Pin Vent Assembly
20210102544 ยท 2021-04-08
Assignee
Inventors
- Craig Louis Cavanaugh (Ossian, IN, US)
- Jacob John Berry (Uniondale, IN, US)
- David Michael Leckman (Fort Wayne, IN, US)
- Miles Anthony Ebert (Auburn, IN, US)
Cpc classification
F04C2220/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B17/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/426
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K2205/09
ELECTRICITY
F04C14/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/344
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2210/203
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D25/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C14/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fluid transfer pump assembly is provided that includes an electronic device enclosure, a bore, and a vent pin. The electronic device enclosure includes a wall separating an interior from an exterior of the explosion-proof fluid transfer pump assembly. The electronic device enclosure includes a bore extending through the wall of the electronic device enclosure from the interior of the electronic device enclosure to the exterior of the explosion-proof fluid transfer pump assembly. The bore is formed by at least one peripheral surface extending from the interior of the electronic device enclosure to the exterior of the explosion-proof fluid transfer pump assembly. The vent pin extends into the bore. The vent pin fills space within the bore and engages the at least one peripheral surface except that at least one portion of a pin surface of the vent pin is spaced apart from at least one portion of the at least one peripheral surface of the bore.
Claims
1. An explosion-proof fluid transfer pump assembly comprising: a motor enclosure located adjacent a pump enclosure; wherein the motor enclosure includes a wall separating an interior that receives a motor configured to drive a pump located in the pump enclosure from an exterior of the explosion-proof fluid transfer pump assembly; wherein the motor enclosure includes a bore extending through the wall of the motor enclosure from the interior of the motor enclosure to the exterior of the explosion-proof fluid transfer pump assembly; wherein the bore is formed by at least one peripheral surface extending from the interior of the motor enclosure to the exterior of the explosion-proof fluid transfer pump assembly; a vent pin that extends through the bore; wherein the vent pin fills space within the bore and engages the at least one peripheral surface except that at least one portion of a pin surface of the vent pin is spaced apart from at least one portion of the at least one peripheral surface of the bore to form at least one flame path between the at least one portion of the pin surface of the vent pin and the at least one portion of the at least one peripheral surface of the bore from the interior of the motor enclosure to the exterior of the explosion-proof fluid transfer pump assembly to equalize pressure between the interior of the motor enclosure to the exterior of the explosion-proof fluid transfer pump assembly.
2. The explosion-proof fluid transfer pump assembly of claim 1, wherein the vent pin is friction fit or slip fit with the bore.
3. The explosion-proof fluid transfer pump assembly of claim 1, wherein the at least one peripheral surface of the bore has a circular cross-section and wherein the at least one portion of the pin surface is planar to form the at least one flame path between the at least one portion of the pin surface of the vent pin and the at least one portion of the at least one peripheral surface of the bore.
4. The explosion-proof fluid transfer pump assembly of claim 3, wherein the at least one portion of the pin surface is a plurality of portions of the pin surface, wherein each of the plurality of portions of the pin surface is planar to form a flame path.
5. The explosion-proof fluid transfer pump assembly of claim 1, wherein the at least one portion of the pin surface is a scalloped channel to form the at least one flame path between the at least one portion of the pin surface of the vent pin and the at least one portion of the at least one peripheral surface of the bore.
6. The explosion-proof fluid transfer pump assembly of claim 5, wherein the at least one portion of the pin surface is a plurality of portions of the pin surface, wherein each of the plurality of portions of the pin surface is a scalloped channel to form a flame path.
7. The explosion-proof fluid transfer pump assembly of claim 1, wherein the vent pin has a circular cross-section, wherein the at least one portion of the pin surface is at least one spiraled channel that extends from a first end of the vent pin to a second end of the vent pin to form the flame path.
8. The explosion-proof fluid transfer pump assembly of claim 7, wherein the at least one spiraled channel is a plurality of spiraled channels that extend from the first end of the vent pin to the second end of the vent pin, wherein each of the plurality of spiraled channels forms a flame path.
9. The explosion-proof fluid transfer pump assembly of claim 1, wherein the at least one peripheral surface of the bore has a circular cross-section and the vent pin has a non-circular cross-section.
10. The explosion-proof fluid transfer pump assembly of claim 9, wherein the non-circular cross-section of the vent pin is triangularly-shaped.
11. The explosion-proof fluid transfer pump assembly of claim 1, wherein the at least one peripheral surface of the bore has a polygonal cross-section and the vent pin has a corresponding polygonal cross-section, wherein the at least one portion of the vent pin surface is spaced apart from the peripheral surface of the bore to form the flame path.
12. The explosion-proof fluid transfer pump assembly of claim 11, wherein the at least one portion of the pin surface of the vent pin is a plurality of portions of the pin surface of the vent pin, wherein each of the plurality of portions of the pin surface of the vent pin are spaced apart from the peripheral surface of the bore to form a flame path.
13. The explosion-proof fluid transfer pump assembly of claim 1, wherein the motor enclosure is composed of at least first and second components wherein the at least one peripheral surface of the bore is composed of at least both the first component of the motor enclosure and the second component of the motor enclosure.
