专利摘要:
A magnetically driven axial-flow pump comprising (i) an electromagnet unit 1 arranged about the periphery of a pipe “P”, (ii) a cylindrical rotor 5 accommodated in the pipe “P”, (iii) permanent magnets 6 mounted on the periphery of the rotor 5, and (iv) a spiral vane 7 formed on the inner surface of the rotor 5. A hollow is formed in the axial center portion of the vane 7. Because the rotor 5 and the vane 7 can be made as one piece with an NC machine, precluding the occurrence of gaps in the otherwise-inevitable joint between them, it is easy to make the rotor 5 and the vane 7. Because there are no gaps between the rotor 5 and the vane 7 as mentioned above and there is no object in contact with blood in the center portion of the vane, various germs do not enter blood, no thrombi are formed, blood tissues are not destroyed, and hence the pump is suitable as a blood pump.
公开号:US20010009645A1
申请号:US09/748,251
申请日:2000-12-27
公开日:2001-07-26
发明作者:Hiroyuki Noda
申请人:Nipro Corp;
IPC主号:H02K7-14
专利说明:
[0001] The present invention relates to a magnetically driven axial-flow pump. More specifically, this invention relates to a pump of which the vane is magnetically driven and which is built in a pipe to feed the fluid in it. [0001]
[0002] The magnetically driven axial-flow pump of the present invention can be used for any purposes in any technical fields as far as it is supposed to impel the fluid in a pipe. The pump can be used as medical blood pumps, industrial fluid pumps, and engines for movement such as marine motors. [0002]
[0003] The Japanese Unexamined Patent Publication No. 71492/H5 (1993) disclosed a magnetically driven axial-flow pump. [0003]
[0004] Referring to FIG. 2, the pump of the prior art will be described. A cylindrical rotor [0004] 144 is disposed in an expanded part 140 a of a pipe 140 so as to be rotatable freely. An impeller 142 is fixed inside the cylindrical rotor 144. The impeller 142 consists of a shell-shaped stator 142 a and vanes 142 b, the latter fixed radially to the former. The vanes 142 b are also fixed to the inner surface of the cylindrical rotor 144. On the other hand, disposed around the expanded part 140 a of the pipe 140 are a stator coil 146 for turning the rotor 144 and magnetic bearings 148 for holding the rotor 144 afloat.
[0005] The electromagnetic action between the stator coil [0005] 146 and the rotor 144 turns the rotor 144 and hence the impeller 142 to impel the fluid in the pipe 140 in the direction of arrow “F”.
[0006] The axial flow pump of the prior art has the following shortcomings. [0006]
[0007] (1) The shell-shaped stator [0007] 142 a and the vanes 142 b have to be made separately and then combined to become the impeller 142. Besides, the vanes 142 b have also to be fixed to the inner surface of the cylindrical rotor 144. The assembling work of the stator/rotor assembly is very complex. Although the individual parts can be machined with NC lathes, it is almost impossible to mechanize the assembling work.
[0008] (2) In case that the pump is to be used as a blood pump, any gaps have to be sealed, however small they may be. Accordingly, the joints between the stator [0008] 142 a and the vanes 142 b and those between the rotor 144 and the vanes 142 b have to be coated somehow, which increases the necessary man-hours. Moreover, because one cannot look at the inside of the stator/rotor assembly once it is assembled, it is impossible to inspect visually the coating condition inside it. Thus, the pump is not reliable enough as a blood pump.
[0009] (3) The contact area between the shell-shaped stator [0009] 142 a and the fluid is relatively large. Accordingly, if the pump is used as a blood pump, it is likely to destroy blood tissues and hence not suitable as a blood pump.
