The present invention relates to a dynamometer device in which a dynamo body is placed on a tank.
In a patent document 1, a dynamometer device for performing performance evaluation and a durability test by using, for example, an engine as a test body has been disclosed. In this dynamometer device, a dynamo body is placed on a tank for storing a cooling medium. The dynamo body and the tank are connected to each other by a pipe used for returning the cooling medium from the dynamo body to the tank. This pipe is connected to an inlet of the tank which is provided on the side part of the tank.
However, in the dynamometer device of the patent document 1, since a relatively long pipe is used for connecting the dynamo body and the tank which are located adjacent to each other in the vertical direction, there is possibility that an increase in pressure loss of the cooling medium passing through the pipe and an increase in the number of parts composing the pipe occur.
Patent Document 1: Japanese Patent Application Publication 2008-275431
In the present invention, a dynamometer device includes: a tank for storing a cooling medium; a dynamo body provided on the tank; and a pipe passing through an interface between the dynamo body and the tank, and extending into the tank from the dynamo body, the pipe returning the cooling medium from the dynamo body to the tank.
Consequently, the pipe passes through the interface between the dynamo body and the tank, and the outlets of the pipe open inside the tank.
According to the present invention, since the pipe passes through the interface between the dynamo body and the tank, it is possible to connect the dynamo body with the tank by using a relatively short pipe.
In addition, since the outlets of the pipe open inside the tank, parts connecting the outlets of the pipe with the tank can be omitted.
In the following, one embodiment of the present invention will be explained with reference to the drawings.
In
The dynamometer device 1 is equipped with a bed tank 3 for storing a cooling oil 2 as a cooling medium and a dynamo body 4 provided on this bed tank 3.
The dynamo body 4 is equipped with a long narrow dynamometer 5 formed in a substantially cylindrical shape and a plate-shaped dynamometer-side bed 6 on which this dynamometer 5 is placed. The dynamometer 5 accommodates a rotor, a stator, coils, permanent magnets and the like which are not shown in the drawings. The dynamometer-side bed 6 is formed in a flat bed shape having sufficient strength by using steel material, and, as shown in
The dynamometer 5 is placed on the top of the dynamometer-side bed 6 in a posture in which a rotation shaft 5a (
As shown in
As shown in
The tank-side bed 15 is also formed in a flat bed shape by using steel material, and has an external shape corresponding to the dynamometer-side bed 6. The middle part of the tank-side bed 15 has an opening part 16a having a substantially rectangular shape so as to open the upper surface side of the cooling oil reservoir 16. An upper surface 15A of the tank-side bed 15 is formed in a smooth flat surface. As shown in
In addition, in the end portion of the dynamometer 5 on the opposite side to the manifold 19, the oil discharge pipe 9 for returning the cooling oil 2 to the bed tank 3 is routed from the upper part of the dynamometer 5. That is, as shown in
In addition, as shown in
The dynamometer device 1 is configured by assembling the dynamo body 4, the bed tank 3, the oil discharge pipe 9 and the like. In the dynamometer device 1, the stacked dynamometer-side bed 6 and tank-side bed 15 substantially become an integrated bed. The dynamometer 5 is placed on the dynamometer-side bed 6 in a posture in which the rotation shaft 5a of the dynamometer 5 becomes parallel to the interface 23.
Next, with reference to
As the above, in the present embodiment, since the oil discharge pipe 9 passes through the interface 23, and extends into the bed tank 3, it is possible to connect the dynamometer 5 with the bed tank 3 through the relatively short oil discharge pipe 9. Consequently, pressure loss of the cooling oil 2 flowing through the oil discharge pipe 9 decreases. Moreover, space occupied by the oil discharge pipe 9 decreases, and thereby the size of the dynamometer device 1 becomes small.
In addition, in the present embodiment, since the oil discharge holes 24 as outlets of the oil discharge pipe 9 are opened inside the bed tank 3, parts connecting the outlets of the oil discharge pipe 9 with the bed tank 3 can be omitted. Therefore, the number of steps accompanied with the assembling of the dynamometer device 1 is reduced.
Moreover, in the present embodiment, in the oil of the cooling oil reservoir 16, the cooling oil 2 is discharged from the oil discharge holes 24 in the radial direction of the oil discharge pipe 9, and thereby the occurrence of oil smoke at the time of oil discharging can be suppressed. Consequently, oil leak from the connection part of the bed tank 3 can be suppressed.
In addition, in the present embodiment, since the cooling oil 2 at high temperatures after cooling the coils, the permanent magnets and the like is discharged near the bottom part of the cooling oil reservoir 16 through the oil discharge pipe 9, the high temperature cooling oil 2 is returned into the part where the cooling oil 2 at low temperatures is stored, and consequently, the occurrence of the oil smoke can be more surely suppressed.
Number | Date | Country | Kind |
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2016-118431 | Jun 2016 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2017/007344 | 2/27/2017 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2017/217021 | 12/21/2017 | WO | A |
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Number | Date | Country | |
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20190310145 A1 | Oct 2019 | US |