US20110243732A1 - Pump impeller - Google Patents
Pump impeller Download PDFInfo
- Publication number
- US20110243732A1 US20110243732A1 US13/071,880 US201113071880A US2011243732A1 US 20110243732 A1 US20110243732 A1 US 20110243732A1 US 201113071880 A US201113071880 A US 201113071880A US 2011243732 A1 US2011243732 A1 US 2011243732A1
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- US
- United States
- Prior art keywords
- impeller
- partition
- impeller body
- protrusions
- base wall
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Abandoned
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- 238000005192 partition Methods 0.000 claims abstract description 80
- 230000003247 decreasing effect Effects 0.000 claims abstract description 3
- 239000007788 liquid Substances 0.000 abstract description 17
- 239000012530 fluid Substances 0.000 description 3
- 230000007423 decrease Effects 0.000 description 2
- 238000013459 approach Methods 0.000 description 1
- 238000003801 milling Methods 0.000 description 1
Images
Classifications
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D29/00—Details, component parts, or accessories
- F04D29/18—Rotors
- F04D29/22—Rotors specially for centrifugal pumps
- F04D29/2205—Conventional flow pattern
- F04D29/2222—Construction and assembly
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D29/00—Details, component parts, or accessories
- F04D29/18—Rotors
- F04D29/22—Rotors specially for centrifugal pumps
- F04D29/2238—Special flow patterns
- F04D29/2255—Special flow patterns flow-channels with a special cross-section contour, e.g. ejecting, throttling or diffusing effect
Definitions
- the present invention relates to a pump impeller, especially to a pump impeller for a centrifugal pump
- a general centrifugal pump 90 has a housing 92 , a conventional impeller 91 mounted in the housing 92 , a motor 93 and a driving shaft 94 .
- the driving shaft 94 protrudes from the motor 93 , and is connected to and drives the conventional impeller 91 .
- the conventional impeller 91 has a central channel 911 , multiple vanes 913 and multiple outlet channels 912 .
- the central channel 911 is axially formed in the conventional impeller 91 .
- the vanes 913 are separately formed in and arranged around the conventional impeller 91 .
- Each vane 913 has a uniform thickness.
- Each outlet channel 912 is defined between two adjacent vanes 913 , is radially disposed in the conventional impeller 91 , communicates with the central channel 911 and an outside of the conventional impeller 91 and has a cross-sectional area.
- each outlet channel 912 increases from the center to the periphery of the conventional impeller 91 .
- the pump 90 operates and drives the conventional impeller 91 , liquid is drawn from the central channel 911 and flows outwards through the outlet channels 912 by a centrifugal force. The closer the liquid approaches the periphery of the impeller 91 , the faster the liquid flows.
- the value of a cross-sectional area of the tube multiplied by a velocity of the fluid is a constant value.
- the cross-sectional area of the outlet channel 912 is supposed to be getting smaller.
- the cross-sectional area of the outlet channel 912 of the conventional impeller 91 is increased. Therefore, the liquid does not flow uniformly in the outlet channel 912 and even becomes turbulent, and the pump 90 with the conventional impeller 91 is inefficient.
- the present invention provides a pump impeller to mitigate or obviate the aforementioned problems.
- the main objective of the present invention is to provide a pump impeller.
- the pump impeller has two impeller bodies attached to each other and multiple outlet channels.
- Each impeller body has an annular base wall and multiple partition protrusions separately formed on an inner surface of the base wall.
- the outlet channels are respectively defined between the partition protrusions.
- Each outlet channel has a cross-sectional area decreasing from an inner end to an outer open end of the outlet channel.
- FIG. 1 is a perspective view of a first embodiment of a pump impeller in accordance with the present invention
- FIG. 2 is an exploded perspective view of the pump impeller in FIG. 1 ;
- FIG. 3 is a top view of a first impeller body of the pump impeller in FIG. 1 ;
- FIG. 4 is a perspective view of a second embodiment of a pump impeller in accordance with the present invention.
- FIG. 5 is an exploded perspective view of the pump impeller in FIG. 4 ;
- FIG. 6 is a perspective view of a third embodiment of a pump impeller in accordance with the present invention.
