CN205559264U - A transfer pump for solid -liquid mixture expects to carry - Google Patents

A transfer pump for solid -liquid mixture expects to carry Download PDF

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Publication number
CN205559264U
CN205559264U CN201521128608.9U CN201521128608U CN205559264U CN 205559264 U CN205559264 U CN 205559264U CN 201521128608 U CN201521128608 U CN 201521128608U CN 205559264 U CN205559264 U CN 205559264U
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CN
China
Prior art keywords
transmission shaft
solid
pump body
flange
pump
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Expired - Fee Related
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CN201521128608.9U
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Chinese (zh)
Inventor
顾建军
顾秋林
顾枫
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Taicang Shunda Magnetic Pump Technology Co Ltd
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Taicang Shunda Magnetic Pump Technology Co Ltd
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Priority to CN201521128608.9U priority Critical patent/CN205559264U/en
Application granted granted Critical
Publication of CN205559264U publication Critical patent/CN205559264U/en
Expired - Fee Related legal-status Critical Current
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Abstract

The utility model discloses a transfer pump for solid -liquid mixture expects to carry, this transfer pump include the pump body, inner rotor, external rotor, round pin axle, transmission shaft, bearing assembly, interior magnetism shaft coupling, outer magnetism shaft coupling and heat preservation separation sleeve, the chamber that external rotor, transmission shaft and bearing assembly formed is the high pressure chest, be provided with the transmission shaft trompil on the transmission shaft of the high pressure chest of neighbouring material import, the transmission shaft trompil is used for making the solid -liquid mixture material to get into the transmission shaft, the transmission shaft one end of neighbouring heat preservation separation sleeve is provided with the boring passageway to the transmission shaft between the transmission shaft trompil, and the boring passageway is used for transmitting the solid -liquid mixture material. The utility model discloses a solid -liquid mixture material of a transfer pump for solid -liquid mixture expects to carry in with suction pump body space and cavity can not stop up the pump body through the inside passage circulation outflow pump body, and the pump body is outside and inside all is provided with the heat preservation device, material temperature can not take place reduce and the material crystallization of production, and then block up the phenomenon of the pump body.