14. The explosion-proof fluid transfer pump assembly of claim 1, wherein the at least one peripheral surface of the bore is scored to form the flame path between the at least one portion of the pin surface of the vent pin and the at least one portion of the at least one peripheral surface of the bore.
15. The explosion-proof fluid transfer pump assembly of claim 1, wherein the at least one portion of the pin surface of the vent pin is scored to form the flame path between the at least one portion of the pin surface of the vent pin and the at least one portion of the at least one peripheral surface of the bore.
16. An explosion-proof fluid transfer pump assembly comprising: an electronic device enclosure; wherein the electronic device enclosure includes a wall separating an interior of the electronic device enclosure from an exterior of the explosion-proof fluid transfer pump assembly; wherein the electronic device enclosure includes a bore extending through the wall of the electronic device enclosure from the interior of the electronic device enclosure to the exterior of the explosion-proof fluid transfer pump assembly; wherein the bore is formed by at least one peripheral surface extending from the interior of the electronic device enclosure to the exterior of the explosion-proof fluid transfer pump assembly; a vent pin 48 that extends through the bore; wherein the vent pin fills space within the bore and engages the at least one peripheral surface except that at least one portion of a pin surface of the vent pin is spaced apart from at least one portion of the at least one peripheral surface of the bore to form at least one flame path between the at least one portion of the pin surface of the vent pin and the at least one portion of the at least one peripheral surface of the bore from the interior of the electronic device enclosure to the exterior of the explosion-proof fluid transfer pump assembly to equalize pressure between the interior of the electronic device enclosure to the exterior of the explosion-proof fluid transfer pump assembly.
17. The explosion-proof fluid transfer pump assembly of claim 16, wherein the electronic device is selected from the group consisting of at least one of a motor, circuit board, processor, transformer, integrated circuit, communication device, thermal interface, sensor, rectifier, inductor, capacitor, electro-mechanical switch, wiring, connector, current limiting device, temperature limiting device, pressure sensor, piezo transducer, antenna, and EMI filter.
18. The explosion-proof fluid transfer pump assembly of claim 15, wherein the at least one peripheral surface of the bore has a cross-section selected from the group consisting of circular and polygonal, and wherein the at least one portion of the pin surface vent pin is selected from the group consisting of at least one of a planar, scalloped, spiraled channel, scored, circularly cross-sectioned, non-circularly cross-sectioned, and triangularly-shape cross-sectioned, that extends from a first end of the vent pin to a second end of the vent pin to form the at least one flame path between the at least one portion of the pin surface of the vent pin and the at least one portion of the at least one peripheral surface of the bore.
19. An electronic device assembly comprising: an electronic device enclosure; wherein the electronic device enclosure includes a wall separating an interior from an exterior of the electronic device assembly; wherein the electronic device enclosure includes a bore extending through the wall of the electronic device enclosure from the interior of the electronic device enclosure to the exterior of the electronic device assembly; wherein the bore is formed by at least one peripheral surface extending from the interior of the electronic device enclosure to the exterior of the electronic device assembly; a vent pin that extends through the bore; wherein the vent pin fills space within the bore and engages the at least one peripheral surface except that at least one portion of a pin surface of the vent pin is spaced apart from at least one portion of the at least one peripheral surface of the bore to form at least one passage between the at least one portion of the pin surface of the vent pin and the at least one portion of the at least one peripheral surface of the bore from the interior of the electronic device enclosure to the exterior of the electronic device assembly to equalize pressure between the interior of the electronic device enclosure to the exterior of the electronic device assembly.
20. The electronic device assembly of claim 19, wherein the electronic device assembly is selected from the group consisting of a flow meter, flow computer, and flow transmitter.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0019] The concepts described in the present disclosure are illustrated by way of example and not by way of limitation in the accompanying figures. For simplicity and clarity of illustration, elements illustrated in the figures are not necessarily drawn to scale. For example, the dimensions of some elements may be exaggerated relative to other elements for clarity. Further, where considered appropriate, reference labels may be repeated among the figures to indicate corresponding or analogous elements.
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[0037] Corresponding reference characters indicate corresponding parts throughout the several views. The exemplification set out herein illustrates embodiments of the fluid transfer pump assembly, and such exemplification is not to be construed as limiting the scope of the fluid transfer pump assembly in any manner.
DETAILED DESCRIPTION OF THE DRAWINGS
[0038] The figures and descriptions provided herein may have been simplified to illustrate aspects that are relevant for a clear understanding of the herein described devices, systems, and methods, while eliminating, for the purpose of clarity, other aspects that may be found in typical devices, systems, and methods. Those of ordinary skill may recognize that other elements and/or operations may be desirable and/or necessary to implement the devices, systems, and methods described herein. Because such elements and operations are well known in the art, and because they do not facilitate a better understanding of the present disclosure, a discussion of such elements and operations may not be provided herein. However, the present disclosure is deemed to inherently include all such elements, variations, and modifications to the described aspects that would be known to those of ordinary skill in the art.
