Centrifugal Pump
20190277303 ยท 2019-09-12
Inventors
Cpc classification
F04D1/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/4293
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/2255
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D1/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/628
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D1/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A centrifugal pump that includes an inlet chamber having a distal end portion and an opposing proximal end portion with a longitudinal axis spanning therebetween. Further included in the centrifugal pump is a plenum chamber having an inlet end portion and an outlet end portion, the inlet end portion is in fluid communication with the inlet chamber proximal end portion, the outlet end portion having an aperture that is about a radial axis that extends radially a distance outward from the longitudinal axis. Wherein operationally for the centrifugal pump the inlet chamber and the inlet and plenum chambers are rotated about the longitudinal axis wherein a fluid is drawn through the distal end portion toward the proximal end portion and ultimately discharged therethrough the aperture.
Claims
1. A centrifugal pump comprising: (a) an inlet chamber having a distal end portion and an opposing proximal end portion with a longitudinal axis spanning therebetween; and (b) a plenum chamber having an inlet end portion and an outlet end portion, said inlet end portion is in fluid communication with said inlet chamber proximal end portion, said outlet end portion having an aperture that is about a radial axis that extends radially a distance outward from said longitudinal axis, wherein operationally said inlet chamber and said plenum chamber are both rotated about said longitudinal axis wherein a fluid is drawn through said distal end portion toward said proximal end portion and ultimately discharged therethrough said aperture.
2. A centrifugal pump according to claim 1 wherein said inlet chamber is constructed of a first surrounding sidewall disposed between said distal and proximal end portions, wherein said first sidewall, distal, and proximal end portions define an inlet chamber interior.
3. A centrifugal pump according to claim 2 wherein said plenum chamber is constructed of a second surrounding sidewall extending from said inlet portion to encompass said outlet end portion, wherein said second sidewall, inlet, and outlet end portions define a plenum chamber interior, wherein said plenum chamber interior is in fluid communication with said inlet chamber interior.
4. A centrifugal pump according to claim 3 wherein said aperture is disposed therethrough said second sidewall and said aperture having a primary end portion adjacent to said plenum chamber interior and said aperture having an opposing secondary end portion external to said plenum chamber interior.
5. A centrifugal pump according to claim 4 further comprising a fluid filter disposed on and in fluid communication said aperture secondary end portion.
6. A centrifugal pump according to claim 4 further comprising a fluid flow electrical generator disposed on and in fluid communication said aperture secondary end portion.
7. A centrifugal pump according to claim 4 further comprising a fluid flow extension element disposed on and in fluid communication with said aperture secondary end portion to operationally extend said radially outward distance.
8. A centrifugal pump according to claim 3 further comprising a fluid flow outward diversion element disposed within said inlet chamber interior that is positioned adjacent to said proximal end portion, wherein operationally said outward diversion element routes a fluid flow from said inlet chamber interior to being adjacent to said second surrounding sidewall and said primary end portion of said aperture.
9. An annular centrifugal pump comprising: (a) an inlet chamber having a distal end portion and an opposing proximal end portion including an inlet chamber interior with a rotational axis spanning therebetween; and (b) a distribution chamber having an inlet end portion and an outlet end portion including a distribution chamber interior, said inlet end portion is in fluid communication with said inlet chamber proximal end portion, said outlet end portion having a distribution aperture that is about a radial axis that extends radially a distance outward from said rotational axis; (c) a fluid flow primary extension element in fluid communication with said distribution aperture; (d) a primary open channel annulus in fluid communication with said fluid flow primary extension element; (e) a fluid flow secondary extension element in fluid communication with said primary open channel annulus; (f) a fluid flow electrical turbine generator in fluid communication with said fluid flow secondary extension element; (f) a secondary open channel annulus in fluid communication with said fluid flow electrical turbine generator; and (g) a fluid flow tertiary extension element in fluid communication with said secondary open channel annulus and said inlet chamber, wherein operationally rotating said inlet chamber, said distribution chamber, said fluid flow primary extension element, said primary open channel annulus, said fluid flow secondary extension element, said fluid flow electrical turbine generator, said secondary open channel annulus, and said fluid flow tertiary extension element, all about said rotational axis to functionally cause an endless continuous loop of fluid flow that includes drawing the fluid through said distal end portion toward said proximal end portion, then fluid communication between said inlet chamber proximal end portion and said inlet end portion, then to fluid communication of said inlet chamber interior to said distribution chamber interior, then further discharging the fluid through said distribution aperture, toward fluid communication from said distribution aperture to said fluid flow electrical turbine generator via said fluid flow primary extension element to said primary open channel annulus via said fluid flow secondary extension element to said electrical turbine generator and then further to the fluid communication from said electrical turbine generator to said secondary open channel annulus and then through said fluid flow tertiary extension element to said inlet chamber.
