Open water pump
10527053 ยท 2020-01-07
Assignee
Inventors
- Hui Xu (Cixi, CN)
- Yangzhong Lian (Cixi, CN)
- Dengguang Zhu (Cixi, CN)
- Feng Zheng (Cixi, CN)
- Shuai Li (Cixi, CN)
- Zhongqun Mao (Cixi, CN)
- Yongding Zhu (Cixi, CN)
Cpc classification
F04D29/4293
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/242
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/245
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An open water pump comprises an upper casing, a lower casing, an impeller having a central shaft and a plurality of blades. Each blade has an upper portion and a lower portion. The upper casing has an upper chamber, the lower casing has a lower chamber. A plurality of inlets attached below and to a side of the lower casing, and a plurality of outlets attached to a side of the upper casing. At least the bottom portion of the lower portion of each blade which attached to the shaft gradually bends along a rotation direction of the impeller, and a ratio of a height of the lower portion of each blade to a height of the upper portion is between 1 and 5. The impeller can be allowed to draw water at a low water level, foam formed by washing liquid or food debris on the surface of water can be less likely to get into the impeller to influence the drawing of water, a sufficient amount of water can be drawn from the water inlets.
Claims
1. An open water pump comprising: an upper casing; a lower casing attached to the upper casing forming a chamber, the lower casing is formed with a step portion on which the upper casing being rested; an impeller disposed inside the chamber, the impeller having a central shaft with a middle and a top; a plurality of blades distributed uniformly on a periphery surface of the shaft, each blade extends from the top of the shaft toward the middle of the shaft, each blade being defined by a base line attached to the shaft, an upper arch connected to the base line, an upper fringe connected to the upper arch, a curving edge connected to the upper fringe and extending downwardly, and a lower edge connected to the curving edge, the lower edge being connected to the base line, each blade having an upper portion and a lower portion, the upper portion defined by the upper arch and upper fringe and extending perpendicularly away from the shaft, the lower portion defined by the curving edge and the lower edge; a plurality of inlets attached below and to a side of the lower casing; and a plurality of outlets attached to a side of the upper casing; wherein, the upper casing has an upper chamber for accommodating the upper portion of each blade, the lower casing has a lower chamber for accommodating the lower portion of each blade, the upper portion extending perpendicularly away from the shaft, the lower portion of each blade bends along a rotation direction of the impeller, a ratio of a height of the lower portion of each blade to a height of the upper portion is 3, and an edge line connects the upper fringe to the lower edge and the edge line is formed by a first section with a concave curve, a second section with a convex curve, and a third section with a concave curve.
2. The pump of claim 1, wherein a ratio of a radial dimension of the upper portion of the blade to a radial dimension of the lower portion is between 1 and 5.
3. The pump of claim 2, wherein the ratio of the radial dimension of the upper portion to a radial dimension of the lower portion is 4/3.
4. The pump of claim 2, wherein a space between the side of the lower portion of the blade and the lower casing is smaller than a space between the side of the upper portion and the upper casing.
5. The pump of claim 1, wherein the upper portion of each blade extends perpendicularly outward from the periphery surface of the shaft, the lower portion of each blade is attached to the shaft and bends along the rotation direction of the impeller, and a bent portion of the lower portion is distorted toward the rotation direction.
6. The pump of claim 1, wherein the upper portion of each blade extends perpendicularly outward from the periphery surface of the shaft, the lower portion of each blade is attached to the shaft and bends in a curved shape along the rotation direction of the impeller.
7. The pump of claim 6, wherein the lower portion of each blade is inclined upwardly from the lower edge toward the upper portion.
8. The pump of claim 1, wherein the shaft has an annular curved surface extending outward from the top of the periphery surface.
9. The pump of claim 8, wherein the upper arch has a same radius as the annular curved surface.
10. The pump of claim 8, wherein the shaft is hollow, the upper casing has a recess with a same curvature as the annular curved surface of the shaft and disposed at a position corresponding to the top of the shaft.
11. The pump of claim 1, wherein the bottom of the lower portion of each blade extends out of the lower casing from the lower chamber.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(8) To enable a further understanding of the present invention content of the invention herein, refer to the detailed description of the invention and the accompanying drawings below:
Embodiment 1
(9)
(10) The impeller 3 has a central shaft 31 with a middle and a top and a plurality of blades 32 distributed uniformly on a periphery surface of the shaft 31, each blade extends from the top of the shaft 31 toward the middle of the shaft 31. A lower end of the shaft 31 is connected to an output shaft (not shown) of a motor used for driving the water pump, so that the impeller 3 can be driven to rotate when the motor rotates.