[0010] In accordance with the above, the object of the present invention is to provide a magnetically driven axial-flow pump which is easy to manufacture and highly suitable as a blood pump. [0010] SUMMARY OF THE INVENTION
[0011] According to the present invention, there is provided a magnetically driven axial-flow pump comprising (i) an electromagnet unit arranged about the periphery of a pipe, (ii) a cylindrical rotor accommodated in the pipe, (iii) permanent magnets mounted on the periphery of the rotor, and (iv) a spiral vane formed on the inner surface of the rotor. A hollow is formed in the axial center portion of the vane. [0011]
[0012] The advantages offered by the present invention are as follows. Because the vane has a hollow in its axial center portion, the rotor and the vane can be made as one piece with an NC machine. Besides, because the occurrence of gaps in the otherwise-inevitable joint between the rotor and the vane is precluded, it is unnecessary to coat such a joint to fill such gaps. Thus, it is easy to make the rotor and the vane. [0012]
[0013] Furthermore, there are no gaps between the rotor and the vane as mentioned above and there is no object in contact with blood in the center portion of the vane. Therefore, various germs do not enter blood, no thrombi are formed, blood tissues are not destroyed, and hence the pump is suitable as a blood pump. [0013] BRIEF DESCRIPTION OF THE DRAWINGS
[0014] The features and advantages of the present invention will become more clearly appreciated from the following description in conjunction with the accompanying drawings, in which: [0014]
[0015] FIG. 1 is a schematic longitudinal sectional view of an embodiment of magnetically driven axial-flow pump of the present invention. [0015]
[0016] FIG. 2 is a longitudinal sectional view of a magnetically driven axial-flow pump of prior art. [0016] DETAILED EXPLANATION OF THE INVENTION
[0017] Referring to the drawings, an embodiment of magnetically driven axial—flow pump of the present invention will now be described. [0017]
[0018] In FIG. 1, blood flows in a pipe “P”. The pipe “P” has a retaining part “B” which is expanded in diameter and holds the magnetically driven axial-flow pump. [0018]
[0019] The magnetically driven axial-flow pump consists basically of an electromagnet unit [0019] 1, a rotor 5, permanent magnets 6, and a vane 7.
[0020] The rotor [0020] 5 is disposed in the retaining part “B” so as to be freely rotatable. The rotor 5 is made of a grindable material such as iron or ceramic. The rotor 5 made of iron or ceramic is hard, strong, and durable.
[0021] The rotor [0021] 5 is in the shape of a cylinder and its wall tapers off at each end so as to make its inner diameter enlarge toward said end.
[0022] The spiral vane [0022] 7 is formed on the inner surface of the rotor 5. The central portion along the axis of the vane 7 is hollow. Therefore, the rotor 5 and the vane 7 can be made in one piece with an NC machine by, for example, the following method.
[0023] A column of desired dimensions is prepared and a through hole is made along the axis of the column. Then, the wall of the cylinder is tapered off at each end so as to make its inner diameter enlarge toward said end. Thus, the rotor [0023] 5 is made.
[0024] A spiral vane [0024] 7 is formed by inserting the arm of an NC machine into the through hole of the rotor 5 and cutting the inner surface of the rotor 5 spirally.
[0025] Because the rotor [0025] 5 and the vane 7 are formed as one piece, the surfaces of the vane 7 connected smoothly with the inner surface of the rotor 5, no gap is made in the joint between the rotor 5 and the vane 7.
[0026] In addition to the above method of forming the rotor [0026] 5 and the vane 7 as one piece, they may be formed as one piece by other methods such as casting.
[0027] Carbon may be baked onto the surfaces of the rotor [0027] 5 and the vane 7, or they may be coated with various materials. In case that the magnetically driven axial-flow pump is used to transport strongly corrosive chemicals, the rotor 5 and the vane 7 can be protected against the corrosion by the chemicals by coating them with a material durable against the chemicals.
[0028] A plurality of permanent magnets [0028] 6 is arranged circumferentially on the periphery of the rotor 5.
[0029] The electromagnet unit [0029] 1 to turn the rotor 5 is disposed about the periphery of the retaining part “B”. Besides, a pair of supporting magnets 15 and 15 to float the rotor 5 is disposed around the retaining part “B”, on both sides of the electromagnet unit 1. The supporting magnets 15 and 15 may be electromagnets.
[0030] Now the working and the effect of the magnetically driven axial-flow pump will be described. [0030]
[0031] While the pipe “P” is filled with blood, the electric power of the electromagnet unit [0031] 1 is turned on. The electromagnet unit 1 generates a rotating magnetic field, and the rotor 5 starts to rotate in accordance with the well-known principle of synchronous motors.
[0032] The speed of rotation of the rotor [0032] 5 can be controlled by controlling the current flowing through the electromagnet unit 1 with a power transistor or a thyristor.
[0033] As the rotor [0033] 5 rotates, the vane 7 generates lift, which acts on the blood in the rotor 5 to increase the energy of the blood. Accordingly, the blood in the rotor 5 is pushed in the direction of arrow “F” and the axial flow in the direction of arrow “F” occurs in the pipe “P”.