- FIG. 7 is an exploded perspective view of the pump impeller in FIG. 6 ;
- FIG. 8 is a side view in partial section of a centrifugal pump with a conventional pump impeller in accordance with the prior art
- FIG. 9 is a cross-sectional side view of the conventional pump impeller in FIG. 8 ;
- FIG. 10 is a top view of the conventional pump impeller in FIG. 8 .
- a pump impeller in accordance with the present invention comprises a first impeller body 10 , 10 A, a second impeller body 20 , 20 A, multiple outlet channels 30 , 30 A, a collar 40 and multiple bolts 60 .
- the first impeller body 10 , 10 A has a first base wall 11 , 11 A, multiple first partition protrusions 12 , 12 A, multiple chamfers 13 , 13 A and a flange 14 .
- the first base wall 11 , 11 A is annular and has an inflow hole 111 , 111 A formed through a center of the first base wall 11 , 11 A.
- the first partition protrusions 12 , 12 A are separately formed on and arranged around an inner surface of the first base wall 11 , 11 A.
- Each first partition protrusion 12 , 12 A is curved and has two opposite side surfaces and a width.
- the width of the first partition protrusion 12 , 12 A increases from an inner end to an outer end of the first partition protrusion 12 , 12 A.
- the chamfers 13 , 13 A of the first impeller body 10 , 10 A are respectively formed between the side surfaces of the first partition protrusions 12 , 12 A and the inner surface of the first base wall 11 , 11 A of the first impeller body 10 , 10 A.
- the flange 14 is formed on an outer surface of the first base wall 11 , 11 A and around the inflow hole 111 , 111 A of the first base wall 11 , 11 A.
- the second impeller body 20 , 20 A is securely attached to the first impeller body 10 , 10 A and has a second base wall 21 , 21 A, multiple second partition protrusions 22 , 22 A and multiple chamfers 23 , 23 A.
- the second base wall 21 , 21 A is separated from and parallel to the first base wall 11 , 11 A of the first impeller body 10 , 10 A and has an axial portion 211 , 211 A.
- the axial portion 211 , 211 A is formed on a center of the second base wall 21 , 21 A and is connected to and is driven by a driving shaft of a motor.
- the second partition protrusions 22 , 22 A are separately formed on and arranged around an inner surface of the second base wall 21 , 21 A.
- Each second partition protrusion 22 , 22 A is curved and has two opposite side surfaces and a width.
- the width of the second partition protrusion 12 , 12 A increases from an inner end to an outer end of the second partition protrusion 12 , 12 A.
- the chamfers 23 , 23 A of the second impeller body 20 , 20 A are respectively formed between the side surfaces of the second partition protrusions 22 , 22 A and the inner surface of the second base wall 21 , 21 A of the second impeller body 20 , 20 A.
- the outlet channels 30 , 30 A are respectively defined between the first partition protrusions 12 , 12 A and the second partition protrusions 22 , 22 A.
- Each outlet channel 30 , 30 A has an outer open end 31 , 31 A and a cross-sectional area.
- the cross-sectional area of the outlet channel 30 , 30 A decreases from an inner end to the outer open end 31 , 31 A of the outlet channel 30 , 30 A.
- the collar 40 is mounted around the first impeller body 10 , 10 A and the second impeller body 20 , 20 A and has multiple outflow holes 41 .
- the outflow holes 41 are separately formed through the collar 40 and respectively correspond to the outer open ends 31 , 31 A of the outlet channels 30 , 30 A.
- Each outflow hole 41 may be equal to or smaller than the outer open end 31 , 31 A of a corresponding outlet channel 30 , 30 A.
- the bolts 60 are securely mounted through the first and second base walls 11 , 11 A, 21 , 21 A and the first and second partition protrusions 12 , 12 A, 22 , 22 A of the first and second impeller bodies 10 , 20 to securely hold the first and second impeller bodies 10 , 10 A, 20 , 20 A together.
- the pump impeller has, but not limited to, six bolts 60 .
- the second partition protrusions 22 of the second impeller body 20 respectively correspond to and stack against the first partition protrusions 12 of the first impeller body 10 .
