The present invention relates to a hydraulic unit.
A conventional hydraulic unit includes a hydraulic pump, a motor that drives the hydraulic pump, an oil cooler that is provided near the motor, and a cooling fan that cools the oil cooler (see Patent Literature 1). In this hydraulic unit, air blown out from the cooling fan cools the motor and the oil cooler disposed on the downstream side of the cooling fan.
Patent Literature 1: JP 2008-8252 A
There is a hydraulic unit having similar configuration as that of the above conventional hydraulic unit but configured such that wind direction of the cooling fan is opposite to that in the conventional hydraulic unit, so that the flow of air sucked into the cooling fan cools the motor and the oil cooler. At this time, in a case where the oil cooler has a header adjacent to a heat exchange unit, there is a problem that since the cooling fan directly sucks air from around the header of the oil cooler, part of the air sucked by the cooling fan does not flow around the motor, the volume of the cooling air that cools the motor decreases, and the cooling efficiency of the motor lowers.
Therefore, an object of the present invention is to provide a hydraulic unit that can suppress a decrease in cooling efficiency of a motor.
A hydraulic unit according to one aspect of the present invention includes
a hydraulic pump,
a motor that is configured to drive the hydraulic pump,
an oil cooler that is configured to cool hydraulic oil discharged from the hydraulic pump,
a cooling fan that supplies cooling air to the motor and the oil cooler, and
a shroud that is provided between the cooling fan and the oil cooler,
in which the oil cooler includes
the shroud includes a wall section that covers at least one of the pair of headers.
According to this configuration, in a case where the cooling fan sucks cooling air from around the motor and through the oil cooler, since the wall section of the shroud covers at least one of the pair of headers of the oil cooler, the wall section blocks a flow of air directly sucked into the cooling fan from around the header of the oil cooler without flowing around the motor. In addition, in a case where the cooling air blown out from the cooling fan is supplied to the motor side through the oil cooler, since the wall section of the shroud covers at least one of the pair of headers of the oil cooler, the wall section blocks the flow of air leaking from the header of the oil cooler. Therefore, compared with a case where a shroud does not include the wall section, the volume of cooling air which flows around the motor among the cooling air supplied by the cooling fan increases, and it is possible to suppress a decrease in cooling efficiency of the motor.
According to one embodiment, the hydraulic unit further includes
a controller that is disposed adjacent to the motor and controls the motor,
in which the controller includes
the shroud includes a guide section that is configured to guide part of the cooling air blown out from the cooling fan toward the heat sink.
In the above embodiment, the guide section of the shroud guides part of the cooling air blown out from the cooling fan toward the heat sink. Therefore, the cooling fan can cool the drive circuit in addition to the motor and the oil cooler.
According to one embodiment, the hydraulic unit further includes
a controller that is disposed adjacent to the motor and controls the motor,
in which the controller includes
the hydraulic unit further includes a louver that is provided between the oil cooler and the motor and that is configured to guide part of the cooling air blown out from the cooling fan toward the heat sink.
In the above embodiment, the louver guides part of the cooling air blown out from the cooling fan toward the heat sink. Therefore, the cooling fan can cool the drive circuit of the controller in addition to the motor and the oil cooler.
According to one embodiment, the hydraulic unit further includes
in which the motor cover has a shape that is adapted to a shape of the motor.
In the above embodiment, since the motor cover has the shape that is adapted to the shape of the motor, the cooling air supplied by the cooling fan flows along the shape of the motor. Therefore, the cooling air flowing away from the motor among the cooling air supplied by the cooling fan decreases. As a result, the volume of the cooling air flowing around the motor increases and a decrease in the cooling efficiency of the motor can be suppressed.
In one embodiment, the motor cover covers almost entire space between the oil cooler and the motor.
According to the above embodiment, since the motor cover covers almost the entire space between the oil cooler and the motor, in a case where the cooling fan sucks the cooling air from around the motor and through the oil cooler, the motor cover blocks the flow of air that does not flow around the motor but is directly sucked into the cooling fan from between the motor and the motor. In addition, in a case where the cooling air blown out from the cooling fan is supplied to the motor side through the oil cooler, the motor cover blocks the flow of the cooling air from the space between the oil cooler and the motor toward the outside of the motor cover. Therefore, the volume of cooling air supplied by the cooling fan and flowing around the motor can be increased, and a decrease in the cooling efficiency of the motor can be suppressed.
According to one embodiment, the hydraulic unit further includes
a motor cover that is provided. such that the cooling air supplied by the cooling fan flows around the motor and that the motor cover covers the motor,
in which the motor cover covers the heat sink.
In the above embodiment, since the motor cover covers the motor and the heat sink, the cooling air supplied to the inside of the motor cover by the cooling fan flows around the heat sink in addition to the motor and the oil cooler. Therefore, the cooling fan can cool the drive circuit of the controller in addition to the motor and the heat sink.
As apparent from the above, according to the present invention, the wall section of the shroud covers at least one of the headers of the oil cooler. Therefore, the volume of cooling air supplied by the cooling fan and flowing around the motor increases and a decrease in the cooling efficiency of the motor can be suppressed.
Hereinafter, a hydraulic unit according to an embodiment of the present invention will be described with reference to the accompanying drawings.
A hydraulic unit 1 according to the present embodiment supplies hydraulic oil to an external device such. as a machine tool.