[0034] The blood flowing near the vane [0034] 7 comes in contact with its surface and generates heat due to friction. On the other hand, the blood flowing in the center portion along the axis of the vane 7 does not come in contact with the vane 7 or the rotor 5, generating a very limited amount of heat under its kinematic viscosity. Accordingly, the rise in the temperature of the blood is minimal.
[0035] As described above, the contact area between blood and the rotor [0035] 5/vane 7 is small. Therefore, the amount of heat generated between blood and the rotor 5/vane 7 is small and hence blood tissues are not destroyed by heat. Thus, the magnetically driven axial-flow pump is suitable as a blood pump.
[0036] Besides, because the rotor [0036] 5 and the vane 7 can be made as one piece with an NC machine, precluding the occurrence of gaps in the otherwise-inevitable joint between the rotor 5 and the vane 7, it is unnecessary to coat such a joint to fill such gaps. Thus, it is easy to make the rotor 5 and the vane 7. Moreover, various germs are prevented from entering blood and thrombi are not formed. Thus, the pump is suitable as a blood pump.
[0037] The invention may be embodied in other specific forms without departing from the spirit or essential characteristics thereof. The above embodiment is therefore to be considered in all respects as illustrative and not restrictive, the scope of the invention being indicated by the appended claims rather than by the foregoing description and all changes which come within the meaning and range of equivalency of the claims are therefore intended to be embraced therein. [0037]
权利要求:
Claims (1)
[1" id="US-20010009645-A1-CLM-00001] 1. A magnetically driven axial-flow pump comprising:
an electromagnet unit arranged about the periphery of a pipe;
a cylindrical rotor accommodated in the pipe;
permanent magnets mounted on the periphery of the rotor; and
a spiral vane formed on the inner surface of the rotor,
a hollow being formed in the axial center portion of the vane.
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引用文献:
公开号 | 申请日 | 公开日 | 申请人 | 专利标题
WO2006081488A2|2005-01-28|2006-08-03|Robert Thibodeau|Rotational apparatus|
US20070142696A1|2005-12-08|2007-06-21|Ventrassist Pty Ltd|Implantable medical devices|
US20070156006A1|2005-06-06|2007-07-05|The Cleveland Clinic Foundation And Foster-Miller, Inc.|Blood pump|
US20070161847A1|2001-05-21|2007-07-12|Woodard John C|Staged implantation of ventricular assist devices|
US20070238915A1|2006-03-23|2007-10-11|Woodard John C|System for preventing diastolic heart failure|
US20070265703A1|2006-05-09|2007-11-15|Ventrassist Pty Ltd.|Pulsatile control system for a rotary blood pump|
US20080183287A1|2002-09-30|2008-07-31|Ayre Peter J|Physiological demand responsive control system|
US20080200750A1|2006-11-17|2008-08-21|Natalie James|Polymer encapsulation for medical device|
US20080258657A1|2005-12-19|2008-10-23|Peter Joseph Ayre|Tuning Dc Brushless Motors|
US20080292478A1|2005-07-01|2008-11-27|Coras Medical|Axial Flow Pump with a Spiral-Shaped Vane|
US20090079106A1|2007-09-20|2009-03-26|Abiru Daisaku|Mixing method and mixer for mixing polymer dope, and solution casting process and apparatus|
US20090099406A1|2006-10-11|2009-04-16|Robert Salmonsen|Control system for a blood pump|
WO2009062261A1|2007-11-16|2009-05-22|Elemental Energy Technologies Limited|A power generator|
US20090155049A1|1997-09-05|2009-06-18|Ventrassist Pty Ltd.|Rotary pump with exclusively hydrodynamically suspended impeller|
US20090306492A1|2005-07-12|2009-12-10|Nicholas Andrew Earl|Restraining device for a percutaneous lead assembly|