10. An annular centrifugal pump according to claim 9 wherein said inlet chamber is constructed of a first surrounding sidewall disposed between said distal and proximal end portions, wherein said first sidewall, distal, and proximal end portions define an inlet chamber interior.
11. An annular centrifugal pump according to claim 10 wherein said distribution chamber is constructed of a second surrounding sidewall extending from said inlet portion to encompass said outlet end portion, wherein said second surrounding sidewall, inlet, and outlet end portions define a distribution chamber interior, wherein said distribution chamber interior is in fluid communication with said inlet chamber interior.
12. An annular centrifugal pump according to claim 11 wherein said distribution aperture is disposed therethrough said second sidewall and said distribution aperture having a primary end portion adjacent to said distribution chamber interior and said distribution aperture having an opposing secondary end portion external to said distribution chamber interior.
13. An annular centrifugal pump according to claim 12 wherein said fluid flow primary extension element has a radial axis that is positioned to extend in a radially outward distance from said rotational axis to operationally enhance said endless continuous loop of fluid flow.
14. An annular centrifugal pump according to claim 13 wherein said secondary open channel annulus further comprises a support including a support aperture, wherein said support retains said fluid flow electrical turbine generator partially within said secondary open channel annulus such that an outlet of said fluid flow electrical turbine generator is lines up with said support aperture to allow fluid to discharge into said secondary open channel annulus therethrough said support aperture from said outlet of said fluid flow electrical turbine generator.
15. An annular centrifugal pump according to claim 13 wherein said secondary open channel annulus extends inward toward said rotational axis to shorten said fluid flow tertiary extension element to be less than said fluid flow primary extension element to operationally enhance said endless continuous loop of fluid flow.
16. An annular centrifugal pump according to claim 13 further comprising an open suction reservoir that is affixed to and in fluid communication with said fluid flow tertiary extension element, wherein said open suction reservoir is also in fluid communication with said distal end portion of said inlet chamber, wherein operationally said open suction reservoir rotationally decouples said fluid flow tertiary extension element and said inlet chamber, such that said open suction reservoir, said fluid flow tertiary extension element, and said secondary open channel annulus are all static in relation to said rotational axis, this is to operationally enhance the endless continuous loop of fluid flow.
17. An annular centrifugal pump according to claim 14 further comprising an open suction reservoir that is affixed to and in fluid communication with said fluid flow tertiary extension element, wherein said open suction reservoir is also in fluid communication with said distal end portion of said inlet chamber, wherein operationally said open suction reservoir rotationally decouples said fluid flow tertiary extension element and said inlet chamber, such that said open suction reservoir, said fluid flow tertiary extension element, said secondary open channel annulus, said fluid flow electrical turbine generator, said fluid flow secondary extension element, and said primary open channel annulus are all static in relation to said rotational axis, wherein further said primary open channel annulus is structurally configured to be rotationally decoupled from said fluid flow primary extension element, this is to operationally enhance the endless continuous loop of fluid flow.