Description

A transfer pump for solid-liquid mixture carries
Technical Field
The utility model relates to a technical field of the structure of pump, especially a transmission pump for solid-liquid mixture carries.
Background
In the prior art, the transmission pump can not well pump the solid-liquid mixture containing a large amount of solids, and the defects of blockage in the pump body, serious abrasion in the pump body and the like are easily caused, so that the transmission pump is frequently maintained and replaced, a large amount of manpower and material resources are consumed, and the production cost is high. But also cannot meet the requirement of a transmission object with higher crystallization temperature.
The substances with lower crystallization temperature are transported in the pipeline, and the heat of the pipeline exposed in the air is easy to be lost, so that the temperature is reduced to cause the substances to crystallize, thereby blocking the pipeline and influencing the transportation. Therefore, in the prior art, additional foam sponge and the like are often adopted for heat preservation, and the method has the defects of poor heat preservation effect, unstable transmission quality and the like.
SUMMERY OF THE UTILITY MODEL
In order to solve the problems and the defects, the utility model aims to provide a transmission pump for solid-liquid mixed material is carried. The transmission pump circularly flows the solid-liquid mixed material pumped into the gap and the cavity of the pump body out of the pump body through the internal channel without blocking the pump body; and the outside and inside of the pump body are all provided with heat preservation devices, and the phenomenon that the pump body is blocked due to material crystallization caused by material temperature reduction in the circulation process of the internal channel cannot occur.
In order to achieve the above purpose, the utility model adopts the following technical scheme:
a transmission pump for conveying solid-liquid mixed materials comprises a pump body, an inner rotor, an outer rotor, a pin shaft, a transmission shaft, a bearing assembly, an inner magnetic coupling, an outer magnetic coupling and a heat-insulating spacer sleeve; the inner magnetic coupler is connected to one end of the transmission shaft, the outer magnetic coupler is arranged on the periphery of the inner magnetic coupler, and the heat-insulating isolation sleeve is arranged between the inner magnetic coupler and the outer magnetic coupler; the transmission shaft is fixed inside the pump body through the bearing assembly, the other end of the transmission shaft is connected to the outer rotor, and the inner rotor is arranged on the inner side of the outer rotor; the pin shaft is arranged at the tail end of the transmission shaft close to the inner rotor; a material inlet is formed in the upper part of the pump body; the bearing assembly comprises a bearing, a shaft sleeve and a bearing positioner; the transmission shaft is supported inside the pump body through the bearing; the shaft sleeve is arranged between the transmission shaft and the bearing; the bearing positioner is arranged in the pump body and used for fixing the position of the bearing and the position of the shaft sleeve; wherein,
A cavity formed by the outer rotor, the transmission shaft and the bearing assembly is a high-pressure cavity; a transmission shaft opening is formed in the transmission shaft of the high-pressure cavity adjacent to the material inlet, and the transmission shaft opening is used for enabling a solid-liquid mixed material to enter the transmission shaft; an internal hollow channel is arranged between one end of the transmission shaft adjacent to the heat-insulating isolation sleeve and the opening of the transmission shaft, and the internal hollow channel is used for transmitting solid-liquid mixed materials;
a heat-insulation isolation sleeve cavity is formed among the transmission shaft, the inner magnetic coupler and the heat-insulation isolation sleeve which are adjacent to the heat-insulation isolation sleeve, and is communicated with the inner hollow channel of the transmission shaft;
a cavity formed by the bearing assembly and the inner magnetic coupling is a gap cavity, and a circulating outlet for discharging solid-liquid mixed materials is formed in the gap cavity at the lower part of the pump body;
and the inner magnetic coupler channel is arranged between the inner magnetic coupler and the heat-insulating isolation sleeve, and the inner magnetic coupler channel, the gap cavity and the circulating outlet are communicated.
Further, the outer rotor and the pump body at the material inlet are outer rotor clearance channels which are communicated with the material inlet and the high-pressure cavity.
Further, a gap exists between the shaft sleeve and the bearing, and the high-pressure cavity and the gap cavity are communicated through the gap.
Furthermore, the heat-insulating isolation sleeve for insulating the internal magnetic coupling is a double-layer isolation sleeve, and circulating steam is introduced into the heat-insulating isolation sleeve.