US20100036487A1|2006-10-27|2010-02-11|Ventrassist Pty. Ltd.|Blood Pump With An Ultrasound Transducer|
US20100106225A1|2003-08-01|2010-04-29|Ventracor Limited|Transcutaneous Power And/Or Data Transceiver|
US20100152524A1|2006-08-31|2010-06-17|Smartin Technologies, Inc.|Modular magneto mechanical device|
US20100185280A1|1999-04-23|2010-07-22|Ventrassist Pty. Ltd|Rotary blood pump and control system therefor|
US7798952B2|2003-10-09|2010-09-21|Thoratec Corporation|Axial flow blood pump|
US20110015465A1|2005-11-04|2011-01-20|Peter Joseph Ayre|Control systems for rotary blood pumps|
US20120098369A1|2010-10-21|2012-04-26|Clifford Neal Auten|Suspended Rotors for Use in Electrical Generators and Other Devices|
US8353686B2|2004-10-18|2013-01-15|Thoratec Corporation|Rotor stability of a rotary pump|
US20140271270A1|2013-03-12|2014-09-18|Geotek Energy, Llc|Magnetically coupled expander pump with axial flow path|
US20140341726A1|2013-05-14|2014-11-20|Heartware, Inc.|Blood pump with separate mixed-flow and axial-flow impeller stages and multi-stage stators|
US8905910B2|2010-06-22|2014-12-09|Thoratec Corporation|Fluid delivery system and method for monitoring fluid delivery system|
CN104258481A|2014-10-17|2015-01-07|山东科技大学|Magnetic suspension axial flow type spiral driving device|
US20150076825A1|2013-09-17|2015-03-19|Magnetar Electric Technologies, LLC|Inline electric generator with magnetically suspended axial flow open center impeller|
CN104436338A|2013-09-17|2015-03-25|上海市东方医院|Implantable self-suspension axial-flow blood pump|
US9089635B2|2010-06-22|2015-07-28|Thoratec Corporation|Apparatus and method for modifying pressure-flow characteristics of a pump|
CN104976038A|2015-04-23|2015-10-14|李德生|Vortex barrier-free intermediate tooth spiral ring power generation device|
CN104976037A|2015-04-23|2015-10-14|李德生|Vortex barrier-free intermediate tooth groove power generation device|
CN104976032A|2015-04-21|2015-10-14|李德生|Medium-tooth hollow concave-wall power generation system|
CN104976132A|2015-04-23|2015-10-14|李德生|Barrier-free screw pump equipment|
CN104976039A|2015-04-23|2015-10-14|李德生|Vortex medium tooth turbine power generation equipment|
US20150292504A1|2012-11-05|2015-10-15|Jun Wang|Induced hollow spiral driving apparatus|
US9166458B1|2015-03-09|2015-10-20|Gordon Charles Burns, III|Pump/generator over-unity apparatus and method|
CN104989582A|2015-04-21|2015-10-21|李德生|Medium gear spiral groove power generation system|
CN105041580A|2015-04-21|2015-11-11|李德生|Tooth hollow turbine power generation system|
CN105221323A|2014-06-25|2016-01-06|袁润辉|Drainage power generator and application thereof|
CN105221322A|2014-06-25|2016-01-06|袁润辉|Drainage power generator and application thereof|
CN105298851A|2015-10-17|2016-02-03|李德生|Efficient hollow turbine pump|
CN105471135A|2015-12-21|2016-04-06|刘运念|Composite hole forming motor, excavator and ship power machine|
US20160376910A1|2013-07-17|2016-12-29|Brian Sellers|Power generating apparatus|
WO2017024203A1|2015-08-05|2017-02-09|Wade Spicer|Magnetic drive, seal-less pump|
US20170194836A1|2016-01-05|2017-07-06|Nariie Omori|Fluid electricity generation device with dual-case and rotor assembly thereof|
US9872976B2|2010-08-20|2018-01-23|Thoratec Corporation|Assembly and method for stabilizing a percutaneous cable|
US20180028990A1|2016-07-28|2018-02-01|Medisieve Ltd.|Magnetic Mixer and Method|
CN108194391A|2017-12-28|2018-06-22|大连理工大学|A kind of fluid mechanism of the attached wall unitary rotation of hollow impeller|
EP3313471A4|2015-06-29|2019-02-20|Tc1 Llc|Ventricular assist devices having a hollow rotor and methods of use|
