Other features and advantages of the present invention will become apparent in the following detailed description of the preferred embodiment with reference to the accompanying drawings, of which:
Referring to
The casing 10 has a first end wall 11, a second end wall 12 opposite to the first end wall 11, a surrounding wall 13 interconnecting the first and second end walls 11, 12, a chamber 14 defined by the first and second end walls 11, 12 and the surrounding wall 13, and a shaft 15 extending outwardly of the casing 10 from the first end wall 11. The first end wall 11 has two through holes 111, while the second end wall 12 has one through hole 121.
The stator 20 is fixed in the chamber 14, and has a tubular sleeve 21 fixed to the first end wall 11, a coil-accommodating member 22 sleeved on the tubular sleeve 21, and a plurality of coils 23 wrapped around the coil-accommodating member 22.
The rotor 30 is mounted in the chamber 14, and is rotatable relative to the stator 20. The rotor 30 has a rotor shaft 31 disposed rotatably in the tubular sleeve 21 and connected to the second end wall 12, an end plate 32 extending outwardly and radially from the rotor shaft 31, an annular wall 33 extending axially from a peripheral end of the end plate 32 and surrounding the stator 20, and a plurality of magnets 34 provided on an inner wall face of the annular wall 33. The rotor shaft 31 has an output portion 311 extending outwardly of the casing 10 via the through hole 121.
The first bearing 40 is disposed between the second end wall 12 and the rotor shaft 31.
The second bearings 50 are mounted between the tubular sleeve 21 and the rotor shaft 31 in a spaced apart manner.
The cooling tube 60, as best shown in
With reference to
When the rotor 30 rotates relative to the stator 20, the rotor 30 rotates the wheel hub 220 through the first gear 230, the second gears 240, the ring gear 250, and the one-way clutch 260. During such rotation, the cooling fluid 70 enters the casing 10 through the inlet end 61 of the cooling tube 60, flows through the intermediate portion 63 of the cooling tube 60, absorbs the heat produced by the rotor 30 and the stator 20, and exits through the outlet end 62 of the cooling tube 60, thereby discharging the absorbed heat from the motor 100. Hence, the temperature in the casing 10 is effectively reduced, and the operating efficiency of the rotor 30 and the stator 20 is maintained.
From the aforementioned description, the advantages of the present invention can be summarized as follows:
Through use of the cooling mechanism provided in the motor 100, that is, flow of the cooling fluid 70 through the intermediate portion 63 of the cooling tube 60 that surrounds the rotor 30 and the stator 20 so as to absorb and discharge the heat produced by the rotor 30 and the stator 20, the temperature inside the casing 10 can be effectively reduced. In comparison with the conventional closed-type motor, the motor 100 of the present invention not only can prevent dust from entering the casing 10, but can also maintain a high level of operating efficiency even after long hours of operation.
While the present invention has been described in connection with what is considered the most practical and preferred embodiment, it is understood that this invention is not limited to the disclosed embodiment but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.
Number | Date | Country | Kind |
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095124117 | Jul 2006 | TW | national |