- Each outlet channel 30 is defined between two adjacent first partition protrusions 12 and two second partition protrusions 22 that correspond to the two adjacent first partition protrusions 12 .
- each of the first impeller body 10 has, but not limited to, twelve first partition protrusions 12 and correspondingly, each of the second impeller body 20 has, but not limited to, twelve second partition protrusions 22 .
- twelve outlet channels 30 are defined in each of the first and second preferred embodiments of the pump impellers.
- the pump impeller further comprises a partition panel 50 .
- the partition panel 50 is annular, is mounted between the first partition protrusions 12 of the first impeller body 10 and the second partition protrusions 22 of the second impeller body 20 and divides each of the outlet channels 30 into two sub-channels 32 .
- each second partition protrusion 22 A is mounted between two adjacent first partition protrusions 12 A.
- Each outlet channel 30 A is defined between one of the first partition protrusions 12 A and one of the second partition protrusions 22 A next to each other.
- each of the first impeller body 10 A has, but not limited to, six first partition protrusions 12 A and correspondingly, each of the second impeller body 20 A has, but not limited to, six second partition protrusions 22 A.
- twelve outlet channels 30 A are defined in the third preferred embodiment of the pump impeller.
- the pump impeller When the pump impeller is made into small size, forming the separated first or second partition protrusions 12 , 22 that have a same number as the outlet channels 30 would be difficult. Therefore, in the third preferred embodiment of the pump impeller, the number of the outlet channels 30 A is double the number of the first or second partition protrusions 12 A, 22 A, The third preferred embodiment of the pump impeller is more suitable for being made into a small-sized pump impeller than the first and second preferred embodiments of the pump impellers.
- the pump impeller as described has the following advantages.
- liquid is drawn from the inflow hole 111 , 111 A of the first impeller body 11 , 11 A and then flows outwards through the outlet channels 30 , 30 A by a centrifugal force.
- a flow rate of the liquid is constrained by the outflow holes 41 of the collar 40 . Since the cross-sectional area of each outlet channel 30 , 30 A decreases from the inner end to the outer end of the outlet channel 30 , 30 A, the liquid flows uniformly with increasing velocity and becomes a laminar flow. Thus, the liquid does not become turbulent, no cavitation will occur in the liquid, no vibration will occur on the pump and a working efficiency of the pump with the pump impeller is certainly improved.
- the partition panel 50 that divides each of the outlet channels 30 into two sub-channels 32 ensures that the liquid flowing in the sub-channels 32 remains a laminar flow. Therefore, the pump impeller with the partition panel 50 is especially suitable for being made into the medium-sized or the large-sized pump impeller.
- first base wall 11 , 11 A of the first impeller body 10 , 10 A and the second base wall 21 , 21 A of the second impeller body 20 , 20 A are disposed parallel to each other, distances between the first and second base walls 11 , 11 A, 21 , 21 A are equivalent. Consequently, resistance between the liquid and the pump impeller is low. Moreover, the chamfers 13 , 13 A, 23 , 23 A of the first and second impeller bodies 10 , 10 A, 20 , 20 A also reduce the resistance between the liquid and the pump impeller.
- first and second impeller bodies 10 , 10 A, 20 , 20 A are manufactured by a milling machine with a computer numerical control (CNC) system
- CNC computer numerical control
- sizes of the outlet channels 30 , 30 are precise and inner surfaces of the pump impeller defined around the outlet channels 30 , 30 A are smooth.
- the resistance between the liquid and the pump impeller is further reduced.
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- General Engineering & Computer Science (AREA)
- Structures Of Non-Positive Displacement Pumps (AREA)
Abstract
A pump impeller has two impeller bodies attached to each other. Each impeller body has an annular base wall and multiple partition protrusions separately formed on an inner surface of the base wall. Multiple outlet channels are respectively defined between the partition protrusions. Each outlet channel has a cross-sectional area decreasing from an inner end to an outer open end of the outlet channel. Thus, liquid flowing through the outlet channels does not become turbulent and a working efficiency of a pump with the pump impeller is certainly improved.
