This patent disclosure relates generally to cooling devices and, more particularly, to a cooling module for electrical components that generate heat during operation.
High performance electrical components can generate a significant amount of heat during operation. For example, machines having an electric drive can utilize power electronics such as insulated gate bipolar transistors (“IGBTs”) to provide high efficiency and rapid power switching. The IGBT modules and other electrical components associated with the electric drive can produce heat during operation. If not cooled adequately, this heat can adversely impact the reliability and performance capability of the associated electrical component.
To help ensure adequate operation and to increase the lifespan of IGBTs and other such electrical devices, a cooling unit or system may be provided to help dissipate the heat that is generated by such electrical devices. One method that is used to cool these types of electrical devices is mounting the electrical device to a cooling plate. The cooling plate may include upper and lower aluminum plates that define therebetween a passage through which coolant may flow. To help prevent the formation of air pockets between the upper plate and the base plate of the electrical device, a thermal interface material may be provided between the two plates. While the thermal interface material provides better thermal conductivity than an air pocket, the combination of the aluminum upper plate and the thermal interface material provides a higher thermal resistance than direct cooling arrangements where the flow of coolant is directly exposed to the base plate of the electrical device. Accordingly, optimal cooling may not be achieved.
Another example of a cooling unit that can be used to dissipate heat from electrical devices is disclosed in U.S. Pat. No. 7,360,582 (“the '582 patent”). The disclosed cooling unit includes a distributor for guiding liquid across a surface to be cooled. The distributor has a flow cell with a main flow channel formed as a meandering sequence of channel segments. The main flow channel also includes a bypass flow channel that allows the flow of fluid from the cell inlet to the cell outlet and interconnects the segments of the main flow channel.
The flow of cooling fluid through the cooling unit disclosed in the '582 patent and through other similar cooling units, however, does not provide optimal cooling performance. Moreover, the resistance to fluid flow that is generated by the pattern of channel segments can produce a significant pressure drop in the cooling fluid as it flows from the inlet to the outlet of the cooling unit. As will be appreciated, a higher pressure drop can lead to higher pump power requirements and a resultant increased system and operating costs. A higher pressure drop can also lead to higher stress on the various components of the cooling system associated with directing the coolant fluid through the system such as seals, gaskets and hoses.
In one aspect, the disclosure describes a cooling module for an electrical component. The cooling module includes an interior space for receiving a coolant. The housing has an inlet for directing coolant into the interior space and an outlet for removing coolant from the interior space. A flow directing member is arranged in the interior space of the housing, the flow directing member includes a plate that is divided into a plurality of discrete cells arranged parallel to each other. Adjacent cells are separated from each other by a dividing wall. Each cell has an inlet opening in the plate through which coolant is directed onto a surface of the plate and an outlet opening in the plate through which coolant is directed off the surface of the plate. Each cell has a plurality of fins arranged on the surface of the plate in a herringbone pattern. The plurality of fins includes a plurality of first fins arranged in a first row extending in a downstream direction from the inlet opening in the respective cell to the outlet opening in the respective cell and a plurality of second fins arranged in a second row extending in the downstream direction. Each first fin has an opposing second fin that together form a V-shape that is broken by a flow opening between the first and second fins. Each first and second fin is angled in a downstream direction as it extends from an edge of the cell towards a center of the cell.
In another aspect, the disclosure describes a cooling module for an electrical component. The cooling module includes a housing defining an interior space for receiving a coolant. The housing has an inlet for directing coolant into the interior space and an outlet for removing coolant from the interior space. A flow directing member is arranged in the interior space of the housing. The flow directing member includes a plate that is divided into a plurality of discrete cells arranged parallel to each other. Adjacent cells are separated from each other by a dividing wall having a plurality of openings therethrough such that the cells are fluidly connected to each other. Each cell has an inlet opening in the plate through which coolant is directed onto a surface of the plate and an outlet opening in the plate through which coolant is directed off the surface of the plate. Each cell has a plurality of fins arranged on the surface of the plate in a herringbone pattern. The plurality of fins includes a plurality of first fins arranged in a first row extending in a downstream direction from the inlet opening in the respective cell to the outlet opening in the respective cell and a plurality of second fins arranged in a second row extending in the downstream direction. Each first fin has an opposing second fin that together form a V-shape that is broken by a flow opening between the first and second fins. Each first and second fin is angled in a downstream direction as it extends from an edge of the cell towards a center of the cell. Each fin that is arranged next to one of the dividing walls is spaced from the respective dividing wall such that there is an opening between an end of the fin nearest the dividing wall and the dividing wall.