Further, the transmission pump also comprises a steam insulation layer which is arranged on the periphery of the pump body and used for insulating solid-liquid mixed materials.
Furthermore, the transmission pump also comprises a heat-insulating double-layer pipe pipeline device, one end of the heat-insulating double-layer pipe pipeline device is connected to the material inlet of the pump body, and the other end of the heat-insulating double-layer pipe pipeline device is connected to the circulating outlet of the pump body.
Further, the heat-preservation double-layer pipe pipeline device comprises an inner layer pipe, an outer layer pipe sleeved on the inner layer pipe, flange assemblies arranged at two tail ends of the inner layer pipe and the outer layer pipe and used for being connected to the other double-layer pipe, and a steam inlet and a steam outlet arranged on two end walls of the outer layer pipe; the inner layer pipe is a material conveying pipe; the outer layer pipe is a steam circulating pipe; the flange assembly comprises a first flange, a second flange and a gasket which is arranged between the first flange and the second flange and used for sealing; a central hole, an outer layer through hole and a screw hole are formed in the corresponding positions of the first flange and the second flange; the central bore is configured to engage the inner tube and pass material therethrough; the outer layer through hole is used for jointing the outer layer pipe and allowing steam to pass through; the first flange and the second flange are fixedly clamped through the matching of bolts and the screw holes; the steam inlet and the steam outlet are arc-shaped pipes extending outwards from the outer layer pipe, the steam inlet is connected to the steam insulation layer, and the steam outlet is connected to the insulation isolation sleeve.
Furthermore, a central hole, an outer layer through hole and a screw hole are formed in the gasket at the positions corresponding to the first flange and the second flange.
Further, the outer layer through hole is a hole surrounding the periphery of the central hole.
Due to the adoption of the technical scheme, compared with the prior art, the utility model have the following advantage:
1. the transmission shaft of the high-pressure cavity adjacent to the material inlet in the transmission pump for conveying the solid-liquid mixed material is provided with the transmission shaft opening, and the transmission shaft opening is used for enabling the solid-liquid mixed material to enter the transmission shaft; a hollow channel is arranged between one end of the transmission shaft adjacent to the heat-insulation isolation sleeve and the hole of the transmission shaft, the hollow channel is used for transmitting solid-liquid mixed materials, and a channel is formed in the pump body by the transmission shaft, so that the materials cannot be accumulated in one position in the pump body to cause blockage.
2. The utility model discloses a solid-liquid mixture in the transmission pump passes through the inside passage circulation in-process with suction pump body space and cavity, can take away the heat that the pump body is inside to produce because of the friction, plays the radiating effect of the transmission pump body.
3. The utility model discloses a transmission pump for solid-liquid mixture carries utilizes the clearance between the pump body part and the pump body and design into inner channel, makes it form a return circuit, passes through the return circuit circulation outflow pump body with the material in suction pump body space and the cavity, can not block up the pump body, reduces the frequency of transmission pump maintenance and change.
4. The utility model discloses a transfer pump for solid-liquid mixture carries, when the material circulated in the inside passage, the liquid in the material has also played lubricated effect to the transfer pump, has reduced the friction of the pump body internals and the pump body, has increased the life of transfer pump.
5. The heat-preservation isolation sleeve in the transmission pump for conveying the solid-liquid mixed material is provided with a double-layer isolation sleeve, and circulating steam is introduced into the double-layer isolation sleeve; steam is continuously introduced into the dead angle of the pump body for heat preservation, so that the phenomena of blockage and the like caused by crystallization of materials in the transmission pump due to the fact that the heat preservation effect cannot be achieved are prevented.
6. The utility model discloses a heat-preservation double-layer pipe pipeline device of a transmission pump for conveying solid-liquid mixed materials, which comprises an inner layer pipe and an outer layer pipe sleeved on the inner layer pipe; the inner layer pipe is a material conveying pipe, and the outer layer pipe is a steam circulating pipe; the outer layer pipe keeps the temperature by continuous steam, and the introduced steam can be recycled for continuous heating use after being discharged from the outer layer pipe, so that resources are saved.