FR3071283A1|2017-09-21|2019-03-22|Fineheart|CARDIAC PUMP EQUIPPED WITH INTERNAL BLADE TURBINE|
FR3071282A1|2017-09-21|2019-03-22|Fineheart|INTERNAL BLADE TURBINE|
CN110159475A|2019-06-13|2019-08-23|新疆农业大学|Each layer in house is lauched impact type power generation equipment|
CN112855561A|2019-11-27|2021-05-28|北汽福田汽车股份有限公司|Through-flow pump, vehicle thermal management system and vehicle|
WO2021138233A1|2019-12-31|2021-07-08|Children's National Medical Center|Durable implantable non-obstructive venous assist device for support of cavopulmonary fontan circulation|US1534451A|1922-04-11|1925-04-21|Kauter Franz|Combined rotary unit|
US2500400A|1946-10-25|1950-03-14|Byron A Cogswell|Axial flow pump|
FR1528010A|1967-04-24|1968-06-07||Converter of rectilinear motion of a fluid into circular motion of a rotating machine and vice versa|
US3719436A|1970-09-22|1973-03-06|Gorman Rupp Co|Axial flow pump|
US4688998A|1981-03-18|1987-08-25|Olsen Don B|Magnetically suspended and rotated impellor pump apparatus and method|
JPS5970897A|1982-10-14|1984-04-21|Tsurumi Seisakusho:Kk|Pressure pump for sludge water pressurization promoting work|
JPS5974390A|1982-10-19|1984-04-26|Akebono Brake Ind Co Ltd|Rotary pump|
JPS5977096A|1982-10-26|1984-05-02|Teruo Fukuda|Pump|
JPS62237091A|1986-04-09|1987-10-17|San Aroo Kk|Fluid transfer device|
US4995857A|1989-04-07|1991-02-26|Arnold John R|Left ventricular assist device and method for temporary and permanent procedures|
JPH0571492A|1991-09-12|1993-03-23|Power Reactor & Nuclear Fuel Dev Corp|Hybrid pump|
JPH062675A|1992-06-18|1994-01-11|Toshiba Corp|Fluid compressor|
US5290227A|1992-08-06|1994-03-01|Pasque Michael K|Method of implanting blood pump in ascending aorta or main pulmonary artery|
US5368438A|1993-06-28|1994-11-29|Baxter International Inc.|Blood pump|
US5951262A|1997-04-18|1999-09-14|Centriflow Llc|Mechanism for providing motive force and for pumping applications|
US5818131A|1997-05-13|1998-10-06|Zhang; Wei-Min|Linear motor compressor and its application in cooling system|US6391005B1|1998-03-30|2002-05-21|Agilent Technologies, Inc.|Apparatus and method for penetration with shaft having a sensor for sensing penetration depth|
US8641644B2|2000-11-21|2014-02-04|Sanofi-Aventis Deutschland Gmbh|Blood testing apparatus having a rotatable cartridge with multiple lancing elements and testing means|
US8372016B2|2002-04-19|2013-02-12|Sanofi-Aventis Deutschland Gmbh|Method and apparatus for body fluid sampling and analyte sensing|
US7892183B2|2002-04-19|2011-02-22|Pelikan Technologies, Inc.|Method and apparatus for body fluid sampling and analyte sensing|
US7198606B2|2002-04-19|2007-04-03|Pelikan Technologies, Inc.|Method and apparatus for a multi-use body fluid sampling device with analyte sensing|
US9226699B2|2002-04-19|2016-01-05|Sanofi-Aventis Deutschland Gmbh|Body fluid sampling module with a continuous compression tissue interface surface|
US7547287B2|2002-04-19|2009-06-16|Pelikan Technologies, Inc.|Method and apparatus for penetrating tissue|
US7041068B2|2001-06-12|2006-05-09|Pelikan Technologies, Inc.|Sampling module device and method|
US7229458B2|2002-04-19|2007-06-12|Pelikan Technologies, Inc.|Method and apparatus for penetrating tissue|
US8267870B2|2002-04-19|2012-09-18|Sanofi-Aventis Deutschland Gmbh|Method and apparatus for body fluid sampling with hybrid actuation|
US7901362B2|2002-04-19|2011-03-08|Pelikan Technologies, Inc.|Method and apparatus for penetrating tissue|
US8337419B2|2002-04-19|2012-12-25|Sanofi-Aventis Deutschland Gmbh|Tissue penetration device|