Description
- 1. Field of the Invention
- The present invention relates to a pump impeller, especially to a pump impeller for a centrifugal pump
- 2. Description of the Prior Art(s)
- With reference to
FIG. 8 , a generalcentrifugal pump 90 has ahousing 92, aconventional impeller 91 mounted in thehousing 92, amotor 93 and adriving shaft 94. Thedriving shaft 94 protrudes from themotor 93, and is connected to and drives theconventional impeller 91. - With further reference to
FIGS. 9 and 10 , theconventional impeller 91 has acentral channel 911,multiple vanes 913 andmultiple outlet channels 912. Thecentral channel 911 is axially formed in theconventional impeller 91. Thevanes 913 are separately formed in and arranged around theconventional impeller 91. Eachvane 913 has a uniform thickness. Eachoutlet channel 912 is defined between twoadjacent vanes 913, is radially disposed in theconventional impeller 91, communicates with thecentral channel 911 and an outside of theconventional impeller 91 and has a cross-sectional area. Since circumference of theconventional impeller 91 gradually increases from a center to a periphery of theconventional impeller 91, the cross-sectional area of eachoutlet channel 912 increases from the center to the periphery of theconventional impeller 91. When thepump 90 operates and drives theconventional impeller 91, liquid is drawn from thecentral channel 911 and flows outwards through theoutlet channels 912 by a centrifugal force. The closer the liquid approaches the periphery of theimpeller 91, the faster the liquid flows. - According to fluid dynamics, at each position in a tube having incompressible fluid flowing inside, the value of a cross-sectional area of the tube multiplied by a velocity of the fluid is a constant value. Thus, since the liquid flows faster when approaching the periphery of the
impeller 91, the cross-sectional area of theoutlet channel 912 is supposed to be getting smaller. However, actually, the cross-sectional area of theoutlet channel 912 of theconventional impeller 91 is increased. Therefore, the liquid does not flow uniformly in theoutlet channel 912 and even becomes turbulent, and thepump 90 with theconventional impeller 91 is inefficient. - To overcome the shortcomings, the present invention provides a pump impeller to mitigate or obviate the aforementioned problems.
- The main objective of the present invention is to provide a pump impeller. The pump impeller has two impeller bodies attached to each other and multiple outlet channels. Each impeller body has an annular base wall and multiple partition protrusions separately formed on an inner surface of the base wall. The outlet channels are respectively defined between the partition protrusions. Each outlet channel has a cross-sectional area decreasing from an inner end to an outer open end of the outlet channel. Thus, liquid flowing through the outlet channels does not become turbulent and a working efficiency of a pump with the pump impeller is certainly improved.
- Other objectives, advantages and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
-
FIG. 1 is a perspective view of a first embodiment of a pump impeller in accordance with the present invention; -
FIG. 2 is an exploded perspective view of the pump impeller inFIG. 1 ; -
FIG. 3 is a top view of a first impeller body of the pump impeller inFIG. 1 ; -
FIG. 4 is a perspective view of a second embodiment of a pump impeller in accordance with the present invention; -
FIG. 5 is an exploded perspective view of the pump impeller inFIG. 4 ; -
FIG. 6 is a perspective view of a third embodiment of a pump impeller in accordance with the present invention; -
FIG. 7 is an exploded perspective view of the pump impeller inFIG. 6 ; -
FIG. 8 is a side view in partial section of a centrifugal pump with a conventional pump impeller in accordance with the prior art; -
FIG. 9 is a cross-sectional side view of the conventional pump impeller inFIG. 8 ; and -
FIG. 10 is a top view of the conventional pump impeller inFIG. 8 . - With reference to
FIGS. 2 , 5 and 7, a pump impeller in accordance with the present invention comprises a 10, 10A, afirst impeller body 20, 20A,second impeller body 30, 30A, amultiple outlet channels collar 40 andmultiple bolts 60. - With further reference to