7. The utility model discloses an outer through-hole that is used for the heat preservation double tube piping installation of transmission pump that solid-liquid mixture carried's first flange and second flange symmetry to set up makes steam pass through, has put through two outer pipes and has made the circulation of steam, need not to add steam inlet and steam outlet pipeline more, practices thrift the cost.
8. The utility model discloses an outer through-hole quantity on gasket, first flange and the second flange of the heat preservation double tube piping installation of the transfer pump for solid-liquid mixture carries is not limited, can increase and decrease according to actual conditions.
9. The utility model discloses a be provided with detachable flange subassembly among the heat preservation double tube pipeline device for transmission pump that solid-liquid mixture carried, can increase or shorten the length of heat preservation double tube pipeline like this according to actual conditions, increase application range.
Drawings
FIG. 1 is a schematic structural diagram of a transfer pump for conveying solid-liquid mixed materials according to the present invention;
FIG. 2 is a schematic structural view of the heat-insulating spacer sleeve of the transmission pump for conveying solid-liquid mixture of the present invention;
FIG. 3 is a side expanded view of the insulating sleeve of FIG. 2;
FIG. 4 is a schematic view of the internal passage of the solid-liquid mixture entering the pump body void and cavity in the transfer pump of the present invention;
FIG. 5 is a schematic view of the assembly of the insulated double-walled tubing piping arrangement of the present invention to a transfer pump;
fig. 6 is a schematic structural view of the thermal insulation double-layer pipe pipeline device of the present invention;
fig. 7 is a schematic structural view of a flange assembly of the thermal insulation double-layer pipe pipeline device of the present invention;
Fig. 8 is a schematic structural view of the first flange of the thermal insulation double-layer pipe pipeline device of the present invention matching with the thermal insulation double-layer pipe;
fig. 9 is a schematic cross-sectional view of a first flange of the thermal double-walled pipe piping arrangement of the present invention.
Description of reference numerals:
the device comprises a transmission pump 1, a motor 2, a speed reducer 3, a base 4, a heat-preservation double-layer pipe pipeline device 5, a pump body 11, an inner rotor 12, an outer rotor 13, a pin shaft 14, a transmission shaft 15, a bearing assembly 16, an inner magnetic coupling 17, an outer magnetic coupling 18, a heat-preservation isolation sleeve 19, a material inlet 110, a 111 high-pressure cavity, a transmission shaft opening 112, an internal hollow channel 113, a heat-preservation isolation sleeve cavity 114, an internal magnetic coupling channel 115, a circulation outlet 116, a gap cavity 117, an outer rotor gap channel 118, a gap 119, a bearing 161, a shaft sleeve 162, a bearing positioner 163, an inner isolation sleeve 191, an outer isolation sleeve 192, a baffle 193, a steam opening 194, an inner pipe 51, an outer pipe 52, a first flange 53, a second flange 54, a steam inlet 55, a steam outlet 56, a gasket 57, a central hole 58, an outer.
Detailed Description
In order to make the objects, technical solutions and advantages of the present invention more clearly understood, the present invention will be further described in detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are for purposes of illustration only and are not intended to limit the invention.
Fig. 1 shows a transfer pump 1 for conveying solid-liquid mixed materials, wherein the transfer pump 1 comprises a pump body 11, an inner rotor 12, an outer rotor 13, a pin shaft 14, a transmission shaft 15, a bearing assembly 16, an inner magnetic coupling 17, an outer magnetic coupling 18 and a heat-insulating isolation sleeve 19; the inner magnetic coupling 17 is connected to one end of the transmission shaft 15, the outer magnetic coupling 18 is arranged on the periphery of the inner magnetic coupling 17, and the heat-insulating isolation sleeve 19 is arranged between the inner magnetic coupling 17 and the outer magnetic coupling 18; a transmission shaft 15 is fixed inside the pump body 11 through a bearing assembly 16, the other end of the transmission shaft 15 is connected to an outer rotor 13, and an inner rotor 12 is arranged on the inner side of the outer rotor 13; the pin shaft 14 is arranged at the tail end of the transmission shaft 15 close to the inner rotor 12; the upper part of the pump body 11 is provided with a material inlet 110; the transmission pump 1 is arranged at one end of the base 4, the motor 2 is arranged at the other end of the base 4, and the speed reducer 3 is arranged between the transmission pump 1 and the motor 2; the outer magnetic coupling 18 of the transmission pump 1 is connected with the speed reducer 3 through a shaft. The transmission pump 1 also comprises a steam insulation layer which is arranged on the periphery of the pump body 11 and used for insulating solid-liquid mixed materials.
