This application claims priority to Japanese patent application serial number 2019-044517, filed Mar. 12, 2019, which is hereby incorporated herein by reference in its entirety for all purposes.
Not applicable.
This disclosure relates generally to centrifugal pumps.
One type of centrifugal pump includes an impeller rotated by a motor and a housing defining a pump chamber therein. The impeller is housed in the pump chamber and includes a main plate having a substantially circular shape and a plurality of blades on the main plate. The housing has an inlet port and an outlet port that each provide fluid communication between the inside and the outside of the pump chamber. The inlet port extends upward from the pump chamber and is coaxially aligned with the impeller.
Japanese Laid-Open Patent Publication No. 2015-190321 discloses another type of centrifugal pump in which the inlet port of the housing is bent in an L-shape. In particular, an inlet passage within the inlet port is divided into a connection passage part and a main passage part. The connection passage part extends upward from the pump chamber. The main passage part is connected to an upstream end of the connection passage part at a right angle.
In one aspect of this disclosure, a centrifugal pump includes an impeller configured to be rotated about an axis of rotation in a rotational direction and a housing defining a pump chamber that houses the impeller therein. The housing includes an inlet passage and an outlet passage, each of which provides fluid communication between the pump chamber and the outside of the housing. The pump chamber has an inflow part at an upstream end thereof. The inflow part has an inflow end at an upstream end thereof and may have a hollow tapered shape with a width that continuously decreasing toward the inflow end. The inlet passage includes a connection passage part that may have a cylindrical shape coupled to the inflow end of the inflow part and a main passage part that may have a cylindrical shape connected to the connection passage part, so as to form a bent shape. A central axis of the main passage part is oriented parallel to a reference plane that includes a central axis of the connection passage part. The main passage part is configured such that a flow direction of a fluid parallel to the central axis of the main passage part is the same as at least one part of the rotational direction of the impeller in a plan view along the axis of rotation of the impeller.
In accordance with this aspect, the main passage part is configured such that a flow direction of fluid along the central axis of the main passage part is same as the rotational direction of the impeller in at least one place. Thus, when fluid flowing linearly in the main passage part enters the connection passage part, the fluid rotates in a same direction as the rotational direction of the impeller while flowing through the connection passage part. Accordingly, the fluid can smoothly flow from the connection passage part into the inflow part of the pump chamber. Accordingly, non-uniform distribution of the fluid on the impeller can be reduced, thereby improving the performance of the centrifugal pump.
For a detailed description of the preferred embodiments of the present teaching, reference will now be made to the accompanying drawings.
The following discussion is directed to various exemplary embodiments. However, one skilled in the art will understand that the examples disclosed herein have broad application, and that the discussion of any embodiment is meant only to be exemplary of that embodiment, and not intended to suggest that the scope of the disclosure, including the claims, is limited to that embodiment.
As previously described, Japanese Laid-Open Patent Publication No. 2015-190321 discloses a centrifugal pump in which the main passage part of the inlet is connected to the upstream end of the connection passage part of the inlet at a right angle. Consequently, a central axis of the main passage part is oriented perpendicular to a central axis of the connection passage part. Thus, fluid flowing through the main passage part tends to flow into the far side of the connection passage part. As a result, the volume of flow of the fluid proximal the far side of the connection passage part is typically greater than the volume of flow of the fluid proximal the near side of the connection passage part. This causes the fluid to enter the pump chamber in an imbalanced manner, such that the fluid is not dispersed uniformly over the impeller. Such lack of uniformity in the fluid distribution decreases the performance of the centrifugal pump. Therefore, there has been a need for an improved centrifugal pump.
A first embodiment will be described with reference to
As shown in
The housing 11 defines a pump chamber 17 in an upper portion thereof. The pump chamber 17 has a hollow short cylindrical shape and is coaxially aligned with the rotational shaft 15 of the motor section 14. The housing 11 is divided into an upper housing member 11a and a lower housing member 11b coupled to the upper housing member 11a. The pump chamber 17 is defined by the upper housing member 11a and the lower housing member 11b. The rotational shaft 15 of the motor section 14 penetrates the lower housing member 11b so as to protrude into the pump chamber 17.
