Pump
20220178380 · 2022-06-09
Assignee
Inventors
Cpc classification
F05D2300/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/4286
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A pump housing comprises a circumferential wall forming an outer wall of the pump housing; a pump casing which connects to the circumferential wall on a first outer side to form a first chamber, the pump casing comprising a central opening to form an axial supply of the pump housing for material to be pumped; and pressurizing means to pressurize the first chamber.
Claims
1. A pump housing comprising: a circumferential wall forming an outer wall of the pump housing; a pump casing which connects to the circumferential wall on a first outer side to form a first chamber, the pump casing comprising a central opening to form an axial supply of the pump housing for material to be pumped; and pressurizing means to pressurize the first chamber.
2. The pump housing of claim 1, further comprising a shaft cover which connects to the pump housing on a second outer side to form a second chamber, and pressurizing means to pressurize the second chamber.
3. The pump housing of claim 1, wherein the chamber comprises a predefined volume.
4. The pump housing of claim 3, wherein the predefined volume of the chamber is constant along its entire length.
5. The pump housing of claim 4, wherein the predefined volume is defined by a first section and a second section to allow a pressurized fluid therein.
6. The pump housing of claim 5, wherein the first section and second section are connected such that the pressure along the predefined volume is equally distributed.
7. The pump housing of claim 5, wherein the predefined volume of the first section is different than the predefined volume of the second section.
8. The pump housing of claim of claim 1, further comprising a plurality of reinforcing ribs positioned outward from the pump casing and radially with respect to the central opening.
9. The pump housing of claim 8, wherein the ribs are integral with the pump casing.
10. The pump housing of claim 1, wherein the pump casing and/or the shaft cover are connected to the circumferential wall with fastening means.
11. The pump housing of claim 1, wherein the pressurizing means comprises one or more lines which can supply pressurized fluid to the first chamber and/or the second chamber.
12. The pump housing of claim 11, wherein the one or more lines extend through the shaft cover and/or the pump casing.
13. The pump housing of claim 12, wherein the fluid supplied is flushing liquid.
14. The pump housing of claim 1, wherein the pump casing is a brittle material.
15. The pump housing of claim 1, wherein the pressurizing means pressurizes the first chamber and/or the second chamber to a pressure between a pump pressure and a pressure outside of the pump.
16. The pump housing of claim 15, wherein the pressurizing means pressurizes the first chamber and/or the second chamber to about 80% of the pump pressure.
17. The pump housing of claim 1, wherein the circumferential wall is made of a first material and the pump casing and/or the shaft cover is made of a second material.
18. (canceled)
19. A method of forming a pump housing with a circumferential wall, a pump casing and a shaft cover, the method comprising the steps of: a) connecting the pump casing to the circumferential wall so that a first chamber is formed between and outer first side of the circumferential wall and the pump casing; and b) pressurizing the first chamber.
20. The method of claim 19, wherein before or after the step b), the method comprises the step of: c) connecting the shaft cover so that a second chamber is formed between an outer second side of the circumferential wall and the shaft cover; and pressurizing the second chamber.
21. The method of claim 19, wherein the steps of pressurizing the first chamber and/or the second chamber comprises providing a pressurized fluid to the first chamber and/or the second chamber.
22.-25. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION
[0022]
[0023] Pump 10 includes pump housing 12 in the shape of a spiral casing. The pump housing 12 comprises a centrifugal section 50 and an outlet section 52, including an outlet 15. As can be appreciated in
[0024] The circumferential wall 14 comprises internal curved parts A, which are subjected to high stresses due to the turbulence flow of the slurry, when in operation. By having the small radius of the internal curved parts A, the turbulence flow can be very high, but due to the first pressure chamber 36 and/or the second pressure chamber 38, the casing and circumferential wall stresses are significantly reduced.
[0025] The skilled person will appreciate that fluid can be inserted into the chambers 36, 38 by pressurizing means (e.g. a conduit, hose, etc.) that are securely connected to or part of the fluid lines 40. The pressurizing means comprise suitable material to allow the pressurized fluid to flow through it without having any deformation problems. The fluid can be any suitable fluid, such as water.
[0026] As can be appreciated in
[0027] Pump casing 16 is connected to first side 42 of circumferential wall 14 through fastening means 34. Line 40 connects through pump casing 16 to first pressure chamber 36. Ribs 17 connect to pump casing 16 and can be formed integrally with pump casing or can be formed separately and connected to pump casing 16. Shaft cover 18 is connected to second side 44 of circumferential wall 14 through fastening means 34. Line 40 connects through shaft cover 18 to second pressure chamber 38. The connections between shaft cover 18 and circumferential wall 14 and/or between pump casing 16 and circumferential wall 14 can include seals, for example o-ring seals. While fastening means 34 are shown as bolts, in other embodiments, they can be other fastening means, for example, clamping means.