Fig. 2 shows a heat-insulating jacket 19 of a transfer pump for conveying a solid-liquid mixture. The heat insulation isolation sleeve 19 is used for insulating the inner magnetic coupling 17, is a double-layer isolation sleeve and is specifically divided into an inner-layer isolation sleeve 191 and an outer-layer isolation sleeve 192, and circulating steam is introduced into the inner portion. The heat-insulating isolation sleeve 19 continuously introduces steam to the dead angle of the pump body for heat insulation, so that the phenomena of blockage and the like caused by crystallization of materials in the transmission pump due to the fact that the heat-insulating effect cannot be achieved are prevented. As shown in FIG. 3, a baffle 193 for allowing steam to pass through is arranged between the inner insulating sleeve 191 and the outer insulating sleeve 192 of the insulating sleeve 19, and a steam opening 194 for allowing steam to pass through is arranged on the baffle 193. The baffles 193 are spaced between the inner 191 and outer 192 insulation sleeves and at a location other than the steam inlet, the steam openings 194 of each two adjacent baffles 193 are located at opposite ends (i.e., the steam openings of one baffle are adjacent the inner 191 and the steam openings of the other adjacent baffle are adjacent the outer 192 insulation sleeve) so that steam can fill the entire insulation sleeve 19. The steam is introduced from a position A in figure 3, the steam is divided into two parts, one part is introduced into B, C, D, the other part is introduced into E, F, and the two parts of the steam meet at a position D to form a cycle due to the annular shape of the heat-insulating isolation sleeve 19.
Fig. 4 shows the internal passage of the solid-liquid mixture in the transfer pump into the pump body void and cavity, which includes the high pressure chamber 111 formed by the outer rotor 13, the drive shaft 15 and the bearing assembly 16; a transmission shaft opening 112 is formed in the transmission shaft 15 of the high-pressure cavity 111 adjacent to the material inlet 110, and the transmission shaft opening 112 is used for enabling solid-liquid mixed materials to enter the transmission shaft 15; an internal hollow channel 113 is arranged on the transmission shaft 15 between one end of the transmission shaft 15 adjacent to the heat-insulating isolation sleeve 19 and the opening 112 of the transmission shaft, and the internal hollow channel 113 is used for transmitting solid-liquid mixed materials.
A heat-insulating isolation sleeve cavity 114 is formed among the transmission shaft 15, the internal magnetic coupler 17 and the heat-insulating isolation sleeve 19 which are adjacent to the heat-insulating isolation sleeve 19, and the heat-insulating isolation sleeve cavity 114 is communicated with the internal hollow channel 113 of the transmission shaft. A clearance cavity 117 formed by the bearing assembly 16 and the internal magnetic coupling 17, and a circulating outlet 116 for discharging solid-liquid mixed materials is arranged on the clearance cavity 117 at the lower part of the pump body 11.
The internal magnetic coupling channel 115, the void cavity 117 and the circulation outlet 116 which are arranged between the internal magnetic coupling 17 and the heat insulation isolation sleeve 19 are communicated. Formed by the outer rotor 13 at the material inlet 110 and the pump body 11 is an outer rotor clearance channel 118, the outer rotor clearance channel 118 communicating with the material inlet 110 and the high pressure chamber 111.
Bearing assembly 16 further includes a bearing 161, a bushing 162, and a bearing retainer 163; the drive shaft 15 is supported inside the pump body 11 by a bearing 161; the bushing 162 is disposed between the transmission shaft 15 and the bearing 161; bearing retainer 163 is disposed inside pump body 11 and serves to fix the position of bearing 161 and boss 162. A gap 119 exists between the sleeve 162 and the bearing 161, and the high pressure chamber 111 and the gap chamber 117 communicate through the gap 119.
The transfer pump 1 further comprises a thermal insulation double-layer pipe pipeline device 5, one end of the thermal insulation double-layer pipe pipeline device 5 is connected to the material inlet 110 of the transfer pump 1, and the other end of the thermal insulation double-layer pipe pipeline device is connected to a circulating outlet of a conveying loop of the transfer pump 1 (as shown in fig. 5). The steam inlet 55 is connected to the steam insulation and the steam outlet 56 is connected to the insulation jacket.
