POLYMERIC TANK FOR HOUSING POWER COMPONENTS
20200312518 · 2020-10-01
Inventors
- William Quintero Rozo (Bogotá - Toberín, CO)
- Samuel Carvajal Cerinza (Bogotá - Modelo Norte, CO)
- John Jaime Velez Rodriguez (Cota-Cundinamarca, CO)
Cpc classification
H01F27/04
ELECTRICITY
H01F27/06
ELECTRICITY
H01F27/361
ELECTRICITY
H01F27/002
ELECTRICITY
International classification
H01F27/06
ELECTRICITY
H01F27/04
ELECTRICITY
Abstract
A polymeric tank for housing power components in a dry or fluid filled environment is disclosed. A mounting receptacle and plug pair used to secure the power components within the interior walls of the tank. The mounting receptacle configured to be an integral part of the interior wall. A permeable shield is insertable within the interior walls of the tank to safeguard against electromagnetic radiation.
Claims
1. A tank for housing power components comprising: an integral polymeric housing having a bottom cover and a wall; a mounting receptacle integrally connected to the wall, the mounting receptacle having a channel formed above the interior surface of the wall; an insertable plug configured to mate with the channel; and a top cover connected to the housing.
2. The tank of claim 1, further comprising a permeable shield configured to be insertable within the housing.
3. The tank of claim 2, wherein the permeable shield comprises an opening configured to allow the mounting receptacle to be position within the opening.
4. The tank of claim 1 wherein the channel of the mounting receptacle is shaped in a complementary form to an end of the plug.
5. The tank of claim 1 wherein the mounting receptacle comprises two ridges integrally joined to the interior surface of the wall to form a channel.
6. The tank of claim 1 wherein the mounting receptacle is formed from the removal of material from the interior surface of the wall.
7. The tank of claim 1 wherein the housing is connected to a support strap to provide a means of attachment and to provide structural support to the tank.
8. The tank of claim 7, wherein the support strap further comprises at least one pole bracket.
9. The tank of claim 1 further comprising at least one top cover protuberance and at least one wall low voltage protuberance, the top cover protuberance being connected to a high voltage line and the low voltage protuberance being connected to a relatively lower voltage line.
10. The tank of claim 1 wherein the shield is comprised of two layers, one layer made of a polymeric material and the other layer made from a permeable metallic material.
11. A tank for housing power components comprising: an integral polymeric housing having a bottom cover and a wall; a mounting receptacle integrally connected to the wall, the mounting receptacle having a channel formed below the interior surface of the wall; an insertable plug configured to mate with the channel; and a top cover connected to the housing.
12. The tank of claim 11, further comprising a permeable shield configured to be insertable within the housing.
13. The tank of claim 12, wherein the permeable shield comprises an opening configured to allow the plug to mate with the channel of the mounting receptacle.
14. The tank of claim 11 wherein the channel of the mounting receptacle is shaped in a complementary form to an end of the plug.
15. The tank of claim 11 wherein the channel of mounting receptacle is formed by the removal of material from the interior surface of the wall.
16. The tank of claim 11 wherein the shield is comprised of a polymeric mold connected to a layer of permeable material.
17. A tank for housing power components comprising: an integral polymeric housing having a bottom cover and a wall; a plurality mounting receptacles integrally connected to the wall, the mounting receptacles having a channel formed above the interior surface of the wall; a plurality of insertable plug configured to mate with the channel; and a top cover connected to the housing.
18. The tank of claim 17 wherein the top cover comprises an integrated protuberance configured to allow for the connection of a bushing.
19. The tank of claim 17 wherein the exterior surface of the wall comprises an integrated protuberance configured to allow for the connection of a low voltage terminal.
20. The tank of claim 17 further comprising a permeable shield configured to be insertable within the housing.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
[0053] Reference will now be made in detail to the various embodiments of this disclosure, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers will be used throughout the drawings to refer to the same or like parts.
[0054] Shown in
[0055]
[0056] In one form of the present invention, walls 3 and the bottom cover 5 are preferably integrally made as a one piece unit. In the manufacture of the walls 3 and the bottom cover 5, it is anticipated that a mold be used during the manufacturing process to create one unitary piece. In this manner, the unitary construction will enhance the manufacture of a leak proof tank 2. The top cover 4 can be later attached to the upper rim of the walls 3 via various connection techniques such as mechanical fasteners, including but not limited to hinges, latches, detents, belts, screws, bolts, nuts, rivets, pins, adhesives, solvents and various welding techniques.
