CN202875903U - Hydraulic suspended blood pump - Google Patents

Hydraulic suspended blood pump Download PDF

Info

Publication number
CN202875903U
CN202875903U CN 201220561640 CN201220561640U CN202875903U CN 202875903 U CN202875903 U CN 202875903U CN 201220561640 CN201220561640 CN 201220561640 CN 201220561640 U CN201220561640 U CN 201220561640U CN 202875903 U CN202875903 U CN 202875903U
Authority
CN
China
Prior art keywords
pump
cavity
lower cover
loam cake
vane rotor
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.)
Expired - Fee Related
Application number
CN 201220561640
Other languages
Chinese (zh)
Inventor
阮晓东
范灏
付新
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Zhejiang University ZJU
Original Assignee
Zhejiang University ZJU
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Zhejiang University ZJU filed Critical Zhejiang University ZJU
Priority to CN 201220561640 priority Critical patent/CN202875903U/en
Application granted granted Critical
Publication of CN202875903U publication Critical patent/CN202875903U/en
Anticipated expiration legal-status Critical
Expired - Fee Related legal-status Critical Current

Links

Images

Abstract

The utility model discloses a hydraulic suspended blood pump. The interior of a pump upper cover comprises a pump upper cover upper cavity and a pump upper cover volute passageway cavity. The top of the upper cover is communicated with a pump inlet, and a side of the upper cover is communicated with the upper half of a pump outlet. The interior of a pump lower cover is a pump lower cover volute passageway cavity. A column-shaped inner bulge of the pump lower cover is located at the middle of the pump lower cover, and a side of the pump lower cover is communicated with the lower half of the pump outlet. A vane wheel rotor is composed of four to six vanes and a cylindrical through-hole in the middle, wherein the cross section of each vane is n-shaped. The vane wheel rotor, a driving magnetic steel and a stator coil are installed on the inner bulge of the pump lower cover in the volute passageway cavity in a coaxial mode. When the hydraulic suspended blood pump works, the upper top face and the lower top face respectively form a wedge-shaped gap with a pump inner wall, fluid in the wedge-shaped gap produces a thrust to the vanes when the fluid is added and the vanes rotate, so that the vane wheel rotor is suspended in the pump cavity. The vanes are guaranteed to suspend without an active control system of the blood pump, abrasion is reduced, and meanwhile the heat emitted is little and power dissipation is low.