Fig. 6 shows a thermal insulation double-layer pipe piping device of a transfer pump for solid-liquid mixed material transfer, which comprises an inner layer pipe 51, an outer layer pipe 52 sleeved on the inner layer pipe 51, flange assemblies arranged at both ends of the inner layer pipe 51 and the outer layer pipe 52 and used for being connected to the other double-layer pipe, and a steam inlet 55 and a steam outlet 56 arranged on both end walls of the outer layer pipe 52. Wherein the inner layer pipe 51 is a material conveying pipe, the outer layer pipe 52 is a steam circulating pipe, and the outer layer pipe 52 continuously circulates steam for heat preservation so as to keep the temperature of the material in the inner layer pipe 51; the introduced steam can be recycled for continuous heating use after being discharged from the outer layer pipe 52, thereby saving resources. The steam inlet 55 and the steam outlet 56 are arcuate tubes extending outwardly from the outer tube 52.
As shown in fig. 7, the flange assembly includes a first flange 53, a second flange 54, and a gasket 57 disposed between the first flange 53 and the second flange 54 for sealing. Fig. 8 shows the fitting of the first flange 53 with the insulating double pipe, the first flange 53 being provided with a central hole 58, an outer layer through hole 59 and a screw hole 510; the central hole 58 is used for jointing the inner layer pipe 51 and enabling materials to pass through, and the central hole 58 is a circular hole and has the same aperture as that of the inner layer pipe 51; the outer layer through holes 59 are used for jointing the outer layer pipe 52 and allowing the steam to pass through, and the diameter of the outer layer through holes 59 is the diameter difference (namely D) between the outer layer pipe 52 and the inner layer pipe 51Outer layer through hole=DOuter layer pipe-DInner layer pipeWhere D is the diameter). The outer layer through holes 59 may be a plurality of holes at corresponding positions of the outer layer pipe 52 of the first flange 53, i.e., the outer layer through holes 59 are holes surrounding the periphery of the central hole 58 (as shown in fig. 9). A central hole, an outer layer through hole and a screw hole are arranged at the corresponding positions of the second flange 54 and the first flange 53; the gasket 57 is provided with a center hole, an outer layer through hole and a screw hole at positions corresponding to the first flange 53 and the second flange 54. The first flange 53 and the second flange 54 are fixedly clamped by the engagement of bolts with the screw holes 510. The flange assembly is communicated with the two outer layer pipes, so that steam can circulate, a steam inlet and a steam outlet pipeline do not need to be additionally arranged, and the cost is saved. The flange assembly can be disassembled, so that the length of the heat-preservation double-layer pipe can be lengthened or shortened according to actual conditions, and the application range is enlarged.
The utility model discloses a transfer pump for solid-liquid mixture carries when using, including following step:
1) the motor 2 rotates the outer magnetic coupling 18 through the speed reducer 3, the outer magnetic coupling 18 drives the inner magnetic coupling 17 to rotate, the inner magnetic coupling 17 drives the transmission shaft 15 to rotate by taking the two bearing assemblies 16 as supporting points, the transmission shaft 15 drives the outer rotor 13 to rotate, the outer rotor 13 drives the inner rotor 12 to rotate, and solid-liquid mixed materials are pumped from the material inlet 110 of the pump body 11;
2) in the process of pumping the solid-liquid mixed material in the step 1) into the pump body 11, a part of the solid-liquid mixed material enters the outer rotor gap channel 118 and flows into the transmission shaft opening 112 in the high-pressure cavity 111 and enters the transmission shaft 15; flows to the insulating sleeve cavity 114 through the internal hollow channel 113 of the transmission shaft 15, then the solid-liquid mixed material flows into a gap cavity 119 formed by the bearing assembly 16 and the internal magnetic coupling 17 through the internal magnetic coupling channel 115, and finally flows out from the circulating outlet 116;
3) in the process of pumping the solid-liquid mixed material in the step 1) into the pump body 11, the other part of the solid-liquid mixed material enters the outer rotor gap channel 118, passes through a gap 119 between the shaft sleeve 162 and the bearing 161, a gap cavity 117 formed by the bearing assembly 16 and the inner magnetic coupling 17, and finally flows out from the circulating outlet 116;
4) The solid-liquid mixed material flowing out of the circulating outlet 116 in the steps 2) and 3) returns to the material inlet 110 of the pump body 11 through the heat-insulating double-layer pipe pipeline device 5 connected to the circulating outlet 116, and the circulation is finished;
5) from step 1) to step 4), introducing steam all the time into the steam heat-insulating layer on the periphery of the pump body 11 for circulating heat insulation, and introducing circulating steam into the heat-insulating isolation sleeve 19 for heat insulation.
The above description is only a preferred embodiment of the present invention, and is not intended to limit the scope of the present invention; the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and equivalent arrangements as is within the spirit and scope of the present invention.