[0057] For example, the top cover 4 and the rim of the walls 3 can be joined by fusion bonding in which the top cover 4 and the rim of the walls 3 are juxtaposed and heat is applied (in various forms) to the joint between the top rim of the walls 3 and the top cover 4 in order to plasticize the two parts and then allowed to cool to form a bond. And yet still, the top cover 4, may be joined to the rim of walls 3 by solvent bonding, vibration and ultrasonic welding, adhesive welding, and the like. Note that the joining of any part of the tank 2 may be joined by any of the above techniques or any other technique. The choice of the means for joining the top cover 4 with the rim of walls 3 will in large part be based on the anticipated environment and expected operational characteristics that may necessitate the selection of a hermetically sealed or dry type housing.
[0058] For example, if it is anticipated that subsequent access to the internal active components of the transformer will be needed, reversible means should be considered, such as bolts and other mechanical fasteners referenced above which can be removed and then re-installed again. As shown in
[0059] In a preferred method of securing the top cover 4 and the tank 2, a compression belt 30 either alone or in combination with other fastening means such as the nuts 35 and bolts 36 shown in
[0060] In an alternative design, top cover 4 and walls 3 are manufactured as an integral unit, and whereby the power component such as the content of the distribution transformer 1 is placed on top of the bottom cover 5. Thereafter the top cover 4 and the walls 3 as a unit are placed over the power components and the bottom cover 5 and the bottom rim of the walls 3 are then joined in similar fashion to various joining techniques referenced above or as known to those skilled in the art. This alternative however, is more applicable to designs which incorporate lighter power components that are more maneuverable within the housing walls 3 and/or which require a dry type housing.
[0061] As further shown in
[0062] Alternatively, the high voltage bushings 6 may be made integral with the top cover 4. More specifically, the high voltage bushings 6 may be set within a mold used to create the top cover 4. Plastic type material may be injected within the mold to engulf a portion of the lower part of the high voltage bushing 6. The terminals at either end of the high voltage bushings are not covered by the plastic like material. In this manner, replacement of the high voltage bushings 6 and the top cover 4 can be completed by the substitution of an already installed and integrally formed high voltage bushing 6 and top cover 4.
[0063] To minimize, the potential for electrical discharge between the high voltage bushings 6, the protuberances 11 and high voltage bushings 6 are angled away from each other. The protuberances 11 are integrally designed with the top surface of the top cover 4 to be manufactured in a slanted orientation.
[0064] On the outer surface of walls 3, one or more side mounts 12 may be made integral to the walls 3. The side mounts 12 are preferably made of similar material to walls 3, although depending on the size and weight of the components within the tank 2, the side mounts 12 can be made of or reinforced with metal with preferably an insulating coat around the outer surface of the side mounts 12. In
[0065] These side mounts 12 function as a means of transport and means of installing the distribution transformer 1. Moreover, they may also function as a means of further securing the distribution transformer 1 in place by using the side mounts 12 as an attachment point for attaching a securing line between the distribution transformer 1 and a pole.
[0066] In addition to the high voltage bushings 6, the outer surface of the walls 3, may accommodate one or more low voltage terminals 9 (secondary terminals) for connection to a low voltage power line used to feed power to a consumer. The low voltage terminals 9 may be positioned anywhere on the outer surface of the walls 3, although by convention and under certain circumstances in compliance to local regulatory standards, these low voltage terminals 9 are preferably placed at the front of the distribution transformer tank 2 and at sufficient distances from each other so as to render access to these low voltage terminals 9 to be in a safe and accessible manner.
[0067] It should be noted in one embodiment of the present invention, the connection point of the low voltage terminals 9 with the tank 2 occurs by way of a threaded protuberances 20. As shown in
[0068] Alternatively, the protuberance 20 may comprise a socket within the opening of protuberance 20. The socket may be made of metal and configured to mate with the outer lower surface of a low voltage terminal 9 as are known in the industry. The mating of the low voltage busing 9 and protuberance 20 are may be of the type known as plug and socket bushings. The bushings 6 and low voltage terminals 9 may be connected to the top cover 4 and walls 3 by any of the above connecting techniques such as threads, flanges and plug and sockets. Moreover, the low voltage terminals 6 may likewise be molded into the walls 3 as were described above with reference to the bushings 6 and protuberances 11.
[0069] Pole brackets 13 (see
[0070] Shown in
[0071] Shown in
[0072] In a preferred embodiment the support strap 7 is made from preferably a metal such as steel and coated with an insulating layer such as silicone, plastic, or resin. The coating is intended to protect the supporting strap 7 from conducting a current and from the environment. Alternatively, and if the weight of the components to be included in the tank 2 is not excessive, the support strap 7 may be made of a non-conductive, non-corrosive, and non-magnetic material such as the polymers referenced above with respect to the composition of the tank 2. Should the support strap 7 be made of the same material as that of the tank 2, the support strap 7 is preferably made integral with the tank 2.