Description

A kind of Hydrodynamic suspension formula blood pump
Technical field
This utility model relates to a kind of medical apparatus and instruments, particularly relates to a kind of Hydrodynamic suspension formula blood pump.
Background technology
At present, the bearing that is applied in the blood pump mainly contains mechanical contact bearing and non-contact type bearing two large classes.The mechanical contact bearing exists motor bearings wearing and tearing and frictional heating and the problem of bringing out thrombosis, has seriously restricted the development of blood pump and extensive use clinically thereof.Therefore, non-contact type bearing becomes the study hotspot of modern blood pump.
Non-contact type bearing divides ACTIVE CONTROL suspension bearing, passive control suspension bearing, hybrid bearing.The ACTIVE CONTROL suspension bearing is mainly electromagnetic suspension bearing for example referring to US Patent No. 7470246, and it successfully is applied on the blood pump, it mainly be by solenoid energising produce magnetic force with rotor suspension in pump.The states such as U.S., day, moral take the lead in being engaged in technique research for many years, still have so far many technical problems, and the equal many places of product are in the trial period.Hybrid bearing technology is also by U.S. Arrow International company and Australian HeartWare company successfully in the application product, and entered clinical experimental stage.
All there is following problem for above-mentioned two kinds of bearing technologies:
1, Active Magnetic Suspending Bearing needs more energy input.
2, in order to make the electromagnetic suspension bearing function-stable, need high-precision control structure, thereby increased the complexity of whole control system.
Summary of the invention
The purpose of this utility model is for the deficiencies in the prior art, and a kind of Hydrodynamic suspension formula blood pump is provided, and when blood pump was worked, avoid wearing and tearing and frictional heating etc. brought out the factor of thrombosis, and need not complicated control.
In order to achieve the above object, the technical solution adopted in the utility model is as follows: a kind of Hydrodynamic suspension formula blood pump, and it comprises pump loam cake, pump lower cover, vane rotor, stator solenoid and drives magnet steel; Wherein, tops has pump intake on the described pump, the bottom has the first half of pump discharge, pump loam cake internal cavity shape is divided into the pump loam cake upper cavity on top and pump loam cake volute runner cavity two parts of bottom, the top of pump loam cake upper cavity is the truncated cone-shaped cavity, the bottom is cylindrical cavity, the inclined-plane cone angle of truncated cone-shaped cavity is α, form the first wedge gap between the blade upper surface of the inclined-plane of truncated cone-shaped cavity and vane rotor, the width of wedge gap narrows down to h2 along the opposite direction of leaf line speed gradually by h1, and the truncated cone-shaped cavity is coaxial with pump intake and communicate; Described pump lower cover inside is pump lower cover volute runner cavity, the center of pump lower cover volute runner cavity is pump lower cover internal projection, the bottom surface of the blade lower surface of vane rotor and pump lower cover volute runner cavity forms the second wedge gap, the width of the second wedge gap narrows down to H2 along the opposite direction of leaf line speed gradually by H1, the side of pump lower cover volute runner cavity has the latter half of pump discharge, the latter half of the pump discharge of the first half of the pump discharge of pump loam cake and pump lower cover forms pump discharge, the pump lower cover volute runner cavity of the pump loam cake volute runner cavity of pump loam cake and pump lower cover forms volute runner cavity, volute runner cavity communicates with pump intake and pump discharge respectively, on the coaxial pump lower cover internal projection that is installed in the volute runner cavity of vane rotor and stator solenoid, drive magnet steel and be fixed on the vane rotor inwall.
Further, described vane rotor along the circumferential direction is spacedly distributed by 4-6 sheet blade is axially having on the cylindrical body sidewall of through hole; Leaf cross-section is the Contraband font, and the through hole in the middle of the vane rotor is embedded in the driving magnet steel.
The beneficial effect that the utlity model has is:
1, adopts the bearing arrangement of complete Hydrodynamic suspension, avoided wearing and tearing and frictional heating etc. to bring out the generation of thrombosis factor, avoided complicated active control system, improved reliability and the impact resistance of blood pump.
2, adopted novel blade construction, by and the pump housing internal face between the small wedge gap that forms, make fluid produce enough thrust to blade, reach within the cavity that allows blade be suspended in pump, avoided again the small groove structure of other Hydrodynamic suspension pump to the destruction of blood, simultaneously the structures shape of blade its less quality, more be conducive to the suspension of blade.
3, because Hydrodynamic suspension is driven suspension, basic noenergy consumption effectively reduces heating and labyrinth that the power transmission energy causes, is convenient to blood pump to lightness, the progress of portability future development.
Description of drawings
Fig. 1 is this utility model structural principle sketch map;
