SEAL PLUG
20210341057 · 2021-11-04
Assignee
Inventors
Cpc classification
F16L55/1108
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29C45/7312
PERFORMING OPERATIONS; TRANSPORTING
F16J15/062
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16J15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Embodiments of the innovation relate to a seal plug which includes a plug body having a first sealing portion and a second sealing portion, an o-ring disposed about an outer periphery of the first sealing portion, and a set of threads disposed about an outer periphery of the second sealing portion. The second sealing portion defines a tool engagement portion.
Claims
1. A seal plug, comprising: a plug body having a first sealing portion and a second sealing portion; an o-ring disposed about an outer periphery of the first sealing portion; and a set of threads disposed about an outer periphery of the second sealing portion, the second sealing portion defining a tool engagement portion.
2. The seal plug of claim 1, wherein an outer diameter of the first sealing portion is less than a major diameter of the set of threads of the second sealing portion.
3. The seal plug of claim 1, wherein an outer diameter of the o-ring is less than a minor diameter of the set of threads of the second sealing portion.
4. The seal plug of claim 1, wherein the first sealing portion defines a plug stop configured to interact with a seal plug seat of a first fluid channel portion.
5. The seal plug of claim 1, wherein the outer periphery of the first sealing portion defines a channel configured to maintain a longitudinal positioning of the o-ring relative to the plug body.
6. The seal plug of claim 1, wherein the set of threads defined by the second sealing portion are configured as straight threads such that a major diameter of each thread is substantially equal along a longitudinal axis of the seal plug.
7. The seal plug of claim 1, wherein the tool engagement portion of the second sealing portion defines a hexagonal opening.
8. An injection mold, comprising: a first mold plate having a first set of mold elements; a second mold plate having a second set of mold elements, the second mold plate opposing the first mold plate; and a cooling assembly carried by at least one of the first mold plate and the second mold plate, the cooling assembly comprising: a fluid channel defined by the at least one first mold plate and second mold plate, and a seal plug disposed within the fluid channel, the seal plug comprising: a plug body having a first sealing portion and a second sealing portion, an o-ring disposed about an outer periphery of the first sealing portion, and a set of threads disposed about an outer periphery of the second sealing portion, the second sealing portion defining a tool engagement portion.
9. The injection mold of claim 8, wherein an outer diameter of the first sealing portion is less than a major diameter of the set of threads of the second sealing portion.
10. The injection mold of claim 8, wherein an outer diameter of the o-ring is less than a minor diameter of the set of threads of the second sealing portion.
11. The injection mold of claim 8, wherein the first sealing portion defines a plug stop configured to interact with a seal plug seat of a first fluid channel portion.
12. The injection mold of claim 8, wherein the outer periphery of the first sealing portion defines a channel configured to maintain a longitudinal positioning of the o-ring relative to the plug body.
13. The injection mold of claim 8, wherein the set of threads defined by the second sealing portion are configured as straight threads such that a major diameter of each thread is substantially equal along a longitudinal axis of the seal plug.
14. The injection mold of claim 8, wherein the tool engagement portion of the second sealing portion defines a hexagonal opening.
15. A method for assembly of a cooling assembly, comprising: inserting a seal plug into a fluid channel of a housing; advancing a first sealing portion of the seal plug into a first fluid channel portion of the fluid channel to engage an o-ring of the first sealing portion with a wall of the first fluid channel portion; and rotatably advancing a second sealing portion of the seal plug into a second fluid channel portion of the fluid channel to engage a plug stop of the first sealing portion with a seal plug seat of the first fluid channel portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] The foregoing and other objects, features and advantages will be apparent from the following description of particular embodiments of the innovation, as illustrated in the accompanying drawings in which like reference characters refer to the same parts throughout the different views. The drawings are not necessarily to scale, emphasis instead being placed upon illustrating the principles of various embodiments of the innovation.
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION
[0020] Embodiments of the present innovation relate to a seal plug, such as configured for use with a cooling assembly. For example, the seal plug includes collinearly arranged first and second sealing portions which, in combination, provide a substantially secure fluid seal which can withstand relatively large hydraulic pressures found in conventional cooling assemblies. Additionally, the seal plug is configured with a relatively low height profile which, when used as part of an injection mold, utilizes a minimal volume within the injection mold plates. As such, this configuration maximizes the volume available for injection mold cavities within the injection mold, thereby maximizing the number of molded parts which can be generated by the injection mold.
