This application claims the priority of German Patent Application, Serial No. 10 2004 013 133.3, filed Mar. 17, 2004, pursuant to 35 U.S.C. 119(a)-(d).
The present invention relates, in general, to an electric machine with improved cooling system, and method of cooling an electric machine.
Nothing in the following discussion of the state of the art is to be construed as an admission of prior art.
Electric machines of high output power density require the provision of a special system to remove heat and thus are generally equipped with a cooling system by which air or other type of coolant is forced to circulate. German Pat. No. DE 43 11 431 C2 describes a cooling system with radial air channels which are realized by providing a stepped configuration of the active motor part in the form of sheets of different outer diameter or by forming radial grooves in the cooling housing which represents the passive motor part and surrounds the active motor part. Coolant flows in the axial center of the motor toward the radial cooling channels for inward conduction. From there, coolant is deflected outwards via particular guides.
Cooling systems can also have axial air guides in order to cool the stator in particular. These types of cooling systems are, however, unable to provide sufficient supply of unheated coolant to the winding heads which constitute hot areas in the active part of the motor, i.e. in the stator or rotor.
It would therefore be desirable and advantageous to provide an improved electric machine and an improved method of cooling an electric machine to obviate prior art shortcomings.
According to one aspect of the present invention, an electric machine includes a housing defining an axis and having a coolant port disposed in an axial center of the housing, and a cylindrical stator surrounded by the housing and having a stator body in the form of a plurality of stacked laminations, with the stator having opposite axial ends terminating in winding heads, wherein the housing and/or the stator is constructed to have cooling channels extending in an axial direction and communicating with the coolant port to allow a flow of coolant from the coolant port via the cooling channels to the winding heads, or in opposite direction from the winding heads via the cooling channels to the cooling port.
According to another aspect of the present invention, a method of cooling an electric machine having a cylindrical housing in surrounding relationship to a stator includes the steps of directing a coolant into the housing in an area of an axial center of the housing, guiding the coolant in both axial directions to opposite winding heads of the stator, and routing the coolant through the winding heads radially inwards.
According to still another aspect of the present invention, a method of cooling an electric machine having a cylindrical housing in surrounding relationship to a stator includes the steps of directing a coolant (e.g. air) through winding heads on both axial ends of the stator radially inwards, guiding the coolant to an axial center of the stator, and routing the coolant from an area of the axial center of the housing to the outside. This type of coolant system realizes a maximum cooling effect because coolant flows first past the hot points in the area of the winding heads and subsequently through the stator body via parallel paths from the driving and opposite ends to the axial center of the electric machine. The windings heads and thus the hot points are cooled effectively, while the coolant undergoes a minimum heating along the remaining cooling path. As a result of a cooling system according to the present invention, the motor is able to run as effectively and as efficiently as a motor that is equipped with a water cooling system. The coolant path of the inventive cooling system also contributes to a compact overall construction and results in material savings.
According to another feature of the present invention, the coolant port may include plural apertures which are spaced about a circumference of the housing. Thus, coolant can be introduced into or removed from the electric machine evenly about the circumference.
According to another feature of the present invention, the cooling channels may be formed by axial grooves in the housing or in the stator body. In this way, the provision of axial cooling channels can easily be realized.
According to another feature of the present invention, a ring-shaped disk may be disposed between each one of the winding heads and the housing for forcing coolant to flow through the winding heads. As a consequence, coolant not only flows around the outside of the winding heads but also provides an effective cooling of the interior of the winding heads.
According to another feature of the present invention, the housing has end surfaces which may be formed with further coolant ports radially inwardly of the winding heads. The provision of these further coolant ports enables a direct conduction of coolant to the winding heads to realize a maximum cooling effect. As an alternative, or in addition, it may also be conceivable to provide further coolant ports with radial throughflow on one of the axial ends of the housing radially outwards of the adjacent winding head. In this way, coolant is directed at least partly about the outside of the winding heads, when the ring-shaped disk seals the winding heads against the housing, and the coolant flow is forced through the winding head. As a result, coolant is able to flow effectively about the entire winding head. A further optimization may be realized when the further coolant ports are arranged immediately adjacent to the ring-shaped disks in axial direction. In this way, coolant is, in fact, forced to flow almost entirely around the winding heads.
As noted, the coolant flow may be realized in both directions, although the inflow of coolant immediately adjacent to the winding heads is currently preferred.
Other features and advantages of the present invention will be more readily apparent upon reading the following description of currently preferred exemplified embodiments of the invention with reference to the accompanying drawing, in which:
Throughout all the Figures, same or corresponding elements are generally indicated by same reference numerals. These depicted embodiments are to be understood as illustrative of the invention and not as limiting in any way. It should also be understood that the drawings are not necessarily to scale and that the embodiments are sometimes illustrated by graphic symbols, phantom lines, diagrammatic representations and fragmentary views. In certain instances, details which are not necessary for an understanding of the present invention or which render other details difficult to perceive may have been omitted.
Turning now to the drawing, and in particular to
The stator 3 further includes winding heads 4, which are located on both axial ends of the stator body 3a, and ring-shaped end covers 10, which close off the stator 3 and are secured to opposite ends of the housing 1. Provided radially inwards of the winding heads 4, the end covers 10 have each a central port 8 (
Depending on which of the cooling ports 5 and 8 is used as inlet and outlet, two cooling paths can be realized in the electric machine according to the present invention. in one cooling path, which is indicated in
Although not shown in detail, the gap 5 may also be realized by radial holes spaced about the circumference of the housing 1.
As shown in the lower half of
Turning now to
As is further shown in
As a consequence of the disks 6, the coolant flow is forced through the winding heads 4, when entering through coolant port 5 in the middle of the housing 1. In view of the gaps between the end covers 10 and the adjacent winding heads 4, coolant is able to flow around the winding heads 4 and exits the housing 1 through radial coolant ports 7 of the housing 1 in an area of the winding heads 4. The radial coolant ports 7 are formed by circumferential gaps, whereby the coolant can be forced to effectively flow completely about the respective winding heads 4, by providing the radial coolant ports as close as possible to the disks 6. The flow of coolant is indicated in
Referring now to
As shown in
While the invention has been illustrated and described in connection with currently preferred embodiments shown and described in detail, it is not intended to be limited to the details shown since various modifications and structural changes may be made without departing in any way from the spirit of the present invention. The embodiments were chosen and described in order to best explain the principles of the invention and practical application to thereby enable a person skilled in the art to best utilize the invention and various embodiments with various modifications as are suited to the particular use contemplated.
Number | Date | Country | Kind |
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10 2004 013 133.3 | Mar 2004 | DE | national |