Fig. 2 is this utility model pump loam cake generalized section;
Fig. 3 is view under this utility model pump loam cake;
Fig. 4 is this utility model pump lower cover generalized section;
Fig. 5 is the top view of this utility model pump lower cover;
Fig. 6 is that the isometry of this utility model impeller is surveyed sketch map;
Fig. 7 is this utility model impeller side view;
Fig. 8 is that this utility model impeller blade is installed partial sectional view;
Fig. 9 is radially Hydrodynamic suspension sketch map of this utility model impeller;
Figure 10 is the T view of Fig. 9;
Figure 11 is pump inner fluid flow schematic diagram;
Among the figure, pump loam cake 1, pump loam cake upper cavity 1A, pump loam cake volute runner cavity 1B, pump loam cake cylindrical cavity sidewall 1C, pump lower cover 2, pump lower cover volute runner cavity 2A, pump lower cover internal projection 2B, vane rotor 3, blade upper surface 3A, blade lower surface 3B, blade sidewall 3C, stator solenoid 4, driving magnet steel 5, pump intake 6, pump discharge 7.
The specific embodiment
Describe this utility model in detail below in conjunction with accompanying drawing, it is more obvious that the purpose of this utility model and effect will become.
As shown in the figure, this utility model Hydrodynamic suspension formula blood pump comprises pump loam cake 1, pump lower cover 2, vane rotor 3, stator solenoid 4 and drives magnet steel 5; Wherein: vane rotor 3, stator solenoid 4 and driving magnet steel 5 all place in the cavity that is comprised of pump loam cake 1 and pump lower cover 2, drive magnet steel 5 and are fixed on vane rotor 3 inwalls vane rotor 3 and the 4 coaxial installations of stator solenoid.
As shown in Figures 2 and 3, pump loam cake 1 top has pump intake 6, the bottom has the first half of pump discharge, pump loam cake 1 internal cavity shape is divided into the pump loam cake upper cavity 1A on top and pump loam cake volute runner cavity 1B two parts of bottom, the top of pump loam cake upper cavity 1A is the truncated cone-shaped cavity, the bottom is cylindrical cavity, the inclined-plane cone angle of truncated cone-shaped cavity is α, form the first wedge gap (as shown in Figure 8) between the blade upper surface 3A of the inclined-plane of truncated cone-shaped cavity and vane rotor 3, the width of wedge gap narrows down to h2 along the opposite direction of leaf line speed gradually by h1, and truncated cone-shaped cavity and pump intake 6 are coaxial and communicate;
As shown in Figure 4 and Figure 5, pump lower cover 2 inside are pump lower cover volute runner cavity 2A, the center of pump lower cover volute runner cavity 2A is pump lower cover internal projection 2B, the blade lower surface 3B of vane rotor 3 and cavity bottom surface form the second wedge gap (as shown in Figure 8), the width of the second wedge gap narrows down to H2 along the opposite direction of leaf line speed gradually by H1, the lower cavity side has the latter half of pump discharge, the latter half of the pump discharge of the first half of the pump discharge of pump loam cake 1 and pump lower cover 2 forms pump discharge 7, the pump lower cover volute runner cavity 2A of the pump loam cake volute runner cavity 1B of pump loam cake 1 and pump lower cover 2 forms volute runner cavity, volute runner cavity communicates with pump intake 6 and pump discharge 7 respectively, on vane rotor 3 and the stator solenoid 4 coaxial pump lower cover internal projection 2B that are installed in the volute runner cavity.
Shown in Fig. 6 and 7, vane rotor 3 along the circumferential direction is spacedly distributed by 4-6 sheet blade axially to be had on the cylindrical body sidewall of through hole.Leaf cross-section is the Contraband font, and the through hole at vane rotor middle part is embedded in and drives magnet steel 5, is used for and stator coil 4 couple drive.Installation rear blade upper surface 3A and blade lower surface 3B form wedge gap respectively and between the bottom surface of the inclined-plane of pump loam cake upper cavity round platform part and pump lower cover volute runner cavity.Be full of the pump internal cavity at liquid, after vane rotor 3 began rotation, liquid flowed into from the entrance gap of larger entrance h1 and H1, from the outlet gap outflow of less outlet h2 and H2, liquid in the wedge gap can form fluid pressure, i.e. liquid suspension power F to the surface of blade like this uAnd F d, these two power are suspended in the interior cavity of pump vane rotor 3, reach suspension effect.When vane rotor 3 deflection pump loam cakes 1 or pump lower cover 2, its corresponding wedge gap reduces, and fluid pressure increases sharply, the wedge gap of opposite side then increases, fluid pressure reduces rapidly, orders about vane rotor to the opposite direction motion of skew, keeps the up and down stable suspersion of rotor in pump.Same principle as shown in Figure 9 and Figure 10, also forms wedge gap between the sidewall 1C of blade sidewall 3C and pump loam cake upper chamber column part, produce fluid pressure, and it is stable to order about the radial position of vane rotor 3 in pump.
Above-described round platform and cylindrical cavity 1A inclined-plane cone angle are 4-10 °;
Described wedge gap h1 is 200 μ m, and h2 is 150 μ m;
Described wedge gap H1 is 150 μ m, and H2 is 100 μ m;
Figure 11 has schematically shown this utility model runner flow cardon, the blood in the minim gap in the whole pump under the rotation of vane rotor 3 can to upgrading in time, avoided flow dead, reduced thrombosed possible.