The pump chamber 17 has an inflow part 18 positioned at a center of an upper portion of the pump chamber 17 and a volute part 19 disposed at an outer circumferential part of the pump chamber 17. The inflow part 18 has an inflow end 18a at an upper end thereof, such that fluid flows into the inflow part 18 via the inflow end 18a. The inflow part 18 has a tapered shape with a width that gradually decreases in cross-sectional area moving toward the inflow end 18a, i.e. toward the upstream side.
The upper housing member 11a includes an inlet port 22 at an upper portion thereof. The inlet port 22 is a tubular defining an inlet passage 23 therein, such that the pump chamber 17 is in fluid communication with the outside of the housing 11 via the inlet passage 23. Details of the inlet passage 23 will be described hereinbelow.
As shown in
As shown in
The rotational shaft 15 of the motor section 14 is inserted into the shaft hole 33 of the impeller 30 and fixably secured thereto. Thus, when the motor section 14 is running, the impeller 30 rotates with the rotational shaft 15. As shown in
When the motor section 14 is driven using electricity supplied from an external power source, the impeller 30 is rotated together with the rotational shaft 15, so that fluid, i.e. purge gas in this embodiment, is suctioned into the pump chamber 17 via the inlet passage 23. The purge gas is pressurized and then discharged into the outflow passage 28 via rotation of the impeller 30. The purge gas may be pumped by the centrifugal pump 10 in this manner.
As shown in
In the plane view of the centrifugal pump 10, the main passage part 24 is directly connected to the connection passage part 25, on one side of the connection part closer to the reference plane 25s (the rear side in
As shown in
As shown in
In accordance with the first embodiment, the central axis 24c of the main passage part 24 is not included in the reference plane 25s, the plane which includes the central axis 25c of the connection passage part 25, such that the flow direction F along the central axis 24c is substantially the same as the rotational direction R of the impeller 30 in at least one place, in the plan view of the centrifugal pump 10. Thus, when the fluid flowing in the main passage part 24 enters the connection passage part 25, the fluid rotates in a same direction S as the rotational direction R of the impeller 30 while flowing through the connection passage part 25. That is, while the fluid flows through the connection part 25, it has a rotational flow component. As a result, flow of the fluid can smoothly transition from the connection passage part 25 into the inflow part 18 of the pump chamber 17. Accordingly, non-uniform distribution of the fluid on the impeller 30 can be reduced, thereby improving the performance of the centrifugal pump 10.
As previously described, the main passage part 24 and the connection passage part 25 intersect at the sharp corner 26 on the one side closer to the reference plane 25s. The sharp corner 26 facilitates generation of the rotational flow in the connection passage part 25, thereby improving the performance of the centrifugal pump 10, in comparison with a case where the main passage part 24 gently transitions to the connection passage part 25, without the sharp corner 26.
A part of the main passage part 24 is in direct fluid communication with the inflow part 18. Thus, a part of the fluid flowing through the main passage part 24 can flow directly into the inflow part 18 of the pump chamber 17, without passing through the connection passage part 25. This reduces the moving distance of a portion of the fluid flow. Accordingly, in comparison with a case where the whole of the main passage part 24 is indirectly connected to the inflow part 18 via the connection passage part 25, the performance of the centrifugal pump 10 can be increased.
In the plan view of the centrifugal pump 10, the central axis 24c of the main passage part 24 is oriented parallel to the central axis 28c of the outlet passage 28. Thus, in comparison with a case where the central axes 24c, 28c are not oriented parallel with each other in the plan view of the centrifugal pump 10, a pipe can be easily connected to each of the main passage part 24 and the outlet passage 28, thereby improving the mountability of the centrifugal pump 10 on a vehicle, etc. In the plan view of the centrifugal pump 10, the inlet passage 23 may be oriented in the same direction as the outlet passage 28, e.g. leftward in
A second embodiment will be described with reference to
A third embodiment will be described with reference to
A fourth embodiment will be described with reference to
A fifth embodiment will be described with reference to
As stated above, the technique disclosed in this application is not limited to the above-described embodiments. For example, the centrifugal pump 10 may be used for pumping various fluids, such as air, other than the above described purge gas. The brushless motor of the motor section 14 may be replaced with a brushed motor. The centrifugal pump 10 may be composed of the pump section 12 only, such that the rotational shaft 15 is rotated by a driving source that is provided outside the centrifugal pump 10. The impeller 30 may be made from a metal or other material.
Number | Date | Country | Kind |
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2019-044517 | Mar 2019 | JP | national |