Description
BRIEF DESCRIPTION OF DRAWINGS
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REFERENCE NUMBERS IN DRAWINGS
[0031] 50 Centrifugal pump [0032] 55 Inlet chamber [0033] 60 Distal end portion of the inlet chamber 55 [0034] 65 Proximal end portion of the inlet chamber 55 [0035] 70 Longitudinal axis [0036] 75 Plenum chamber [0037] 80 Inlet end portion of the plenum chamber 75 [0038] 85 Outlet end portion of the plenum chamber 75 [0039] 90 Fluid communication between the inlet chamber proximal end portion 65 and the inlet end portion 80 [0040] 95 Aperture [0041] 100 Radial axis of the aperture 95 [0042] 105 Distance extension of the radial axis 100 [0043] 110 Fluid [0044] 115 Drawing the fluid 110 through the distal end portion 60 toward the proximal end portion 65 [0045] 120 Discharging the fluid 110 through the aperture 95 [0046] 125 First surrounding sidewall of the inlet chamber 55 [0047] 130 Interior of the inlet chamber 55 [0048] 135 Second surrounding sidewall of the plenum chamber 75 [0049] 140 Encompassing of the second surrounding sidewall 135 from the inlet portion 80 to the outlet end portion 85 [0050] 145 Interior of the plenum chamber 75 [0051] 150 Fluid communication of the inlet chamber 55 interior 130 to the plenum chamber 75 interior 145 [0052] 155 Aperture 95 disposed therethrough the second sidewall 135 [0053] 160 Primary end portion of the aperture 95 [0054] 165 Secondary end portion of the aperture 95 [0055] 170 Fluid filter [0056] 175 Fluid communication from the aperture 95 secondary end portion 165 to the fluid filter 170 [0057] 180 Fluid flow electrical generator [0058] 185 Fluid communication from the aperture 95 secondary end portion 165 to the fluid flow electrical generator 180 [0059] 190 Fluid flow extension element [0060] 195 Fluid communication from the aperture 95 secondary end portion 165 to the fluid flow extension element 190 [0061] 200 Outward fluid 110 flow diversion element [0062] 205 Routing fluid 110 flow from the inlet chamber 55 interior 130 to adjacent to the second surrounding sidewall 135 and the primary end portion 160 of the aperture 95 via the diversion element 200 [0063] 210 Rotating the inlet chamber 55 and the plenum chamber 75 about the longitudinal axis 70 [0064] 300 Annular centrifugal pump [0065] 305 Inlet chamber of the annular centrifugal pump 300 [0066] 310 Distal end portion of the inlet chamber 305 [0067] 315 Proximal end portion of the inlet chamber 305 [0068] 316 Open suction reservoir [0069] 320 Rotational axis [0070] 325 Distribution chamber [0071] 330 Inlet end portion of the distribution chamber 325 [0072] 335 Outlet end portion of the distribution chamber 325 [0073] 340 Fluid communication between the inlet chamber 305 proximal end portion 315 and the inlet end portion 330 [0074] 345 Distribution aperture [0075] 350 Radial axis of the aperture 345 [0076] 355 Outward distance extension of the radial axis 350 [0077] 360 Fluid [0078] 365 Drawing the fluid 360 through the distal end portion 310 or the suction reservoir 316 toward the proximal end portion 315 [0079] 370 Discharging the fluid 360 through the distribution aperture 345 [0080] 375 First surrounding sidewall of the inlet chamber 305 [0081] 380 Interior of the inlet chamber 305 [0082] 385 Second surrounding sidewall of the distribution chamber 325 [0083] 390 Encompassing of the second surrounding sidewall 385 from the inlet end portion 330 to the outlet end portion 335 [0084] 395 Interior of the distribution chamber 325 [0085] 400 Fluid communication of the inlet chamber 305 interior 380 to the distribution chamber 325 interior 395 [0086] 405 Distribution aperture 345 disposed therethrough the second surrounding sidewall 385 [0087] 410 Primary end portion of the distribution aperture 345 [0088] 415 Secondary end portion of the distribution aperture 345 [0089] 420 Fluid flow electrical turbine generator [0090] 421 Inlet of the electrical turbine generator [0091] 422 Outlet of the electrical turbine generator [0092] 425 Fluid communication from the aperture 345 secondary end portion 415 to the fluid flow electrical turbine generator 420 via the primary extension element 430 to the primary open channel annulus 440 via the secondary extension element 445 to the electrical turbine generator inlet 421 [0093] 430 Fluid flow primary extension element [0094] 435 Fluid communication from the distribution aperture 345 secondary end portion 415 to the fluid flow primary extension element 430 [0095] 440 Primary open channel annulus that is affixed to both the fluid flow primary extension element 430 and the fluid flow secondary extension element 445 [0096] 441 Primary open channel annulus that is not affixed to the fluid flow primary extension element [0097] 430 and affixed to the fluid flow secondary extension element 445 [0098] 445 Fluid flow secondary extension element [0099] 450 Secondary open channel annulus [0100] 451 Support for the electrical turbine generator outlet 422 suspended over the secondary open channel annulus 450 wherein the support 