FIG. 3 , the 10, 10A has afirst impeller body first base wall 11, 11A, multiple 12, 12A,first partition protrusions 13, 13A and amultiple chamfers flange 14. Thefirst base wall 11, 11A is annular and has an 111, 111A formed through a center of theinflow hole first base wall 11, 11A. The 12, 12A are separately formed on and arranged around an inner surface of thefirst partition protrusions first base wall 11, 11A. Each 12, 12A is curved and has two opposite side surfaces and a width. The width of thefirst partition protrusion 12, 12A increases from an inner end to an outer end of thefirst partition protrusion 12, 12A. Thefirst partition protrusion 13, 13A of thechamfers 10, 10A are respectively formed between the side surfaces of thefirst impeller body 12, 12A and the inner surface of thefirst partition protrusions first base wall 11, 11A of the 10, 10A. Thefirst impeller body flange 14 is formed on an outer surface of thefirst base wall 11, 11A and around the 111, 111A of theinflow hole first base wall 11, 11A. - The
20, 20A is securely attached to thesecond impeller body 10, 10A and has afirst impeller body 21, 21A, multiplesecond base wall 22, 22A andsecond partition protrusions 23, 23A. Themultiple chamfers 21, 21A is separated from and parallel to thesecond base wall first base wall 11, 11A of the 10, 10A and has anfirst impeller body 211, 211A. Theaxial portion 211, 211A is formed on a center of theaxial portion 21, 21A and is connected to and is driven by a driving shaft of a motor. Thesecond base wall 22, 22A are separately formed on and arranged around an inner surface of thesecond partition protrusions 21, 21A. Eachsecond base wall 22, 22A is curved and has two opposite side surfaces and a width. The width of thesecond partition protrusion 12, 12A increases from an inner end to an outer end of thesecond partition protrusion 12, 12A. Thesecond partition protrusion 23, 23A of thechamfers 20, 20A are respectively formed between the side surfaces of thesecond impeller body 22, 22A and the inner surface of thesecond partition protrusions 21, 21A of thesecond base wall 20, 20A.second impeller body - The
30, 30A are respectively defined between theoutlet channels 12, 12A and thefirst partition protrusions 22, 22A. Eachsecond partition protrusions 30, 30A has an outeroutlet channel 31, 31A and a cross-sectional area. The cross-sectional area of theopen end 30, 30A decreases from an inner end to the outeroutlet channel 31, 31A of theopen end 30, 30A.outlet channel - The
collar 40 is mounted around the 10, 10A and thefirst impeller body 20, 20A and hassecond impeller body multiple outflow holes 41. Theoutflow holes 41 are separately formed through thecollar 40 and respectively correspond to the outer 31, 31A of theopen ends 30, 30A. Eachoutlet channels outflow hole 41 may be equal to or smaller than the outer 31, 31A of aopen end 30, 30A.corresponding outlet channel - The
bolts 60 are securely mounted through the first and 11, 11A, 21, 21A and the first andsecond base walls 12, 12A, 22, 22A of the first andsecond partition protrusions 10, 20 to securely hold the first andsecond impeller bodies 10, 10A, 20, 20A together. Preferably, the pump impeller has, but not limited to, sixsecond impeller bodies bolts 60. - With further reference to
FIGS. 1 and 4 , in the first and second preferred embodiments, thesecond partition protrusions 22 of thesecond impeller body 20 respectively correspond to and stack against thefirst partition protrusions 12 of thefirst impeller body 10. Eachoutlet channel 30 is defined between two adjacentfirst partition protrusions 12 and twosecond partition protrusions 22 that correspond to the two adjacentfirst partition protrusions 12. Preferably, each of thefirst impeller body 10 has, but not limited to, twelvefirst partition protrusions 12 and correspondingly, each of thesecond impeller body 20 has, but not limited to, twelvesecond partition protrusions 22. Thus, twelveoutlet channels 30 are defined in each of the first and second preferred embodiments of the pump impellers. - With reference to
FIGS. 4 and 5 , in the second preferred embodiment, the pump impeller further comprises apartition panel 50. Thepartition panel 50 is annular, is mounted between thefirst partition protrusions 12 of thefirst impeller body 10 and thesecond partition protrusions 22 of thesecond impeller body 20 and divides each of theoutlet channels 30 into two sub-channels 32. - With further reference to
FIG. 6 , in a third preferred embodiment, eachsecond partition protrusion 22A is mounted between two adjacentfirst partition protrusions 12A. Eachoutlet channel 30A is defined between one of thefirst partition protrusions 12A and one of thesecond partition protrusions 22A next to each other. Preferably, each of thefirst impeller body 10A has, but not limited to, sixfirst partition protrusions 12A and correspondingly, each of thesecond impeller body 20A has, but not limited to, sixsecond partition protrusions 22A. Thus, twelveoutlet channels 30A are defined in the third preferred embodiment of the pump impeller. - When the pump impeller is made into small size, forming the separated first or