In yet another aspect, the disclosure describes a cooling assembly. The cooling assembly includes an electrical component including a base plate and a cooling module. The cooling module includes a housing having an open top. The housing is connected to the electrical component with the base plate extending over the open top of the housing. The housing defines an interior space for receiving a coolant. The housing has an inlet for directing coolant into the interior space and an outlet for removing coolant from the interior space. A flow directing member is arranged in the interior space of the housing. The flow directing member includes a plate arranged near the open top of the housing that is divided into a plurality of discrete cells arranged parallel to each other. Adjacent cells are separated from each other by a dividing wall having a plurality of openings therethrough such that the cells are fluidly connected to each other. Each cell has an inlet opening in the plate through which coolant is directed onto a surface of the plate and an outlet opening in the plate through which coolant is directed off the surface of the plate. Each cell has a plurality of fins arranged on the surface of the plate in a herringbone pattern. The plurality of fins includes a plurality of first fins arranged in a first row extending in a downstream direction from the inlet opening in the respective cell to the outlet opening in the respective cell and a plurality of second fins arranged in a second row extending in the downstream direction. Each first fin has an opposing second fin that together form a V-shape that is broken by a flow opening between the first and second fins. Each first and second fin is angled in a downstream direction as it extends from an edge of the cell towards a center of the cell. Each fin that is arranged next to one of the dividing walls is spaced from the respective dividing wall such that there is an opening between an end of the fin nearest the dividing wall and the dividing wall.
This disclosure generally relates to a cooling module that can be used to dissipate heat produced by an electrical component. With particular reference to
As will be appreciated by those skilled in the art, the present disclosure can also apply to other electrical components including transistor based products, such as thyristers, diodes, and metal-oxide-semi-conductor field-effect transistors (“MOSFETS”). Additionally, the cooling module 10 of the present disclosure is not limited to use in an electric drive system for a machine. For example, the cooling module 10 could also be used to cool one or more electrical components in an electric power generator.
Referring to
For helping direct the flow of coolant through the cooling module 10, a flow directing member 34 may be provided in the interior space 28 defined by the housing 20. As shown in
For directing the flow of coolant near the upper end of the housing 20 and adjacent the underside of the base plate 18 of the electrical component 12, an upper surface of the plate 36 of the flow directing member 34 may be divided into a plurality of individual cells 46 arranged in parallel. As best shown in
As noted above, dividing walls 52 can separate adjacent cells 46 from one another. In order to help balance the pressure between adjacent cells 46, each dividing wall 52 may have a plurality of openings 54 therein as best shown in
To facilitate the generation of vortices in the flow of coolant through the cells 46, each cell 46 can include a plurality of coolant mixing fins 56 that are arranged in a herringbone pattern. More specifically, each cell 46 may include a plurality of first fins 56 arranged in a row that extends in the downstream direction (i.e., the direction starting at the inlet opening and extending towards the outlet opening) and a plurality of second fins 56 arranged in a second row extending in the downstream direction. Each fin 56 in each row angles in the downstream direction as it extends from an edge of the cell 46 toward the center of the cell 46. In the illustrated embodiment, each fin 56 in the first row is paired with an opposing fin 56 in the second row that together form a V-shape. As best shown in
To provide further enhancement of the vortex mixing, the fins 56 may be arranged and configured such that the fins 56 do not intersect with the dividing walls 52 between the cells 46. More particularly, as shown in
As shown in
The present disclosure is applicable to the cooling of any type of electrical component. The cooling module of the present disclosure is particularly applicable to high performance electrical components, such as IGBTs and other electrical components used in an electric propulsion system for a machine or in an electric generator, that produce a significant amount of heat during operation. The enhanced cooling performance that is provided by, for example, the herringbone configuration of the flow directing fins, provides enhanced cooling performance that helps ensure that such electric components operate at their peak operating conditions and reliability. Additionally, the configuration of the cooling module, helps ensure a low pressure drop in the coolant between the inlet and outlet sides of the cooling module. As a result, less pump power may be required to move the coolant through the cooling module, which can lead to lower costs. The low pressure drop also reduces stress on the components associated with transferring the coolant to and from the cooling module, such as hoses, gaskets and seals.
It will be appreciated that the foregoing description provides examples of the disclosed system and technique. However, it is contemplated that other implementations of the disclosure may differ in detail from the foregoing examples. All references to the disclosure or examples thereof are intended to reference the particular example being discussed at that point and are not intended to imply any limitation as to the scope of the disclosure more generally. All language of distinction and disparagement with respect to certain features is intended to indicate a lack of preference for those features, but not to exclude such from the scope of the disclosure entirely unless otherwise indicated.
Recitation of ranges of values herein are merely intended to serve as a shorthand method of referring individually to each separate value falling within the range, unless otherwise indicated herein, and each separate value is incorporated into the specification as if it were individually recited herein. All methods described herein can be performed in any suitable order unless otherwise indicated herein or otherwise clearly contradicted by context.