Referring to
Referring to
Referring to
As illustrated in
Referring to
The shroud 70 includes a body section 71 having a rectangular shape and a wall section 72 having a rectangular shape. The body section 71 of the shroud 70 has substantially the same size as the heat exchange unit 42 of the oil cooler 40 and covers the heat exchange unit 42 of the oil cooler 40. A circular opening 71a is formed in a substantially central portion of the body section. 71 of the shroud 70. Referring also to
As illustrated in the enlarged view of
Referring to
The portion surrounded by the front edge of the flange section 86 of the motor cover 80, the stand 11, and the controller 50 has substantially the same size as that of the oil cooler 40 (see
As described above, the cooling fan 60 according to the present embodiment blows out air in the X direction.
When the cooling fan 60 is driven, cooling air is sucked into the cooling fan 60 from the rear through the inside of the motor cover 80. The cooling air flows around the motor 30 and the heat sink 52 of the controller 50, and thus cools the motor 30 and the drive circuit 51 of the controller 50. Thereafter, the cooling air flows through the heat exchange unit 42 of the oil cooler 40, cools the hydraulic oil, and is discharged to the outside from the opening 71a of the body section 71 of the shroud 70.
According to this configuration, the wall section 72 of the shroud 70 covers the header 41A of the oil cooler 40, and therefore blocks the flow of air directly sucked into the cooling fan 60 from around the header 41A of the oil cooler 40 without flowing around the motor 30. Therefore, the volume of cooling air that is supplied by the cooling fan 60 and flows around the motor 30 can be increased, and a decrease in the cooling efficiency of the motor 30 can be suppressed.
In the above embodiment, since the motor cover 80 has the shape that follows the shape of the motor 30, the cooling air supplied by the cooling fan 60 flows along the shape of the motor 30. Therefore, the volume of cooling air that flows around the motor 30 can be increased, and decrease in the cooling efficiency of the motor 30 can be suppressed.
According to the above embodiment, since the motor cover 80 covers almost the entire space between the oil cooler 40 and the motor 30, the motor cover 80 blocks the flow of air that does not flows around the motor 30 but is directly sucked into the cooling fan 60 from between the oil cooler 40 and the motor 30. Therefore, the volume of cooling air supplied by the cooling fan 60 and flows around the motor 30 can be increased, and a decrease in the cooling efficiency of the motor 30 can be suppressed.
In the above embodiment, since the motor cover 80 covers the motor 30 and the heat sink 52, the cooling air supplied to the inside of the motor cover 80 by the cooling fan 60 flows around the heat sink 52 in addition to the motor 30 and the oil cooler 40. Therefore, the cooling fan 60 can cool the drive circuit 51 of the controller in addition to the motor 30 and the oil cooler 40.
A hydraulic unit 1 according to a second embodiment of the present invention has a configuration identical to that of the first embodiment except for the direction in which the cooling fan 60 blows cooling air and the shape of the shroud 70. The cooling fan 60 according to the second embodiment blows out cooling air from the front to the rear.
Referring to
Referring to
According to this configuration, the guide section 174 of the shroud 170 guides the cooling air toward the heat sink 52. Therefore, since part of the cooling air supplied by the cooling fan 60 is guided to the heat sink 52, the cooling fan 60 can cool the drive circuit 51 in addition to a motor 30 and the oil cooler 40.
A hydraulic unit 1 according to a third embodiment of the present invention has a configuration identical to that of the second embodiment except that a louver 90 is provided, and will he described with reference to
Referring to
In the third embodiment, the louver 90 guides part of the cooling air blown out from the cooling fan 60 toward the heat sink 52 Therefore, the cooling fan 60 can cool a drive circuit 51 of a controller in addition to the motor 30 and the oil cooler 40.
The present invention has been described above with reference to the preferred first to third embodiments. However, the present invention is not limited to a specific embodiment, and various changes can be made within the scope of the gist of the present invention described in the claims.
For example, in the first embodiment, cooling air supplied by the cooling fan 60 flows from the front to the rear; however, the present invention is not limited thereto, and the cooling air may flow from the rear to the front.
In the first to third embodiments, the motor cover 80 includes a plurality of sides that form a polygon as viewed in the X direction. However, the shape of the motor cover 80 is not limited to the above shape, and may be another shape such as an arc shape that follows the shape of the motor 30.
In addition, in the first to third embodiments, the controller 50 is disposed on the stand 11. However, the present invention is not limited to this, and the controller 50 may be installed below the stand. In this case, the motor cover 80 may not be attached, or the stand 11 and the motor cover 80 may cover the motor 30.
1 Hydraulic unit
10 Hydraulic oil tank
11 Stand
20 Hydraulic pump
21 Suction pipe
22 Drain pipe
30 Motor
31 Fin
40 Oil cooler
41A, 41B Header
42 Heat exchange unit
42
a Tube
43 Return pipe
50 Controller
51 Drive circuit
52 Heat sink
60 Cooling fan
70 Shroud
71 Body section
71
a Opening
72 Wall section
72
a Bent section
80 Motor cover
81 First vertical section
82 Inclined section
83 First horizontal section
84 Second vertical section
85 Second horizontal section
86 Flange section
90 Louver
90
a First portion
90
b Second portion
170 Shroud
171 Body section
171
a Opening
172 Vertical wall
173 Horizontal wall
174 Guide section
Number | Date | Country | Kind |
---|---|---|---|
2017-178747 | Sep 2017 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2018/026860 | 7/18/2018 | WO | 00 |