451 allows flow therethrough the aperture 452 from the electrical turbine generator outlet 422 to the secondary open channel annulus 450 [0101] 452 Aperture of the support 451 [0102] 455 Fluid flow tertiary extension element [0103] 460 Fluid communication from the electrical turbine generator outlet 422 therethrough the support 451 aperture 452 to the secondary open channel annulus 450 and then through the tertiary extension element 455 to the inlet chamber 305 [0104] 465 Rotating the inlet chamber 305, the distribution chamber 325, the fluid flow primary extension element 430, the primary open channel annulus 440, the fluid flow secondary extension element 445, the fluid flow electrical turbine generator 420, the secondary open channel annulus 450, and the fluid flow tertiary extension element 455 all about the rotational axis 320 to operationally cause an endless continuous loop of fluid flow that includes drawing 365 the fluid 360 through the distal end portion 310 toward the proximal end portion 315, then fluid communication 340 between the inlet chamber 305 proximal end portion 315 and the inlet end portion 330, then to fluid communication 400 of the inlet chamber 305 interior 380 to the distribution chamber 325 interior 395, then further discharging 370 the fluid 360 through the aperture 345, toward fluid communication 425, 435 from the aperture 345 secondary end portion 415 to the fluid flow electrical turbine generator 420 via the primary extension element 430 to the primary open channel annulus 440 via the secondary extension element 445 to the electrical turbine generator inlet 421, and then further to the fluid communication 460 from the electrical turbine generator outlet 422 therethrough the support 451 aperture 452 to the secondary open channel annulus 450 and then through the tertiary extension element 455 to the inlet chamber 305
DETAILED DESCRIPTION
[0105] With initial reference to
[0106] Continuing,
[0107] Yet further,
[0108] Continuing,
[0109] Continuing,
[0110] Next,
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[0113] Further,
[0114] Moving onward,
[0115] Broadly, the present invention is the centrifugal pump 50 that includes the inlet chamber 55 having the distal end portion 60 and the opposing proximal end portion 65 with the longitudinal axis 70 spanning therebetween, see
[0116] As an option for the centrifugal pump 50 wherein the inlet chamber 55 is constructed of the first surrounding sidewall 125 disposed between the distal 60 and proximal 65 end portions, wherein the first sidewall 125, distal 60, and proximal 65 end portions define the inlet chamber interior 130, see
[0117] Another option for the centrifugal pump 50 wherein the plenum chamber 75 is constructed of the second surrounding sidewall 135 extending from the inlet portion 80 to encompass 140 the outlet end portion 85, wherein the second sidewall 135, inlet 80, and outlet 85 end portions define a plenum chamber 75 interior 145, wherein the plenum chamber 75 interior 145 is in fluid communication 150 with the inlet chamber 55 interior 130, see
[0118] Alternatively, for the centrifugal pump 50 wherein the aperture 95 is disposed therethrough 155 the second sidewall 135 and the aperture 95 having the primary end portion 160 adjacent to the plenum chamber 75 interior 145 and the aperture 95 having an opposing secondary end portion 165 external to the plenum chamber 75 interior 145, again see
[0119] A further alternative for the centrifugal pump 100 is to further comprise a fluid 110 filter 170 disposed on and in fluid communication 175 with the aperture 95 secondary end portion 165, as best shown in
[0120] A continuing alternative for the centrifugal pump 50 can further comprise a fluid flow electrical generator 180 disposed on and in fluid communication 185 with the aperture 95 secondary end portion 165, as best shown in
[0121] Yet further an alternative for the centrifugal pump 50 can further comprise a fluid flow extension element 190 disposed on and in fluid communication 195 with the aperture 95 secondary end portion 165 to operationally extend the radially outward distance 105, see
[0122] Another alternative for the centrifugal pump 50 that can further comprise a fluid flow outward diversion element 200 disposed within the inlet chamber 55 interior 130 that is positioned adjacent to the proximal end portion 65, wherein operationally the outward diversion element 200 routes the fluid 110 flow 205 from the inlet chamber 55 interior 130 to being adjacent to the second surrounding sidewall 135 and the primary end portion 160 of the aperture 95, see in particular
[0123] Looking at
[0124] Also included in the annular centrifugal pump 300 is the fluid flow primary extension element 430 in fluid 360 communication 425, 435 with the distribution aperture 345, also the primary open channel annulus 440 in fluid 360 communication 425 with the fluid flow primary extension element 430, continuing the fluid flow secondary extension element 445 in fluid 360 communication with the primary open channel annulus 440, all as best shown in