[0039] An illustrative embodiment of the present disclosure provides a pump, such as an explosion-proof pump that, among other features, includes a bore or opening disposed through the housing enclosure of the pump from the exterior to the interior. This allows air communication from the outside environment and into the electronics and/or motor cavity within the enclosure. In addition, a pin, dowel, rod or other longitudinally-extending structure is fitted within the bore. The pin has a slightly different geometry than the bore so that at least one (or a plurality of) pathway(s) is(are) formed between the interior and exterior of the enclosure. In this way, the cross-section of the pathway or pathways may be precisely controlled and measured to determine whether they meet the standards for flame path certification. Plugging the bore or opening with a pin or other like longitudinally extending structure, having a slightly different cross-sectional profile than the bore or opening, creates flame paths that can be precisely measured, while at the same time providing air exchange between the interior and exterior of the enclosure. This makes any pressure gradient between the interior and exterior of the enclosure more difficult to generate. As such, water or other external fluid will not be as likely to be drawn into the enclosure.
[0040] In another illustrative embodiment, the pin vent assembly may also be employed on explosion proof junction boxes, etc., that are not a pump component. An example is the Cabinet junction box that contains a safety barrier or a meter electronics cavity.
[0041] A front perspective view of illustrative fluid transfer pump assembly 2 is shown in
[0042] Also shown in this view is pump enclosure 10 located adjacent motor enclosure 4 and capped with a rotor cover 26 via fasteners 28. In this illustrative embodiment, pump enclosure 10 encloses a rotor and vanes that are rotated by an electric motor located in motor enclosure 4. The rotating vanes draw up and expel fluid from inlet manifold portion 30 and out through outlet manifold portion 32. It is appreciated that other motive structures to move fluid may be used in place of rotating vanes. Aspects of the disclosure herein are not dependent on the motive means. Also shown in
[0043] Side, side perspective cutaway, and detail cutaway views of fluid transfer pump assembly 2 are shown in
[0044] As further depicted in
[0045] It is further appreciated in this view how pin vent assembly 42 is intended to be shrouded by switch assembly 8. This illustratively provides an additional layer of protection to pin vent assembly 42 from outside rain and the like. By having a cover panel 50 shrouding cavity 40 where pin vent assembly 42 is located, rain or other liquid that incidentally lands on fluid pump assembly 2 will not drain or seep into pin vent assembly 42. In an embodiment, cover panel 50 and the periphery of cavity 40 do not create an airtight seal so that air can still pass between the exterior of fluid pump assembly 2, cavity 40, and the interior of motor enclosure 4.
[0046] A perspective view of motor enclosure 4 is shown in
[0047] A detail cross-sectional view of raised ridge 44 and pin vent assembly 42 in cavity 40 is shown in
[0048] A side detail view of raised ridge 44 in cavity 40 is shown in
[0049] A side view and detail cross-sectional view of fluid pump assembly 2 are shown in
[0050] Various perspective views, and an end view of pin 48 are shown in
[0051] Various perspective views and a front view of another illustrative embodiment of a pin 78 is shown in
[0052] In another illustrative embodiment, the various perspective views and end view of pin 88, depicting another illustrative embodiment of such a pin, is shown in
[0053] In another illustrative embodiment, the pin extending into the bore does not need to be cylindrical. As shown in
[0054] Another illustrative embodiment demonstrates how the pin and the cavity do not need to have a cylindrical cross-section. Various perspective views, and an end view of pin 108, is shown in
[0055] As shown in the perspective view of
[0056] Another illustrative embodiment of the disclosure is shown in
[0057] Similarly, in yet another illustrative embodiment, a scored bore may be created by using a lamination of components, as shown in
[0058] Another illustrative embodiment of the present disclosure provides a pin vent assembly usable in a non-explosive environment where the flame-path component is not needed. Non-limiting examples of such devices that have non-explosive environments that may incorporate the disclosures herein include fluid pumps, flow meters, flow computer, and flow transmitter. In an illustrative embodiment, as shown in the perspective view of pump enclosure wall 170 of
[0059] The facing view of enclosure wall 170 is shown in
[0060] Cross-sectional views of enclosure wall 170 taken along lines A-A and B-B of
[0061] The view shown in
[0062] Electronic devices that may be housed in an enclosure may include, but is not limited to, at least one of A motor, circuit board, processor, transformer, integrated circuit, communication device, thermal interface, sensor, rectifier, inductor, capacitor, electro-mechanical switches, wiring, connectors, current and temperature limiting devices, pressure sensors, piezo transducers, antennas, EMI filters, and the like.
[0063] In the drawings, some structural or method features may be shown in specific arrangements and/or orderings. However, it should be appreciated that such specific arrangements and/or orderings may not be required. Rather, in some embodiments, such features may be arranged in a different manner and/or order than shown in the illustrative figures. Additionally, the inclusion of a structural or method feature in a particular figure is not meant to imply that such feature is required in all embodiments and, in some embodiments, may not be included or may be combined with other features. It should also be appreciated that, to the extent any subject matter disclosed in this non-provisional patent document conflicts with the priority application, the disclosure from this non-provisional patent document controls.