[0028] The pressure chambers 36, 38 are filled with pressurized fluid through fluid lines 40. This pressurized fluid can be provided, for example, from flushing water for pump 10. The fluid in pressurized chambers 36, 38 can be adjusted to a pressure between the pressure inside pump 10 and the pressure outside of pump 10, for example 80% of the pressure inside pump 10. As the flushing water pressure substantially corresponds to the pump pressure, the flushing water can be reduced in pressure before it flows to pressure chambers 36, 38. This can be done, for example, by a pressure reducing module, such as the one shown in WO2012/002812, which is hereby incorporated by reference.
[0029] Pump casing 16 and shaft cover 18 provide strength to pump housing 12. Pump casing 16 has a central opening which may form axial supply 23 or may surround axial supply 23. As shown in this embodiment, pump casing 16 may comprise a stepped up part 19 and reinforcing ribs 17. The pump casing 16 may also be referred to as the suction cover or suction lid.
[0030] Shaft cover 18 (or shaft lid) is connected to circumferential wall 14 opposite pump casing 16 and has a central opening to allow drive axis 32 of a pump motor to be connected to impeller 22.
[0031] During operation, drive axis 32 and impeller 22 rotate about rotation axis R. By action of impeller 22, the mass to be pumped is forced radially outward into pump housing 12 by centrifugal forces. The mass is then entrained in the circumferential direction of pump housing 12 toward the tangential outlet spout 15 of pump housing 12. The pumped mass which, after leaving impeller 22, is entrained in the circumferential direction of pump housing 12 flows largely out of the tangential outlet 15 of pump housing 12. A small amount of the entrained mass re-circulates, i.e., flows along the junction between the inner surface of tangential outlet 15 and the inner surface of the circumferential wall 14 (known as the cutwater) and back into the pump housing 12.
[0032] When pumps such as pump 10 are used for dredging, they are subjected to extreme wear due to the rough content of the dredge, especially impeller 22 and circumferential wall 14. Thus, wear-resistant material is typically used in forming these parts. These wear-resistant materials are typically very brittle, for example, white cast iron such as MAXIDUIR®. The stresses can cause the brittle material to break due to the pressure difference inside and outside pump 10. To protect against this in past systems, a full outer housing was added to the pump, as shown in EP1906029B1. However, this required a lot of extra material in order to construct a full outer housing and resulted in a very heavy pump.
[0033] Pump 10 protects against this by forming pump casing 16 and shaft cover 18 of a more ductile material, forming circumferential wall 14 from a wear-resistant but brittle material, and forming pressure chambers 36, 38 between circumferential wall 14 and pump casing 16 and between circumferential wall 14 and shaft cover 18, respectively. The pressure chambers are filled with fluid coming from lines 40 that is a pressure between the pressure inside the pump and the pressure outside the pump. This pressure can be, for example, 80% of the pressure inside the pump. Thus, the pressurized chambers 36, 38 can reduce the pressure difference over the more brittle circumferential wall 14, and the softer but stronger pump casing 16 and shaft cover 18 can contain the pressure.
[0034] As the pump casing 16 and shaft cover 18 are not subjected to wear from the mass in pump 10, a brittle material is not necessary and they can be made of more ductile material to contain the pressure in pressure chambers 36, 38. By applying a pressure between the pressure inside pump 10 and outside pump 10 in first and second pressurized chambers 36, 38, the stress in the circumferential wall 14 is reduced significantly, particularly in regions A, making the use of a brittle material for circumferential wall 14 sufficient and reducing the possibility of fracturing the brittle material due to pressure differences. Thus, in pump 10, the pressure chambers 36, 38 provide for the removal of stresses from the brittle circumferential wall 14, and stresses are now contained by the strong pump casing 16 and shaft cover 18 which are not subject to wear and can therefore be made of a more ductile material. This results in an increased robustness of pump 10 to pressure surges and can result in a longer wearing life of circumferential wall 14 and the overall pump 10.
[0035] While first pressure chamber 36 and second pressure chamber 38 are shown to be formed by a circumferential grooves 46, 48 in the outer walls 42, 44 of circumferential wall 14, pressure chambers 36, 38 can be formed in other ways between circumferential wall 14 and pump casing 16 and shaft cover 18. For example, pump casing 16 and/or shaft cover 18 could include a circumferential groove or each part could include a groove which fit together to form pressure chambers 36, 38.
[0036] While the invention has been described with reference to exemplary embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiments disclosed, but that the invention will include all embodiments falling within the scope of the appended claims.
REFERENCE NUMERALS
[0037] 10—Pump [0038] 12.—Pump housing [0039] 14.—Circumferential wall [0040] 15.—Outlet [0041] 16.—Pump casing [0042] 17.—Ribs [0043] 18.—Shaft cover [0044] 20.—Axial inlet [0045] 22.—Impeller [0046] 32.—Drive shaft [0047] 34.—Connection means [0048] 36.—First chamber/First pressure chamber [0049] 38.—Second chamber/Second pressure chamber [0050] 40.—Fluid line [0051] 42.—First side of the circumferential wall [0052] 44.—Second side of the circumferential wall [0053] 46.—Circumferential groove [0054] 48.—Circumferential groove [0055] 50.—Centrifugal section [0056] 52.—Outlet section [0057] 54.—Opposing wall [0058] 56.—Opposing wall