US7674232B2|2002-04-19|2010-03-09|Pelikan Technologies, Inc.|Method and apparatus for penetrating tissue|
US8360992B2|2002-04-19|2013-01-29|Sanofi-Aventis Deutschland Gmbh|Method and apparatus for penetrating tissue|
US9248267B2|2002-04-19|2016-02-02|Sanofi-Aventis Deustchland Gmbh|Tissue penetration device|
CA2448902C|2001-06-12|2010-09-07|Pelikan Technologies, Inc.|Self optimizing lancing device with adaptation means to temporal variations in cutaneous properties|
US7976476B2|2002-04-19|2011-07-12|Pelikan Technologies, Inc.|Device and method for variable speed lancet|
US9795334B2|2002-04-19|2017-10-24|Sanofi-Aventis Deutschland Gmbh|Method and apparatus for penetrating tissue|
AU2002348683A1|2001-06-12|2002-12-23|Pelikan Technologies, Inc.|Method and apparatus for lancet launching device integrated onto a blood-sampling cartridge|
US7981056B2|2002-04-19|2011-07-19|Pelikan Technologies, Inc.|Methods and apparatus for lancet actuation|
US8221334B2|2002-04-19|2012-07-17|Sanofi-Aventis Deutschland Gmbh|Method and apparatus for penetrating tissue|
US7331931B2|2002-04-19|2008-02-19|Pelikan Technologies, Inc.|Method and apparatus for penetrating tissue|
US8784335B2|2002-04-19|2014-07-22|Sanofi-Aventis Deutschland Gmbh|Body fluid sampling device with a capacitive sensor|
DE60238119D1|2001-06-12|2010-12-09|Pelikan Technologies Inc|ELECTRIC ACTUATOR ELEMENT FOR A LANZETTE|
US7909778B2|2002-04-19|2011-03-22|Pelikan Technologies, Inc.|Method and apparatus for penetrating tissue|
US7175642B2|2002-04-19|2007-02-13|Pelikan Technologies, Inc.|Methods and apparatus for lancet actuation|
US7232451B2|2002-04-19|2007-06-19|Pelikan Technologies, Inc.|Method and apparatus for penetrating tissue|
US9427532B2|2001-06-12|2016-08-30|Sanofi-Aventis Deutschland Gmbh|Tissue penetration device|
US7491178B2|2002-04-19|2009-02-17|Pelikan Technologies, Inc.|Method and apparatus for penetrating tissue|
US9314194B2|2002-04-19|2016-04-19|Sanofi-Aventis Deutschland Gmbh|Tissue penetration device|
US8579831B2|2002-04-19|2013-11-12|Sanofi-Aventis Deutschland Gmbh|Method and apparatus for penetrating tissue|
US7297122B2|2002-04-19|2007-11-20|Pelikan Technologies, Inc.|Method and apparatus for penetrating tissue|
US6607362B2|2001-10-11|2003-08-19|Agilent Technologies, Inc.|Micro paddle wheel pump for precise pumping, mixing, dispensing, and valving of blood and reagents|
US20030161739A1|2001-12-10|2003-08-28|Chu Yu-Sen James|Pump with integral motor and impeller|
CA2374989A1|2002-03-08|2003-09-08|Andre Garon|Ventricular assist device comprising a dual inlet hybrid flow blood pump|
US6731038B2|2002-03-18|2004-05-04|Charles Kuipers|Bearing-like device using magnetic force to actively aid or enhance turning or spinning movement|
DE10212693A1|2002-03-21|2003-10-02|Hilge Philipp Gmbh|Centrifugal pump easy to clean|
US8702624B2|2006-09-29|2014-04-22|Sanofi-Aventis Deutschland Gmbh|Analyte measurement device with a single shot actuator|
US20040118686A1|2002-10-02|2004-06-24|Jan Ma|Piezoelectric tubes|
US7118356B2|2002-10-02|2006-10-10|Nanyang Technological University|Fluid pump with a tubular driver body capable of selective axial expansion and contraction|
US8574895B2|2002-12-30|2013-11-05|Sanofi-Aventis Deutschland Gmbh|Method and apparatus using optical techniques to measure analyte levels|
EP2238892A3|2003-05-30|2011-02-09|Pelikan Technologies Inc.|Apparatus for body fluid sampling|
WO2004107964A2|2003-06-06|2004-12-16|Pelikan Technologies, Inc.|Blood harvesting device with electronic control|
US7074018B2|2003-07-10|2006-07-11|Sheldon Chang|Direct drive linear flow blood pump|
