PUMP-MOTOR ASSEMBLY FOR AN ENERGY STORAGE SYSTEM
20220044985 · 2022-02-10
Assignee
Inventors
Cpc classification
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F25D19/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/14
ELECTRICITY
F28D15/0266
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
In one aspect, a pump-motor assembly is provided outside of and adjacent to a storage container that stores a back-up energy storage unit. The pump-motor assembly includes a pump-motor that maintains a minimum pressure of a liquid coolant in a liquid coolant system that cools the back-up energy storage unit, and a housing that is completely enclosed, the housing containing the pump-motor, and having a removable access panel on one side thereof the enclosed structure, and an opening on another side thereof to the storage container.
Claims
1. A pump-motor assembly provided outside of and adjacent to a storage container that stores a back-up energy storage unit, the pump-motor assembly comprising: a pump-motor that maintains a minimum pressure of a liquid coolant in a liquid coolant system that cools the back-up energy storage unit; and a housing that is completely enclosed, the housing containing the pump-motor, and having a removable access panel on one side thereof the enclosed structure, and an opening on another side thereof to the storage container.
2. The pump-motor assembly of claim 2, wherein the housing is configured to receive air cooled by a heating, ventilation, and air conditioning (HVAC) unit in the storage container through the opening to the storage container.
3. The pump-motor assembly of claim 2, wherein the opening of the housing connects to an opening of the storage container by a duct.
4. The pump-motor assembly of claim 3, wherein one or more baffles are provided in one of the housing and the duct, to direct hot air out of the housing and into the storage container.
5. The pump-motor assembly of claim 3, wherein a baffle of the one or more baffles is a baseline baffle extending from a floor of the housing.
6. The pump-motor assembly of claim 3, wherein a baffle of the one or more baffles is a horizontal baffle extending from a side wall of the duct.
7. The pump-motor assembly of claim 3, wherein a baffle of the one or more baffles is an inclined baffle that is inclined at an angle relative to a horizontal plane.
8. The pump-motor assembly of claim 1, wherein the housing includes an openable drain port in a floor thereof.
9. An energy storage system, comprising: a storage container that stores a back-up energy storage unit, including one or more energy sources; a heating, ventilation, and air conditioning (HVAC) unit provided in the storage container to cool air in the storage container; a liquid cooling system that cools the back-up energy storage unit; and a pump-motor assembly provided outside of the storage container, the pump-motor assembly comprising: a pump-motor that circulates a liquid coolant in the liquid coolant system at a minimum pressure; and a housing that is completely enclosed, the housing containing the pump-motor, and having an opening on one side thereof that connects to an opening in the storage container.
10. The energy storage system of claim 9, wherein the housing is configured to receive air cooled by the HVAC unit from the storage container through the opening to the storage container.
11. The energy storage system of claim 9, wherein the opening of the storage container and the opening of the housing are connected by a duct.
12. The energy storage system of claim 11, wherein one or more baffles are provided in one of the housing and the duct, to direct hot air out of the housing and into the storage container.
13. The energy storage system of claim 12, wherein a baffle of the one or more baffles is a baseline baffle extending from a floor of the housing.
14. The energy storage system of claim 12, wherein a baffle of the one or more baffles is a horizontal baffle extending from a side wall of the duct.
15. The energy storage system of claim 12, wherein a baffle of the one or more baffles is an inclined baffle that is inclined at an angle relative to a horizontal plane.
16. The energy storage system of claim 9, wherein the housing includes an openable drain port in a floor thereof.
17. The energy storage system of claim 9, wherein the housing includes a removable access panel on another side thereof.
18. The energy storage system of claim 9, wherein the HVAC unit maintains a temperature of air in the storage container below 25° C.
19. An energy storage system, comprising: a back-up energy storage unit, including one or more energy sources; a storage container that stores the back-up energy storage unit; a heating, ventilation, and air conditioning (HVAC) unit that cools air in the storage container; a liquid cooling system that cools the one or more energy sources of the back-up energy storage unit; a pump-motor provided outside of the storage container, the pump-motor assembly being connected to the liquid cooling system and maintaining a minimum pressure of a liquid coolant in the liquid coolant system; and a housing containing the pump-motor, the housing being sealed from ambient air, and having a removable access panel on one side thereof the enclosed structure, and an opening on another side thereof that connects to an opening in the storage container, wherein cool air from the storage container flows into the housing, and hot air from the housing flows into the storage container.