12, 22 that have a same number as thesecond partition protrusions outlet channels 30 would be difficult. Therefore, in the third preferred embodiment of the pump impeller, the number of theoutlet channels 30A is double the number of the first or 12A, 22A, The third preferred embodiment of the pump impeller is more suitable for being made into a small-sized pump impeller than the first and second preferred embodiments of the pump impellers.second partition protrusions - The pump impeller as described has the following advantages. When the pump impeller is mounted in a pump and operates, liquid is drawn from the
111, 111A of theinflow hole first impeller body 11, 11A and then flows outwards through the 30, 30A by a centrifugal force. A flow rate of the liquid is constrained by the outflow holes 41 of theoutlet channels collar 40. Since the cross-sectional area of each 30, 30A decreases from the inner end to the outer end of theoutlet channel 30, 30A, the liquid flows uniformly with increasing velocity and becomes a laminar flow. Thus, the liquid does not become turbulent, no cavitation will occur in the liquid, no vibration will occur on the pump and a working efficiency of the pump with the pump impeller is certainly improved.outlet channel - Furthermore, since the liquid becomes turbulent more easily in a medium-sized or a large-sized pump impeller, the
partition panel 50 that divides each of theoutlet channels 30 into two sub-channels 32 ensures that the liquid flowing in the sub-channels 32 remains a laminar flow. Therefore, the pump impeller with thepartition panel 50 is especially suitable for being made into the medium-sized or the large-sized pump impeller. - As a further matter, since the
first base wall 11, 11A of the 10, 10A and thefirst impeller body 21, 21A of thesecond base wall 20, 20A are disposed parallel to each other, distances between the first andsecond impeller body 11, 11A, 21, 21A are equivalent. Consequently, resistance between the liquid and the pump impeller is low. Moreover, thesecond base walls 13, 13A, 23, 23A of the first andchamfers 10, 10A, 20, 20A also reduce the resistance between the liquid and the pump impeller. Furthermore, when the first andsecond impeller bodies 10, 10A, 20, 20A are manufactured by a milling machine with a computer numerical control (CNC) system, sizes of thesecond impeller bodies 30, 30 are precise and inner surfaces of the pump impeller defined around theoutlet channels 30, 30A are smooth. Thus, the resistance between the liquid and the pump impeller is further reduced.outlet channels - Even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and features of the invention, the disclosure is illustrative only. Changes may be made in the details, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Claims (20)
1. A pump impeller comprising
a first impeller body having
a first base wall being annular and having an inflow hole formed through a center of the first base wall; and
multiple first partition protrusions separately formed on and arranged around an inner surface of the first base wall, and each first partition protrusion being curved and having a width increasing from an inner end to an outer end of the first partition protrusion;
a second impeller body securely attached to the first impeller body and having
a second base wall separated from and being parallel to the first base wall of the first impeller body and having an axial portion formed on a center of the second base wall; and
multiple second partition protrusions separately formed on and arranged around an inner surface of the second base wall , and each second partition protrusion being curved and having a width increasing from an inner end to an outer end of the second partition protrusion; and
multiple outlet channels respectively defined between the first partition protrusions and the second partition protrusions, and each outlet channel having
an outer open end; and
a cross-sectional area decreasing from an inner end to the outer open end of the outlet channel.
2. The pump impeller as claimed in claim 1 , wherein
the second partition protrusions of the second impeller body respectively correspond to and stack against the first partition protrusions of the first impeller body; and
each outlet channel is defined between two adjacent first partition protrusions and two second partition protrusions that correspond to the two adjacent first partition protrusions.
