi.
(112) In the figures, referred to above, solid lines, if any, connecting various elements and/or components may represent mechanical, electrical, fluid, optical, electromagnetic, wireless and other couplings and/or combinations thereof. As used herein, coupled means associated directly as well as indirectly. For example, a member A may be directly associated with a member B, or may be indirectly associated therewith, e.g., via another member C. It will be understood that not all relationships among the various disclosed elements are necessarily represented. Accordingly, couplings other than those depicted in the drawings may also exist. Dashed lines, if any, connecting blocks designating the various elements and/or components represent couplings similar in function and purpose to those represented by solid lines; however, couplings represented by the dashed lines may either be selectively provided or may relate to alternative examples of the present disclosure. Likewise, elements and/or components, if any, represented with dashed lines, indicate alternative examples of the present disclosure. One or more elements shown in solid and/or dashed lines may be omitted from a particular example without departing from the scope of the present disclosure. Environmental elements, if any, are represented with dotted lines. Virtual (imaginary) elements may also be shown for clarity. Those skilled in the art will appreciate that some of the features illustrated in the figures, may be combined in various ways without the need to include other features described in the figures, other drawing figures, and/or the accompanying disclosure, even though such combination or combinations are not explicitly illustrated herein. Similarly, additional features not limited to the examples presented, may be combined with some or all of the features shown and described herein.
(113) In
(114) In the foregoing description, numerous specific details are set forth to provide a thorough understanding of the disclosed concepts, which may be practiced without some or all of these particulars. In other instances, details of known devices and/or processes have been omitted to avoid unnecessarily obscuring the disclosure. While some concepts will be described in conjunction with specific examples, it will be understood that these examples are not intended to be limiting.
(115) Unless otherwise indicated, the terms first, second, etc. are used herein merely as labels, and are not intended to impose ordinal, positional, or hierarchical requirements on the items to which these terms refer. Moreover, reference to, e.g., a second item does not require or preclude the existence of, e.g., a first or lower-numbered item, and/or, e.g., a third or higher-numbered item.
(116) Reference herein to one example means that one or more feature, structure, or characteristic described in connection with the example is included in at least one implementation. The phrase one example in various places in the specification may or may not be referring to the same example.
(117) As used herein, a system, apparatus, structure, article, element, component, or hardware configured to perform a specified function is indeed capable of performing the specified function without any alteration, rather than merely having potential to perform the specified function after further modification. In other words, the system, apparatus, structure, article, element, component, or hardware configured to perform a specified function is specifically selected, created, implemented, utilized, programmed, and/or designed for the purpose of performing the specified function. As used herein, configured to denotes existing characteristics of a system, apparatus, structure, article, element, component, or hardware which enable the system, apparatus, structure, article, element, component, or hardware to perform the specified function without further modification. For purposes of this disclosure, a system, apparatus, structure, article, element, component, or hardware described as being configured to perform a particular function may additionally or alternatively be described as being adapted to and/or as being operative to perform that function.
(118) Different examples of the apparatus(es) and method(s) disclosed herein include a variety of components, features, and functionalities. It should be understood that the various examples of the apparatus(es), system(s), and method(s) disclosed herein may include any of the components, features, and functionalities of any of the other examples of the apparatus(es) and method(s) disclosed herein in any combination, and all of such possibilities are intended to be within the scope of the present disclosure.
(119) Many modifications of examples set forth herein will come to mind to one skilled in the art to which the present disclosure pertains having the benefit of the teachings presented in the foregoing descriptions and the associated drawings.
(120) Therefore, it is to be understood that the present disclosure is not to be limited to the specific examples illustrated and that modifications and other examples are intended to be included within the scope of the appended claims. Moreover, although the foregoing description and the associated drawings describe examples of the present disclosure in the context of certain illustrative combinations of elements and/or functions, it should be appreciated that different combinations of elements and/or functions may be provided by alternative implementations without departing from the scope of the appended claims. Accordingly, parenthetical reference numerals in the appended claims are presented for illustrative purposes only and are not intended to limit the scope of the claimed subject matter to the specific examples provided in the present disclosure.