Rupture resistant system
09672968 ยท 2017-06-06
Assignee
Inventors
- Florian Peter Pintgen (South Pasadena, CA, US)
- Paul Alfred Siemers (Clifton Park, NY, US)
- Malcolm Graham Smith (Haughton, LA, US)
Cpc classification
H01F27/14
ELECTRICITY
International classification
H01B3/24
ELECTRICITY
H05K7/20
ELECTRICITY
Abstract
A rupture resistant system, including a tank configured to increase an inner volume of the tank under increased pressure conditions, wherein the tank includes a component situated within the inner volume of the tank and susceptible to increasing pressure within the tank when under an electrical fault condition, a sidewall extending about the inner volume of the tank, and wherein the sidewall includes an interior surface and an exterior surface, a bottom wall coupled to the sidewall, and a tank cover coupled to the sidewall opposite the bottom wall, wherein the tank cover includes a first plate coupled to a second plate, wherein the second plate extends from the first plate, and the first plate extends over the sidewall and the second plate overlaps and couples to the exterior surface of the sidewall with a first joint.
Claims
1. A rupture resistant system, comprising: a tank configured to increase an inner volume of the tank under increased pressure conditions, wherein the tank comprises: a sidewall extending about the inner volume of the tank, the sidewall comprising an interior surface and an exterior surface; a bottom wall coupled to the sidewall; and a tank cover coupled to the sidewall opposite the bottom wall, wherein the tank cover comprises a first plate coupled to a second plate, wherein the second plate extends from the first plate, and the first plate extends over the sidewall and the second plate overlaps and couples to the exterior surface of the sidewall with a joint, the first plate and the sidewall being configured to flex outward via the joint to increase the inner volume of the tank; and a radiator coupled to the tank, the radiator comprising a first panel and a second panel defining an inner volume of the radiator, the first panel and second panel being configured flex outward to increase the inner volume of the radiator, wherein flexing of the sidewall, the first plate, the first panel, and the second panel together increases the inner volume of the tank and the inner volume of the radiator under pressure conditions that exceed a predefined limit.
2. The system of claim 1, wherein the first joint comprises a portion of the second plate directly welded to the sidewall.
3. The system of claim 1, comprising a flange coupled to the external surface of the sidewall, wherein the first joint comprises a weld between the second plate and the flange.
4. The system of claim 1, wherein the first plate does not contact the sidewall.
5. The system of claim 1, wherein the first plate and second plate are one-piece.
6. The system of claim 1, wherein the first plate and second plate connect to each other with a curved portion.
7. The system of claim 1, further comprising a component situated within the inner volume of the tank wherein the component comprises a transformer.
8. A transformer system, comprising: a transformer tank configured to house a transformer, wherein the transformer tank comprises: a sidewall extending about an inner volume of the transformer tank, wherein the sidewall is configured to surround the transformer, and the sidewall comprises an interior surface and an exterior surface; a bottom wall coupled to the sidewall; a tank cover coupled to the sidewall opposite the bottom wall, wherein the tank cover comprises a first plate and a second plate extending from the first plate, the first plate extends over the sidewall, and the second plate overlaps and couples to the exterior surface of the sidewall with a joint, the first plate and the sidewall being configured to flex outward via the joint to increase the inner volume of the tank; and a radiator coupled to the transformer tank, the radiator comprising a first panel and a second panel defining an inner volume of the radiator, the first panel and second panel being configured flex outward to increase the inner volume of the radiator, wherein flexing of the sidewall, the first plate, the first panel, and the second panel together increases the inner volume of the transformer tank and the inner volume of the radiator under pressure conditions that exceed a predefined limit.
9. The system of claim 8, comprising a header pipe connecting the radiator and the transformer tank.
10. The transformer system of claim 9, wherein the header pipe comprises a flow restrictor to control flow from the transformer tank to the radiator under normal operating conditions.
11. The transformer system of claim 8, wherein the first panel is coupled to the header pipe.
12. The transformer system of claim 11, wherein a spacer is attached to the first panel and the second panel.
13. The transformer system of claim 8, wherein the joint comprises a portion of the second plate that is directly welded to the exterior surface of the sidewall.
14. The transformer system of claim 8, comprising a flange coupled to the exterior surface of the sidewall, wherein the joint comprises a weld that couples the second plate to the flange.
Description
DRAWINGS
(1) These and other features, aspects, and advantages of the present invention will become better understood when the following detailed description is read with reference to the accompanying drawings in which like characters represent like parts throughout the drawings, wherein:
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DETAILED DESCRIPTION
(15) Embodiments disclosed herein include rupture resistant systems. In one embodiment, a rupture resistant system comprises a tank comprising a top member, a sidewall member, and a bottom member and a component situated within the tank and susceptible to creating increasing pressure within the tank when under a fault condition. At least one of the top, sidewall, and bottom members is connected to another of the top, sidewall, and bottom members in a manner so as to cause an increase in inner volume of the tank under increased pressure conditions. In another embodiment, a rupture resistant system comprises a tank, a radiator, and a header pipe connecting the tank to the radiator. The radiator is configured to increase an inner volume under increased pressure conditions. In still another embodiment, the above two embodiments are combined. More specific aspects of these embodiments are described below for purposes of example. Although transformer embodiments are described for purposes of example, the embodiments described herein are useful for systems wherein undesired pressures may occur in a tank and/or radiator. As used herein, singular forms such as a, an, and the include single and plural referents unless the context clearly dictates otherwise. For example, although a plurality of sidewall members are typically used, in some embodiments, a single side member may be used. Furthermore, the members need not be discrete such that, in some embodiments, a common sheet may be bent to serve as multiple members. The sheet may comprise materials such as, for example, steel, metal alloys, aluminum, and corrosion resistant materials such as polymers and thermoplastics.
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(17) Radiator 14 may be connected to tank 12 by header pipes 28. Header pipes 28 have diameters that are larger than conventional header pipe diameters and are sized to permit sufficient flow of gas from the transformer tank to the radiator under increased pressure conditions. Under normal operating conditions, increased header pipe diameters may reduce thermal performance. In one embodiment, header pipes 28 are provided with flow restrictors 30 to control flow from tank 12 to radiator 14. Flow restrictors 30 are configured to be displaced under increased pressure conditions to increase flow from tank 12 to radiator 14. In one example, the header pipes have diameters ranging from six inches to ten inches and having cross sections of four inches when flow restrictors 30 are in place to control flow. In another embodiment, the sum of the cross-sectional areas of the header pipes is adjusted by additionally or alternatively adjusting a number of header pipes. Flow restrictors may optionally be used in this embodiment as well.
(18) Radiator 14 comprises an inner panel 32 and an outer panel 34 connected to the inner panel with inner panel 32 being coupled to header pipes 28. Inner panel 32 and outer panel 34 flex outward to increase inner volume of radiator 14 under increased pressure conditions. In one embodiment, inner panel 32 and outer panel 34 are connected by a circumferential joint 36 that is strong enough to retain connection between the inner and outer panel when the inner panel 32 and the outer panel 34 flex outward. The circumferential joint 36 comprises a joint connecting the peripheries of the inner and outer panels. Spacers 38 may be attached between the inner and outer panels to maintain inner panel 32 and outer panel 34 in a spaced apart relationship.
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(26) The connections as described referring to
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(32) While only certain features of the invention have been illustrated and described herein, many modifications and changes will occur to those skilled in the art. It is, therefore, to be understood that the appended claims are intended to cover all such modifications and changes as fall within the true spirit of the invention.