(11) Each blade 32 has an upper portion 321 and a lower portion 322. The upper portion 321 and the lower portion 322 are integrated, the upper portion 321 is accommodated within the upper chamber 11 and the lower portion 322 is accommodated within the lower chamber 21, and a tail end of the lower portion 322 is preferably lower than a bottom surface of the lower chamber 21, that is, exposed downward from the lower chamber 21. Each blade 32 is defined by a base line 333 attached to the shaft 31, an upper arch 335 connected to the base line 333, an upper fringe 337 connected to the upper arch 335, a curving edge 339 connected to the upper fringe 337 and extending downwardly, and a lower edge 341 connected to the curving edge 339. The lower edge 341 is connected to the base line 333. The upper portion 321 is defined by the upper arch 335 and upper fringe 337 and the lower portion 322 is defined by the curving edge 339 and the lower edge 341. An edge line connects the upper fringe 337 to the lower edge 341 and the edge line is formed by three curved sections, 202, 204, 206. The section 204 has a concave curve with a radius R2, the section 206 has a convex curve with a radio R3, and the section 202 has a concave curve with a radius R1.
(12) The upper portion 321 of the blade 32 is extended along a shaft plane of the shaft 31, and perpendicular to the outer periphery surface of the shaft 31. The lower portion 322 of the blade 32, at least at the bottom, which attached to the shaft 31 gradually bends along the rotation direction of the impeller 3, and a bent portion of the lower portion is distorted toward the rotation direction. With such an arrangement, when the blades 32 are rotating, the bottom thereof can lift water upward, so that water can move upward from the space below the impeller 3 from the pathway located between the blades 32. Even if the impeller 3 is not in an enclosed space, and with the absence of a vacuum, water can be drawn and delivered to the top from the bottom along with the rotation of the impeller 3.
(13) In the present invention, a ratio of a height of the lower portion 322 of the blade 32 to a height of the upper portion 321 is preferably between 1 and 5, most preferably 3.
(14) The lower portion 322 of the blade 32 is longer than the upper portion 322, and the portion for drawing water is thus longer, so that the blade 32 can be allowed to draw water at a low water level, it is less likely to get foam formed by washing liquid or food debris on the surface of water into the impeller 3 to influence the drawing of water, a sufficient amount of water can be drawn from the water inlets.
(15) As described above, the lower portion 322 of the blade 32 is gradually bent at the bottom. It can be appreciated by those skilled in the art that this bending may occur at the whole lower portion 322, or the whole upper portion 321 and lower portion 322, i.e., the whole blade 32, as long as a gradually bent pathway is formed to lift the water flow upward from the bottommost end.
(16) The upper portion of the blade 32 has a greater radial dimension, while the lower portion 322 has a smaller radial dimension. When the water flow runs upward from the bottom of the impeller 3, the pathway of water is gradually widened to reduce the flow rate. A ratio of a radial dimension of the upper portion 321 to a radial dimension of the lower portion 322 is preferably 1 to 5, most preferably 4/3.
(17) The shaft 31 of the impeller 3 has an annular curved surface 311 extending outward from the top of the periphery surface. Thus, when the water flow moves toward the top from the bottom along with the rotation of the impeller 3, the flow rate is reduced, and furthermore, due to the annular curved surface 311, the flowing direction of the water flow can change to the transverse direction from the vertical direction at the top of the shaft 31, thus the annular curved surface 311 guides the water flow so that the water flow can also change the flowing direction without sealing the impeller 3 and get out from the upper chamber 11. Preferably, the top surface of the upper portion 321 of the blade 32 has an arc-shaped top surface with a same radius as the annular curved surface 311.
(18) A space between the upper portion 321 of the blade 32 and the upper chamber 11 is greater than a space between the lower portion 322 and the lower chamber 21. That is, a diameter of the upper chamber 11 is greater than a diameter of the lower chamber 21. Thus, when the water flow runs from bottom up, the upper chamber 11 slows down the water flow, so that the velocity of the water flow when arriving at the top of the impeller 3 is reduced in order to avoid ejecting the upper casing 1 covered on the impeller 3.
(19) Preferably, the shaft 31 is hollow, the upper casing 1 has a recess 12 with a same curvature as the annular curved surface 311 of the shaft 31 and disposed at a position corresponding to the top of the shaft 31, so that a vacuum area is formed between the top of the shaft 31 and the recess 12 of the upper casing 1 when the impeller 3 is rotating, in order to enable the top of the shaft 31 to exert a downward suction force onto the upper casing 1 to snap the upper casing 1. With such a structure, no additional fixing and connection structure is required between the upper casing 1 and the lower casing 2. What is only needed is to rest the upper casing 1 onto the lower casing 2. When the impeller 3 is rotating, the upper casing 1 will be snapped onto the lower casing 1, and the water flow runs out from a side of the upper chamber 11 within the upper casing 1 without ejecting the upper casing 1. Thus, the manufacturing and machining of water pumps are more convenient, and the assembly and disassembly of water pumps are easy. Alternatively, the upper casing 1 and the lower casing 2 can be connected to each other by a convenient and detachable connection mechanism, for example, a spinner, so that a water pump structure consisting of the upper casing 1, the lower casing 2 and the impeller 3 becomes more stable.
Embodiment 2
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Embodiment 3
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