Claims (2)

1. a Hydrodynamic suspension formula blood pump is characterized in that, it comprises pump loam cake (1), pump lower cover (2), vane rotor (3), stator solenoid (4) and drives magnet steel (5); Wherein, described pump loam cake (1) top has pump intake (6), the bottom has the first half of pump discharge, pump loam cake (1) internal cavity shape is divided into the pump loam cake upper cavity on top and pump loam cake volute runner cavity two parts of bottom, the top of pump loam cake upper cavity is the truncated cone-shaped cavity, the bottom is cylindrical cavity, the inclined-plane cone angle of truncated cone-shaped cavity is α, form the first wedge gap between the blade upper surface of the inclined-plane of truncated cone-shaped cavity and vane rotor (3), the width of wedge gap dwindles gradually along the opposite direction of leaf line speed, and the truncated cone-shaped cavity is coaxial with pump intake (6) and communicate; Described pump lower cover (2) inside is pump lower cover volute runner cavity, the center of pump lower cover volute runner cavity is pump lower cover internal projection, the bottom surface of the blade lower surface of vane rotor (3) and pump lower cover volute runner cavity forms the second wedge gap, the width of the second wedge gap dwindles gradually along the opposite direction of leaf line speed, the side of pump lower cover volute runner cavity has the latter half of pump discharge, the latter half of the pump discharge of the first half of the pump discharge of pump loam cake (1) and pump lower cover (2) forms pump discharge (7), the pump lower cover volute runner cavity of the pump loam cake volute runner cavity of pump loam cake (1) and pump lower cover (2) forms volute runner cavity, volute runner cavity communicates with pump intake (6) and pump discharge (7) respectively, on the coaxial pump lower cover internal projection that is installed in the volute runner cavity of vane rotor (3) and stator solenoid (4), drive magnet steel (5) and be fixed on vane rotor (3) inwall.
2. described Hydrodynamic suspension formula blood pump according to claim 1 is characterized in that described vane rotor (3) along the circumferential direction is spacedly distributed by 4-6 sheet blade axially to be had on the cylindrical body sidewall of through hole; Leaf cross-section is the Contraband font, and the through hole in the middle of the vane rotor (3) is embedded in and drives magnet steel (5).
CN 201220561640 2012-10-30 2012-10-30 Hydraulic suspended blood pump Expired - Fee Related CN202875903U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN 201220561640 CN202875903U (en) 2012-10-30 2012-10-30 Hydraulic suspended blood pump

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN 201220561640 CN202875903U (en) 2012-10-30 2012-10-30 Hydraulic suspended blood pump

Publications (1)

Publication Number Publication Date
CN202875903U true CN202875903U (en) 2013-04-17

Family

ID=48067374

Family Applications (1)

Application Number Title Priority Date Filing Date
CN 201220561640 Expired - Fee Related CN202875903U (en) 2012-10-30 2012-10-30 Hydraulic suspended blood pump

Country Status (1)

Country Link
CN (1) CN202875903U (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102895709A (en) * 2012-10-30 2013-01-30 浙江大学 Hydraulic suspension type blood pump
CN109407792A (en) * 2017-08-18 2019-03-01 库特拉有限公司 Cooling device

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102895709A (en) * 2012-10-30 2013-01-30 浙江大学 Hydraulic suspension type blood pump
CN109407792A (en) * 2017-08-18 2019-03-01 库特拉有限公司 Cooling device

Similar Documents

Publication Publication Date Title
CN101513546B (en) Hydrodynamic suspension bearing for artificial heart
US10495093B2 (en) Micro hydraulic suspension mechanical pump
CN103343089B (en) Hydraulic cavitated cell wall disruption device
CN202064929U (en) Dynamic hydrocyclone for crude oil sand removal
CN103216453A (en) Hydrodynamic pressure suspension double-flow pump
CN111870752B (en) Magnetic liquid coupling passive suspension type double-suction centrifugal blood pump
CN101601875B (en) Blood passive control suspension bearing applied to implantable centrifugal blood pump
CN202875903U (en) Hydraulic suspended blood pump
CN105169504A (en) Magnetic fluid coupling type passive suspension axial-flow blood pump
CN101773691B (en) Suspension permanent magnetic blood pump
CN205207206U (en) Miniature pump integral type magnetic drive pump based on axial motor drive
CN105268040A (en) Centrifugal blood pump driven by magnetic coupling
CN102895709B (en) Hydraulic suspension type blood pump
CN201934387U (en) Pump shell structure of high-efficiency centrifugal pump
CN101695591B (en) Mixed type passive suspended centrifugal blood pump
CN102705246B (en) Impeller-suspended superminiature pump
CN205055005U (en) Magnetism liquid manifold type axial compressor blood pump that suspends passively
CN202673703U (en) High-revolving-speed magnetic-transmission tangent flow pump
CN206419147U (en) A kind of special hydraulic turbine magnetic levitation system of cooling tower
CN110985404B (en) Magnetic suspension fluid micropump with straight-through inner flow channel
CN104912730A (en) Inner curvilinear low-speed large-torque water hydraulic motor with replaceable wearproof dish
CN111664095A (en) Novel horizontal cantilever energy-saving two-stage pump
CN105343950A (en) Artificial blood pump adopting hydraulic suspension bearing
CN201786683U (en) High-speed magnetic pump
CN106989050B (en) A kind of Hydrodynamic float mechanical pump

Legal Events

Date Code Title Description
C14 Grant of patent or utility model
GR01 Patent grant
C17 Cessation of patent right
CF01 Termination of patent right due to non-payment of annual fee

Granted publication date: 20130417

Termination date: 20131030