20. The energy storage system of claim 19, wherein the opening of the storage container and the opening of the housing are connected by a duct having one or more baffles to direct hot air out of the housing and into the storage container.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0018] Both the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the features, as claimed. As used herein, the terms “comprises,” “comprising,” “having,” including,” or other variations thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements, but may include other elements not expressly listed or inherent to such a process, method, article, or apparatus. In addition, in this disclosure, relative terms, such as, for example, “about,” “generally, “substantially,” and “approximately” are used to indicate a possible variation of ±10% in the stated value.
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[0020] As shown in
[0021] With reference to
[0022] With reference to
[0023] With reference to
INDUSTRIAL APPLICABILITY
[0024] The battery storage system 100, and, in particular, the pump-motor assembly 118 of the present disclosure provides for efficient cooling of battery storage 104, to maintain the batteries 108 stored in the energy storage unit 104 within an operating temperature range, for a wide range of ambient temperatures. In particular, the pump-motor assembly 118 is located outside of the storage container 102, in the relatively small, enclosed, insulated housing 124, which reduces a load on the HVAC unit 110 of the battery storage system 100, as compared to pump-motor assemblies located within the storage container 102 or within relatively larger enclosures. Providing openings, namely, the opening 130 in the housing 124 and the opening 134 in the storage container 102, connected by the duct 132, allows for air in the storage container 102 that is cooled by the HVAC unit 110 to flow into the housing 124, and air in the housing 124, which is heated due to operation of the pump-motor 128, to flow into the storage container 102. Placement of the pump-motor 128 in the enclosed, insulated housing 124 protects the motor 144 of the pump-motor 128 from condensation building up on the windings as a result of high ambient temperatures and humidity, as well as from sand and debris. The relatively small size of the housing 124 of the pump-motor assembly 118 costs less than relatively larger housings. Further, providing the access panel 126 to the housing 124 provides for easy access for maintenance and servicing of the pump 142 and the motor 144.
[0025] When the pump-motor assembly 118 is in use, the pump-motor 128 is powered on and the pump 142 circulates the coolant through the cooling system 122, shown in
[0026] The fan cooled motor 144 of the pump-motor assembly 118 circulates hot air generated by the motor 144 into the air conditioned storage container 102 via the opening 130, the duct 132, and the opening 134. The pump-motor assembly 118 thus draws cooled air from the storage container 102 to cool air within the housing 124. By this arrangement, the HVAC unit 110 in the energy storage container 102 rejects, or transfers and removes, the heat generated by the motor 144. Air temperature within the storage container 102 may fluctuate or vary due to neat from the pump-motor 125 and the power electronics cabinet 106, and, therefore, the HVAC unit 110 manages the air temperature within the storage container 102 below about 25° C. to maintain operability of these and other elements. Air temperature within the power electronics cabinet 106 may fluctuate or vary due to hot or cold ambient air outside of the storage container, and heat from devices such as power electronics and other electrical equipment. Because the HVAC unit 110 maintains air temperature in the storage container 102 at around 25° C., a readily available, commoditized pump-motor can be used, without the need for more expensive, specialty pumps suited for extreme temperatures, for example. The relatively small size of the housing 124 of the pump-motor assembly 118 results in a small increase in load on the HVAC unit 110. The relatively small size of the housing 124 also reduces costs of material used to form the housing 124, and the costs of insulation for same. And, as noted above, the enclosed, insulated housing 124 restricts ambient air from entering the housing 124, while cool air from the storage container 102 circulates through the housing 124, thus preventing condensate from forming on the motor 144. In addition, the drain ports 150 provided in the floor 138 of the housing 124 allow for management of leaks, and, because the pump-motor assembly 118 is not located in the storage container 102, any such leaks are prevented from occurring in the storage container 102, which could damage the battery storage 104 and the power electronics cabinet 116. The removable access panel 126 allows for ease of maintenance and servicing of the pump 142 and the motor 144 from outside of the storage container 102, and without the need to enter the storage container 102.
[0027] By virtue of the pump-motor assembly of the present disclosure, lower cost pump-motors may be used, such as TEFC pumps, or outdoor duty pumps, without the need for specialty pumps, e.g., arctic duty pumps. In addition, by virtue of the pump-motor assembly being located in a relatively small, sealed, insulated enclosure adjacent to the storage container, efficient management of condensate and ventilation of the pump-motor assembly is possible, with a negligible increase in load on the HVAC unit, and with reduced costs for forming the insulated, enclosed housing of the pump-motor assembly.
[0028] It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed pump-motor assembly without departing from the scope of the disclosure. Other embodiments of the pump-motor assembly will be apparent to those skilled in the art from consideration of the specification and the accompanying figures. It is intended that the specification, and, in particular, the examples provided herein be considered as exemplary only, with a true scope of the disclosure being indicated by the following claims and their equivalents.