3. The pump impeller as claimed in claim 1 , wherein
each second partition protrusion is mounted between two adjacent first partition protrusions; and
each outlet channel is defined between one of the first partition protrusions and one of the second partition protrusions next to each other.
4. The pump impeller as claimed in claim 2 further comprising a partition panel being annular, mounted between the first partition protrusions of the first impeller body and the second partition protrusions of the second impeller body.
5. The pump impeller as claimed in claim 1 further comprising a collar mounted around the first impeller body and the second impeller body and having multiple outflow holes separately formed through the collar and respectively corresponding to the outer open ends of the outlet channel.
6. The pump impeller as claimed in claim 2 further comprising a collar mounted around the first impeller body and the second impeller body and having multiple outflow holes separately formed through the collar and respectively corresponding to the outer open ends of the outlet channel.
7. The pump impeller as claimed in claim 3 further comprising a collar mounted around the first impeller body and the second impeller body and having multiple outflow holes separately formed through the collar and respectively corresponding to the outer open ends of the outlet channel.
8. The pump impeller as claimed in claim 4 further comprising a collar mounted around the first impeller body and the second impeller body and having multiple outflow holes separately formed through the collar and respectively corresponding to the outer open ends of the outlet channel.
9. The pump impeller as claimed in claim 5 , wherein each outflow hole of the collar is equal to or smaller than the outer open end of a corresponding outlet channel.
10. The pump impeller as claimed in claim 6 , wherein each outflow hole of the collar is equal to or smaller than the outer open end of a corresponding outlet channel.
11. The pump impeller as claimed in claim 7 , wherein each outflow hole of the collar is equal to or smaller than the outer open end of a corresponding outlet channel.
12. The pump impeller as claimed in claim 8 , wherein each outflow hole of the collar is equal to or smaller than the outer open end of a corresponding outlet channel.
13. The pump impeller as claimed in claim 9 , wherein
each first partition protrusion has two opposite side surfaces;
the first impeller body has multiple chamfers respectively formed between the side surfaces of the first partition protrusions and the inner surface of the first base wall of the first impeller body;
each second partition protrusion has two opposite side surfaces; and
the second impeller body has multiple chamfers respectively formed between the side surfaces of the second partition protrusions and the inner surface of the second base wall of the second impeller body.
14. The pump impeller as claimed in claim 10 , wherein
each first partition protrusion has two opposite side surfaces;
the first impeller body has multiple chamfers respectively formed between the side surfaces of the first partition protrusions and the inner surface of the first base wall of the first impeller body;
each second partition protrusion has two opposite side surfaces; and
the second impeller body has multiple chamfers respectively formed between the side surfaces of the second partition protrusions and the inner surface of the second base wall of the second impeller body.
15. The pump impeller as claimed in claim 11 , wherein
each first partition protrusion has two opposite side surfaces;
the first impeller body has multiple chamfers respectively formed between the side surfaces of the first partition protrusions and the inner surface of the first base wall of the first impeller body;
each second partition protrusion has two opposite side surfaces; and
the second impeller body has multiple chamfers respectively formed between the side surfaces of the second partition protrusions and the inner surface of the second base wall of the second impeller body.
16. The pump impeller as claimed in claim 12 , wherein
each first partition protrusion has two opposite side surfaces;
the first impeller body has multiple chamfers respectively formed between the side surfaces of the first partition protrusions and the inner surface of the first base wall of the first impeller body;
each second partition protrusion has two opposite side surfaces; and
the second impeller body has multiple chamfers respectively formed between the side surfaces of the second partition protrusions and the inner surface of the second base wall of the second impeller body.
17. The pump impeller as claimed in claim 13 further comprising multiple bolts securely mounted through the first and second base walls and the first and second partition protrusions of the first and second impeller bodies.
18. The pump impeller as claimed in claim 14 further comprising multiple bolts securely mounted through the first and second base walls and the first and second partition protrusions of the first and second impeller bodies.
19. The pump impeller as claimed in claim 15 further comprising multiple bolts securely mounted through the first and second base walls and the first and second partition protrusions of the first and second impeller bodies.