[0125] Next in the in the annular centrifugal pump 300 is the fluid flow electrical turbine generator 420 in fluid 360 communication 425 with the fluid flow secondary extension element 445 and the secondary open channel annulus 450 in fluid 360 communication 425 with the fluid flow electrical turbine generator 420 and the fluid flow tertiary extension element 455 in fluid 360 communication 460 with the secondary open channel annulus 450 and the inlet chamber 305, see in particular
[0126] Wherein operationally rotating 465 the inlet chamber 305, the distribution chamber 325, the fluid flow primary extension element 430, the primary open channel annulus 440, the fluid flow secondary extension element 445, the fluid flow electrical turbine generator 420, the secondary open channel annulus 450, and the fluid flow tertiary extension element 455, all rotated 465 about the rotational axis 320. This is to functionally cause an endless continuous loop of fluid 360 flow 425, 435, 460 that includes drawing 365 the fluid 360 through the distal end portion 310 toward the proximal end portion 315, then fluid 360 communication 340 between the inlet chamber 305 proximal end portion 315 and the inlet end portion 330, then to fluid 360 communication 400 of the inlet chamber interior 380 to the distribution chamber interior 395, then further discharging the fluid 360 through the distribution aperture 345, toward fluid 360 communication 425 from the distribution aperture 345 to the fluid flow electrical turbine generator 420 via the fluid flow primary extension element 430 to the primary open channel annulus 440 via the fluid flow secondary extension element 445 to the electrical turbine generator 420 and then further to the fluid 360 communication 425, 460 from the electrical turbine generator 420 to the secondary open channel annulus 450 and then through the fluid flow tertiary extension element 455 to the inlet chamber 305, see
[0127] Alternatively for the annular centrifugal pump 300 the inlet chamber 305 can be constructed of the first surrounding sidewall 375 disposed between the distal 310 and proximal 315 end portions, wherein the first sidewall 375, distal 310, and proximal 315 end portions define the inlet chamber interior 380, see
[0128] A further alternative for the annular centrifugal pump 300 the distribution chamber 325 can be constructed of the second surrounding sidewall 385 extending from the inlet portion 330 to encompass the outlet end portion 335, wherein the second surrounding sidewall 385, inlet 330, and outlet 335 end portions define the distribution chamber interior 395, wherein the distribution chamber interior 395 is in fluid 360 communication 400 with the inlet chamber 305 interior 380, as best shown in
[0129] Optionally for the annular centrifugal pump 300 the distribution aperture 345 is disposed therethrough the second sidewall 385 and the distribution aperture 345 having the primary end portion 410 adjacent to the distribution chamber interior 395 and the distribution aperture 345 having an opposing secondary end portion 415 external to the distribution chamber interior 395, also see
[0130] Another option for the annular centrifugal pump 300 wherein the fluid flow primary extension element 430 has a radial axis 350 that is positioned to extend 355 in a radially outward distance from the rotational axis 320 to operationally enhance the endless continuous loop of fluid 360 flow 340, 370, 400, 425, 435, 460 as shown in
[0131] Also an option for the annular centrifugal pump 300 wherein the secondary open channel annulus 450 further comprises the support 451 including the support aperture 452, wherein the support 451 retains the fluid flow electrical turbine generator 420 partially within the secondary open channel annulus 450 such that the outlet 422 of the fluid flow electrical turbine generator 420 is lined up with the support 451 aperture 452 to allow fluid 360 to discharge 460 into the secondary open channel annulus 450 therethrough the support 451 aperture 452 from the outlet 422 of the fluid flow electrical turbine generator 420, as seen in
[0132] Another option for the annular centrifugal pump 300 is wherein the secondary open channel annulus 450 can extend inward toward the rotational axis 320 to shorten the fluid flow tertiary extension element 455 to be less than the fluid flow primary extension element 430 to operationally enhance the endless continuous loop of fluid 360 flow 340, 370, 400, 425, 435, 460 as shown in
[0133] Looking at
[0134] Looking at
CONCLUSION
[0135] Accordingly, the present invention of a centrifugal pump has been described with some degree of particularity directed to the embodiments of the present invention. It should be appreciated, though; that the present invention is defined by the following claim construed in light of the prior art so modifications of the changes may be made to the exemplary embodiments of the present invention without departing from the inventive concepts contained therein.