[0073] The support strap 7 may be installed by inserting the end of a vertical leg 23 into a slot 26 of a back stop 27. The back stop 27 may be made of metal or any other material capable of securing the end of the vertical leg 23. In
[0074] The horizontal leg 24 of the support strap 7 may likewise be secured to the bottom cover 5, by the use of any of the fastening means referenced above. Alternatively, the bottom cover 5 may include a bottom cover projection 28 that enters a hole 32 or opening in the horizontal leg 24 of the support strap 7. The bottom cover projection 28 is preferably engaged to the hole 32 of the horizontal leg 24 in a friction fit manner. If other support straps 7 are used, the length of bottom cover projection 28 may need to be extended to accommodate additional support straps 7.
[0075] In an alternate embodiment, the tank 2 may be supported by more than one support strap 7, placed about the circumference of the bottom cover 5. For example, a second support strap 7 may be positioned at 90 degrees to the left or right of the support strap 7 shown in
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[0078] The mounting receptacle 14 and the plug 15 serve two primary functions. During a preferred method of installation of the power components, the bottom cover 5 and the walls 3 already contain the power components to be enclosed. The plug(s) 15 are thereafter inserted within channel(s) 16 and are lowered into place such that the longitudinal sides of the plugs 15 either contact or almost contact the power components. Under these circumstances, the power components, may move slightly or not at all. Depending on the clearance or spacing available between the channels 16 and the power components, the plugs 15 may need to be inserted with minimal effort or with some applied force. In some cases, the plugs may be pounded with a hammer to ensure a snug fit. In such a manner the plug(s) 15 and mounting receptacle(s) 14 serve to properly secure the power components into the distribution transformer housing.
[0079] Alternatively, the plugs 15 may be attached to the power components before installation into the tank 2. The plugs 15 are positioned along the exterior surface of the power components and may be attached to frames or supporting structures of the power components. In such a manner, the mounting receptacles 14 and the plugs 15 not only serve as a means for securing the power components but also, serve as a means for guiding the installation of the power equipment within the walls 3 and bottom cover 5. The plugs 15 are positioned into corresponding channels 16 and lowered. Once installed, the mounting receptacle 14 and plug 15 serve to lock in place such power components to minimize or prevent movement. Accordingly, such an arrangement tends to minimize or prevent the potential hazard of having active power components coming into contact with each other.
[0080] Embodiments of the mounting receptacle 14 and plug 15 pairs are shown in
[0081] Complementary to the mounting receptacle 14 is a corresponding mating plug 15. The plug 15 may take the form of various shapes depending on the desired function. (see
[0082] The plug 15 is in an alternate embodiment connected to the winding 22, core 21, or other power component by attaching the plug 15 to a frame, mandrel or support structure attached to the power components, or some other device which can support and connect the plug 15 to the frames or supporting structures of the power components of the distribution transformer 1. As a consequence, the pre-attached plugs 15 to the power components may function not only as a securing means, but a means to guide in the placement or installation of the power components in the tank 2.
[0083] To secure the power components in place, the outer surface of the plug 15 should substantially correspond to the inner mating surface of channel 16 between ridges 29 to create a locking fit between the plug 15 and the mounting receptacle 14. As shown in
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[0085] Alternatively, and as shown in
[0086] Shown in
[0087] The shield 18 in
[0088] In another embodiment, and as shown in
[0089] The shield 18 in
[0090] In a preferred embodiment of the invention, shield 18 is preferably comprised of slits 19 corresponding to the number of mounting receptacles 14. In the embodiment shown in
[0091] The present disclosure provides, to one of ordinary skill in the art, an enabling description of several embodiments and/or inventions. Some of these embodiments and/or inventions may not be claimed in the present application, but may nevertheless be claimed in one or more continuing applications that claim the benefit of priority of the present application.
[0092] The foregoing description discloses only exemplary embodiments of the invention. Modifications of the above disclosed embodiments which fall within the scope of the invention will be readily apparent to those of ordinary skill in the art. For example, although the examples discussed above are illustrated for a power transmission and distribution market, embodiments of the invention can be implemented for other markets.
[0093] Accordingly, while the present invention has been disclosed in connection with exemplary embodiments thereof, it should be understood that other embodiments may fall within the spirit and scope of the invention, as defined by the following claims.