20. The pump impeller as claimed in claim 16 further comprising multiple bolts securely mounted through the first and second base walls and the first and second partition protrusions of the first and second impeller bodies.
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| TW99109553 | 2010-03-30 | ||
| TW099109553 | 2010-03-30 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| US20110243732A1 true US20110243732A1 (en) | 2011-10-06 |
Family
ID=44144682
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US13/071,880 Abandoned US20110243732A1 (en) | 2010-03-30 | 2011-03-25 | Pump impeller |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US20110243732A1 (en) |
| EP (1) | EP2372162A3 (en) |
| JP (1) | JP3168366U (en) |
| TW (1) | TW201139858A (en) |
Cited By (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP3012458A1 (en) | 2014-10-22 | 2016-04-27 | Vestel Beyaz Esya Sanayi Ve Ticaret A.S. | A multiple outlet pump |
| USD940760S1 (en) * | 2020-04-04 | 2022-01-11 | Colina | Mixing pump impeller |
| USD958842S1 (en) * | 2020-04-04 | 2022-07-26 | Colina | Mixing pump impeller vane assembly |
| USD979607S1 (en) * | 2020-02-03 | 2023-02-28 | W.S. Darley & Co. | Impeller for a pump |
Families Citing this family (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN103075363A (en) * | 2013-01-09 | 2013-05-01 | 西安航空学院 | Novel small-flow high-lift peripheral pump |
| CN106089121B (en) * | 2016-06-16 | 2018-05-04 | 西南石油大学 | One kind utilizes and returns Energy suppression marine riser vortex-induced vibration device and method on drilling fluid |
| JP2023117972A (en) | 2022-02-14 | 2023-08-24 | パナソニックIpマネジメント株式会社 | pump |
Citations (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US1919970A (en) * | 1933-02-07 | 1933-07-25 | Gen Electric | Impeller |
| US6210116B1 (en) * | 1998-11-05 | 2001-04-03 | John E. Kuczaj | High efficiency pump impeller |
Family Cites Families (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US538050A (en) * | 1895-04-23 | Half to isaac l | ||
| US2999628A (en) * | 1957-08-26 | 1961-09-12 | Joseph S Crombie | Low pressure compressor |
| DE1453723A1 (en) * | 1963-07-19 | 1969-07-31 | Barske Ulrich Max | Centrifugal pump, especially for small to medium conveying flows |
| US3285187A (en) * | 1965-11-05 | 1966-11-15 | Msl Ind Inc | Impeller for use in centrifugal pump or blower and a method of manufacture thereof |
-
2011
- 2011-03-25 TW TW100110247A patent/TW201139858A/en unknown
- 2011-03-25 US US13/071,880 patent/US20110243732A1/en not_active Abandoned
- 2011-03-28 EP EP11159937A patent/EP2372162A3/en not_active Withdrawn
- 2011-03-29 JP JP2011001705U patent/JP3168366U/en not_active Expired - Fee Related
Patent Citations (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US1919970A (en) * | 1933-02-07 | 1933-07-25 | Gen Electric | Impeller |
| US6210116B1 (en) * | 1998-11-05 | 2001-04-03 | John E. Kuczaj | High efficiency pump impeller |
Cited By (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP3012458A1 (en) | 2014-10-22 | 2016-04-27 | Vestel Beyaz Esya Sanayi Ve Ticaret A.S. | A multiple outlet pump |
| USD979607S1 (en) * | 2020-02-03 | 2023-02-28 | W.S. Darley & Co. | Impeller for a pump |
| USD940760S1 (en) * | 2020-04-04 | 2022-01-11 | Colina | Mixing pump impeller |
| USD958842S1 (en) * | 2020-04-04 | 2022-07-26 | Colina | Mixing pump impeller vane assembly |
Also Published As
| Publication number | Publication date |
|---|---|
| EP2372162A3 (en) | 2012-10-31 |
| EP2372162A2 (en) | 2011-10-05 |
| JP3168366U (en) | 2011-06-09 |
| TW201139858A (en) | 2011-11-16 |
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Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| STCB | Information on status: application discontinuation |
Free format text: ABANDONED -- FAILURE TO RESPOND TO AN OFFICE ACTION |