The present invention relates to a volute for a pump; and more particularly relates to a pump having an improved volute design.
In the prior art, and consistent with that shown in
One disadvantage of the known volute design Vpa, e.g., like that shown in
In view of this, there is a need for a better double volute design.
The present invention provides a new volute design that reduces the radial load on the impeller by establishing an improved pressure balance through the operating flow range of a rotodynamic pump.
By way of example, and according to some embodiment, the present invention may be characterized by the total throat section area required by the volute not being distributed equally as in the conventional known double volute (see
The area of the two passages at the pump discharge is also balanced as a function of the differing rates of flow within these two passages.
It is also established so that the velocity at the end of these two passages, e.g., where they meet in the pump discharge, is substantially equal. In effect, the solution according to the present invention reduces the length of the passage of the upper cutwater furthest away from the pump discharge and increases the size of its associated passage.
Both these features improve the casting quality, reducing the potential of foundry defects while still providing a pressure balance and reducing the resultant radial load over the operating range of the pump.
Additionally, losses through the casing are reduced as a result of the reduction of fluid friction from the shorter passage and the ability to better match velocities of the two passages at the pump discharge. In effect, the present invention reduces the cost and improves the quality of the cast volute.
Moreover, in the case of a split case pump, where the volute is formed in two halves, the upper half is greatly simplified as it has no cutwater and the portion of the passage contained in it, thus reducing the cost of the core, simplifying the cleaning and the tooling required to manufacture the casing half, and reducing the cost to produce the casting.
According to some embodiment of the present invention may include, or take the form of, a volute for a pump, e.g., such as a double volute pump, having the following features:
The casing vane may be configured to form double volutes in the volute, configured with an upper cutwater farthest from the pump discharge defining an upper cutwater throat area and an end of passage for the upper cutwater, and also configured with a lower cutwater closest to the pump discharge defining a lower cutwater throat and a corresponding end of passage for the lower cutwater.
The upper cutwater throat area may be dimensioned to be greater than and not equal to the lower cutwater throat area so that the upper cutwater throat area and the lower cutwater throat area provide substantially equal flow velocity at both the upper cutwater and the lower cutwater in response to an angular sweep of the fluid being pumped.
The end of passage for the upper cutwater may be dimensioned with an upper cutwater passage area that is greater than and not equal to a corresponding lower cutwater passage area of the corresponding end of passage for the lower cutwater so that upper and lower cutwater passage areas at the pump discharge are balanced as a function of differing rates of flow of the fluid being pumped therein and so that the fluid being pumped from associated ends of the upper and lower cutwater passage areas meets at the pump discharge with a substantially equal velocity.
According to some embodiments, the upper cutwater and the lower cutwater may be radially displaced at an angle α that is in a range of between about 108° and about 110°.
Embodiments are also envisioned in which the upper cutwater and the lower cutwater may be radially displaced at an angle α that is substantially less than 180°, e.g., consistent with that set forth herein.
Embodiments are also envisioned in which the upper cutwater and the lower cutwater may be radially displaced at an angle α that is in a range of between 90° and 120°, e.g., also consistent with that set forth herein.
The volute may be configured as part of a double volute pump, e.g., that may include an impeller having impeller vanes and being arranged in one of the double volutes in the casing.
In effect, for the present invention, the total sum of both the upper and lower casing throats are similar to that of the conventional double volute in
Similar velocities are maintained at the throat section but are not necessarily equal. The net radial loads acting on the impeller are reduced by the maintenance of the velocities and the pressure balance with in the volute. The exit areas are also distributed in the fraction of the flow rate and are controlled to provide an equal velocity at the end of the passages in the pump discharge.
The drawing, which is not necessarily drawn to scale, includes the following Figures:
The casing vane CVl may be configured on the volute wall Vwall forming double volutes in the volute Vl and being configured with an upper cutwater C2 farthest from the pump discharge o defining an upper cutwater throat area labeled 2′ (in a circle) and an end of passage 4′ (in a circle) for the upper cutwater C2, and also configured with a lower cutwater C1 closest to the pump discharge o defining a lower cutwater throat labeled 1′ (in a circle) and a corresponding end of passage 3′ (in a circle) for the lower cutwater C1.
The upper cutwater throat area label 2′ (in a circle) may be dimensioned to be greater than and not equal to the lower cutwater throat area labeled 1′ (in a circle) so that the upper cutwater throat area labeled 2′ (in a circle) and the lower cutwater throat area labeled 1′ (in a circle) provide substantially equal flow velocity at both the upper cutwater C2 and the lower cutwater C1 in response to an angular sweep of the fluid being pumped.
The end 4′ of passage for the upper cutwater C2 may be dimensioned with an upper cutwater passage area that is greater than and not equal to a corresponding lower cutwater passage area of the corresponding end of passage labeled 3′ (in a circle) for the lower cutwater C1 so that upper and lower cutwater passage areas at the pump discharge are balanced as a function of differing rates of flow of the fluid being pumped therein and so that the fluid being pumped from associated ends of the upper and lower cutwater passage areas labeled 3′, 4′ (in respective circle) meets at the pump discharge o with a substantially equal velocity.
In
Moreover, embodiments are envisioned, and the scope of the invention is intended to include, using the upper cutwater C2 and the lower cutwater C1 radially displaced at an angle α that is at least substantially less than 180°, so that the fluid being pumped from associated ends of the upper and lower cutwater passage areas labeled 3′, 4′ (in respective circle) meets at the pump discharge o with a substantially equal velocity. Moreover, embodiments are envisioned, and the scope of the invention is intended to include, using the upper cutwater C2 and the lower cutwater C1 radially displaced at an angle α that is in a range of between 100° and 120°, so that the fluid being pumped from associated ends of the upper and lower cutwater passage areas labeled 3′, 4′ (in respective circle) meets at the pump discharge o with a substantially equal velocity. In other words, the scope of the invention is intended to include, embodiments having non-diametrically opposed radially displaced upper cutwater C2 and the lower cutwater C1, for example, that are not radially displaced at any specific angle α that is in the range of between about 108° and about 110°, but where the fluid being pumped from associated ends of the upper and lower cutwater passage areas labeled 3′, 4′ (in respective circle) meets at the pump discharge o with a substantially equal velocity.
By way of example, possible applications of the present invention may include the following:
Further still, the embodiments shown and described in detail herein are provided by way of example only; and the scope of the invention is not intended to be limited to the particular configurations, dimensionalities, and/or design details of these parts or elements included herein. In other words, one skilled in the art would appreciate that design changes to these embodiments may be made and such that the resulting embodiments would be different than the embodiments disclosed herein, but would still be within the overall spirit of the present invention.
It should be understood that, unless stated otherwise herein, any of the features, characteristics, alternatives or modifications described regarding a particular embodiment herein may also be applied, used, or incorporated with any other embodiment described herein. Also, the drawings herein are not drawn to scale.
Although the invention has been described and illustrated with respect to exemplary embodiments thereof, the foregoing and various other additions and omissions may be made therein and thereto without departing from the spirit and scope of the present invention.
This application is a continuation of U.S. Pat. Application 15/257,646, filed Sep. 6, 2016, which application claims benefit to Provisional Pat. Application Serial No. 62/213,739, filed 3 Sep. 2015. Both applications are hereby incorporated by reference in their entirety.
Number | Date | Country | |
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62213739 | Sep 2015 | US |
Number | Date | Country | |
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Parent | 15257646 | Sep 2016 | US |
Child | 18097645 | US |