[0021]
[0022] In one arrangement, the cooling assembly 13 includes a set of fluid channels 14 defined by at least one of the first and second mold plates and which surround the molded articles 16. For example, the set of fluid channels 14 can include an inlet channel 14-1, flow channels 14-2 through 14-5, and an outlet channel 14-6. The inlet channel 14-1 is configured to provide cooling fluid from a fluid reservoir 18 to the flow channels 14-2 through 14-5 of the injection mold 10. The circulation channels 14-2 through 14-5, in turn, are configured to direct the cooling fluid about the outer periphery of the molded articles 16 and toward the outlet channel 14-6 which delivers the cooling fluid back to the fluid reservoir 18.
[0023] During a fluid channel manufacturing process, a manufacturer can mill the fluid channels 14 into the first and second mold plates, such as illustrated in
[0024]
[0025] The first sealing portion 24 is configured to form a fluid seal with the fluid channel 14. In one arrangement, the first sealing portion 24 of the seal plug 20 can provide a friction fit with a corresponding first fluid channel portion 28 of a fluid channel 14, as indicated in
[0026] To maintain a longitudinal position of the o-ring 30 relative to the plug body 22, the first sealing portion 24 can define a channel 34 which extends about a circumference of the first sealing portion 24. In one arrangement, with specific reference to
[0027] For example, with specific reference to
[0028] In one arrangement, interaction between the first sealing portion 24 and the fluid channel 14 can mitigate the ability for an assembler to over-tighten the seal plug 20 within the fluid channel 14. For example, with particular reference to
[0029] The second sealing portion 26 is configured to secure the seal plug 20 to the fluid channel 14. For example, with reference to
[0030] In one arrangement, the second sealing portion 26 is configured to enhance the fluid seal formed by the first sealing portion 24. For example, as illustrated in
[0031] With continued reference to
[0032] In one arrangement, the second sealing portion 26 defines a tool engagement portion 52 which provides for interaction with an insertion tool to install or remove the seal plug 20 from the fluid channel. For example, with additional reference to
[0033] As provided above, with the inclusion of both the first and second sealing portions 24, 26, the seal plug 20 is configured to provide a substantially secure fluid seal relative to a fluid channel 14. As such, the seal plug 20 can withstand relatively large hydraulic pressures while mitigating leakage of cooling fluid from the cooling assembly 13. Additionally, use of both the first and second sealing portions 24, 26 in a collinear arrangement provides the seal plug 20 with a relatively low height profile. As such, the seal plugs 20 mitigate the use of relatively long plug seals and provides additional space in an injection mold 10 for mold cavities, thereby maximizing the molded part yield per injection mold 10. Further, with inclusion of the channel 34 on the first second sealing portion 24, along with the relative difference in diameters of the first and second sealing portions 24, 26, the seal plug 20 can maintain the o-ring 30 on the first second sealing portion 24 and in contact with the first fluid channel portion 28 of the fluid channel 14 during operation. As such, the seal plug 20 enhances the ability to form a relatively tight fluid seal with the fluid channel 14.
[0034]
[0035] In element 102, an assembler inserts a seal plug 20 into a fluid channel 14 of a housing. For example, with reference to
[0036] Returning to
[0037] In element 106, the assembler rotatably advances a second sealing portion 26 of the seal plug 20 into a second fluid channel portion 42 of the fluid channel 14 to engage a plug stop 50 of the first sealing portion 24 with a seal plug seat 52 of the first fluid channel portion 28. For example, as the assembler rotates the seal plug 20 via the tool engagement portion 52, the threads 44 of the second sealing portion 26 engage the treads defined by the second fluid channel portion 42 and advances the first sealing portion 24 within the first fluid channel portion 28. As the plug stop 50 of the first sealing portion 24 contacts the seal plug seat 52 of the first fluid channel portion 28, such interaction limits further advancement of the seal plug 20 within the fluid channel 14, thereby mitigating over tightening of the seal plug 20 and potential damage to the seal plug 20 and/or the fluid channel 14.
[0038] With reference to
[0039] It is noted that the seal plugs 20 are described utilized with a cooling assembly 13 of an injection mold 10. Such description is by way of example only. It should be understood that the seal plugs 20 can be utilized to provide fluid sealing with any type of device. For example, the seal plugs 20 can be utilized with hydraulic devices to maintain hydraulic fluid within hydraulic fluid channels.
[0040] While various embodiments of the innovation have been particularly shown and described, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the innovation as defined by the appended claims.