Claims (9)

1. A transmission pump for conveying solid-liquid mixed materials is characterized by comprising a pump body, an inner rotor, an outer rotor, a pin shaft, a transmission shaft, a bearing assembly, an inner magnetic coupling, an outer magnetic coupling and a heat-insulating isolation sleeve; the inner magnetic coupler is connected to one end of the transmission shaft, the outer magnetic coupler is arranged on the periphery of the inner magnetic coupler, and the heat-insulating isolation sleeve is arranged between the inner magnetic coupler and the outer magnetic coupler; the transmission shaft is fixed inside the pump body through the bearing assembly, the other end of the transmission shaft is connected to the outer rotor, and the inner rotor is arranged on the inner side of the outer rotor; the pin shaft is arranged at the tail end of the transmission shaft close to the inner rotor; a material inlet is formed in the upper part of the pump body; the bearing assembly comprises a bearing, a shaft sleeve and a bearing positioner; the transmission shaft is supported inside the pump body through the bearing; the shaft sleeve is arranged between the transmission shaft and the bearing; the bearing positioner is arranged in the pump body and used for fixing the position of the bearing and the position of the shaft sleeve; wherein,
a cavity formed by the outer rotor, the transmission shaft and the bearing assembly is a high-pressure cavity; a transmission shaft opening is formed in the transmission shaft of the high-pressure cavity adjacent to the material inlet, and the transmission shaft opening is used for enabling a solid-liquid mixed material to enter the transmission shaft; an internal hollow channel is arranged between one end of the transmission shaft adjacent to the heat-insulating isolation sleeve and the opening of the transmission shaft, and the internal hollow channel is used for transmitting solid-liquid mixed materials;
A heat-insulation isolation sleeve cavity is formed among the transmission shaft, the inner magnetic coupler and the heat-insulation isolation sleeve which are adjacent to the heat-insulation isolation sleeve, and is communicated with the inner hollow channel of the transmission shaft;
a cavity formed by the bearing assembly and the inner magnetic coupling is a gap cavity, and a circulating outlet for discharging solid-liquid mixed materials is formed in the gap cavity at the lower part of the pump body;
and the inner magnetic coupler channel is arranged between the inner magnetic coupler and the heat-insulating isolation sleeve, and the inner magnetic coupler channel, the gap cavity and the circulating outlet are communicated.
2. The transfer pump for solid-liquid mixture transport of claim 1, characterized in that the external rotor at the material inlet and the pump body are external rotor void channels communicating with the material inlet and the high pressure chamber.
3. The transfer pump for solid-liquid mixed material transfer of claim 1, wherein a gap exists between the shaft sleeve and the bearing, and the high-pressure chamber and the gap chamber communicate through the gap.
4. The transfer pump for conveying solid-liquid mixed materials according to claim 1, wherein the heat-insulating isolation sleeve for insulating the internal magnetic coupling is a double-layer isolation sleeve, and circulating steam is introduced into the heat-insulating isolation sleeve.
5. The transfer pump for solid-liquid mixture conveying of claim 1, further comprising a steam insulation layer arranged on the periphery of the pump body and used for insulating the solid-liquid mixture.
6. The transfer pump for solid-liquid mixture transfer of claim 1, further comprising a thermal double-pipe piping device, one end of which is connected to the material inlet of the pump body, and the other end of which is connected to the circulation outlet of the pump body.
7. The transmission pump for conveying the solid-liquid mixed material according to claim 6, wherein the heat-insulating double-layer pipe pipeline device comprises an inner-layer pipe, an outer-layer pipe sleeved on the inner-layer pipe, flange assemblies arranged at two ends of the inner-layer pipe and the outer-layer pipe and used for being connected to the other double-layer pipe, and a steam inlet and a steam outlet arranged on two end walls of the outer-layer pipe; the inner layer pipe is a material conveying pipe; the outer layer pipe is a steam circulating pipe; the flange assembly comprises a first flange, a second flange and a gasket which is arranged between the first flange and the second flange and used for sealing; a central hole, an outer layer through hole and a screw hole are formed in the corresponding positions of the first flange and the second flange; the central bore is configured to engage the inner tube and pass material therethrough; the outer layer through hole is used for jointing the outer layer pipe and allowing steam to pass through; the first flange and the second flange are fixedly clamped through the matching of bolts and the screw holes; the steam inlet and the steam outlet are arc-shaped pipes extending outwards from the outer layer pipe, the steam inlet is connected to the steam insulation layer, and the steam outlet is connected to the insulation isolation sleeve.
8. The transfer pump for solid-liquid mixed material transfer of claim 7, wherein a central hole, an outer layer through hole and a screw hole are formed in the gasket at positions corresponding to the first flange and the second flange.
9. A transfer pump for solid-liquid mixture transfer according to claim 7, characterized in that the outer layer through holes are holes surrounding the periphery of the central hole.
CN201521128608.9U 2015-12-31 2015-12-31 A transfer pump for solid -liquid mixture expects to carry Expired - Fee Related CN205559264U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201521128608.9U CN205559264U (en) 2015-12-31 2015-12-31 A transfer pump for solid -liquid mixture expects to carry

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201521128608.9U CN205559264U (en) 2015-12-31 2015-12-31 A transfer pump for solid -liquid mixture expects to carry

Publications (1)

Publication Number Publication Date
CN205559264U true CN205559264U (en) 2016-09-07

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Family Applications (1)

Application Number Title Priority Date Filing Date
CN201521128608.9U Expired - Fee Related CN205559264U (en) 2015-12-31 2015-12-31 A transfer pump for solid -liquid mixture expects to carry

Country Status (1)

Country Link
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105464964A (en) * 2015-12-31 2016-04-06 太仓顺达磁力泵科技有限公司 Conveying pump for solid-liquid mixed materials

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105464964A (en) * 2015-12-31 2016-04-06 太仓顺达磁力泵科技有限公司 Conveying pump for solid-liquid mixed materials
WO2017114086A1 (en) * 2015-12-31 2017-07-06 太仓顺达磁力泵科技有限公司 Transfer pump for transporting solid-liquid mixture

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CF01 Termination of patent right due to non-payment of annual fee

Granted publication date: 20160907

Termination date: 20181231

CF01 Termination of patent right due to non-payment of annual fee