US7070398B2|2003-09-25|2006-07-04|Medforte Research Foundation|Axial-flow blood pump with magnetically suspended, radially and axially stabilized impeller|
US7229258B2|2003-09-25|2007-06-12|Medforte Research Foundation|Streamlined unobstructed one-pass axial-flow pump|
US8282576B2|2003-09-29|2012-10-09|Sanofi-Aventis Deutschland Gmbh|Method and apparatus for an improved sample capture device|
US9351680B2|2003-10-14|2016-05-31|Sanofi-Aventis Deutschland Gmbh|Method and apparatus for a variable user interface|
US8668656B2|2003-12-31|2014-03-11|Sanofi-Aventis Deutschland Gmbh|Method and apparatus for improving fluidic flow and sample capture|
US20050220638A1|2004-03-31|2005-10-06|Ching-Min Yang|Pump device|
GB2413364A|2004-04-20|2005-10-26|Chris Wheatley|Integrated pump with driven hollow shaft|
WO2006011062A2|2004-05-20|2006-02-02|Albatros Technologies Gmbh & Co. Kg|Printable hydrogel for biosensors|
US9775553B2|2004-06-03|2017-10-03|Sanofi-Aventis Deutschland Gmbh|Method and apparatus for a fluid sampling device|
EP1765194A4|2004-06-03|2010-09-29|Pelikan Technologies Inc|Method and apparatus for a fluid sampling device|
WO2006001797A1|2004-06-14|2006-01-05|Pelikan Technologies, Inc.|Low pain penetrating|
US7699586B2|2004-12-03|2010-04-20|Heartware, Inc.|Wide blade, axial flow pump|
US8652831B2|2004-12-30|2014-02-18|Sanofi-Aventis Deutschland Gmbh|Method and apparatus for analyte measurement test time|
US7822454B1|2005-01-03|2010-10-26|Pelikan Technologies, Inc.|Fluid sampling device with improved analyte detecting member configuration|
US7972122B2|2005-04-29|2011-07-05|Heartware, Inc.|Multiple rotor, wide blade, axial flow pump|
CN1880167B|2005-06-17|2010-04-14|智点科技股份有限公司|Jet fluid bundled propeller|
US20130209292A1|2005-07-01|2013-08-15|Doan Baykut|Axial flow blood pump with hollow rotor|
US8419609B2|2005-10-05|2013-04-16|Heartware Inc.|Impeller for a rotary ventricular assist device|
ITMI20060633A1|2006-03-31|2007-10-01|Flavio Novelli|AUGER ELECTRIC TRACTION SYSTEM|
JP4791987B2|2007-03-06|2011-10-12|パナソニック電工株式会社|Vane pump|
AT498060T|2007-05-24|2011-02-15|Lindenmaier Gmbh|TURBOCHARGER|
EP2249746B1|2008-02-08|2018-10-03|Heartware, Inc.|Ventricular assist device for intraventricular placement|
WO2009126900A1|2008-04-11|2009-10-15|Pelikan Technologies, Inc.|Method and apparatus for analyte detecting device|
HUE055876T2|2008-10-10|2021-12-28|Medicaltree Patent Ltd|Heart help pump|
EP2194278A1|2008-12-05|2010-06-09|ECP Entwicklungsgesellschaft mbH|Fluid pump with a rotor|
US9375169B2|2009-01-30|2016-06-28|Sanofi-Aventis Deutschland Gmbh|Cam drive for managing disposable penetrating member actions with a single motor and motor and control system|
EP2216059A1|2009-02-04|2010-08-11|ECP Entwicklungsgesellschaft mbH|Catheter device with a catheter and an actuation device|
EP2229965A1|2009-03-18|2010-09-22|ECP Entwicklungsgesellschaft mbH|Fluid pump with particular form of a rotor blade|
EP2246078A1|2009-04-29|2010-11-03|ECP Entwicklungsgesellschaft mbH|Shaft assembly with a shaft which moves within a fluid-filled casing|
WO2010124703A1|2009-04-30|2010-11-04|Braeuer Hans|Device for filtering fluids|
EP2248544A1|2009-05-05|2010-11-10|ECP Entwicklungsgesellschaft mbH|Fluid pump with variable circumference, particularly for medical use|
EP2266640A1|2009-06-25|2010-12-29|ECP Entwicklungsgesellschaft mbH|Compressible and expandable turbine blade for a fluid pump|
EP2282070B1|2009-08-06|2012-10-17|ECP Entwicklungsgesellschaft mbH|Catheter device with a coupling device for a drive device|
EP2298373A1|2009-09-22|2011-03-23|ECP Entwicklungsgesellschaft mbH|Fluid pump with at least one turbine blade and a seating device|
EP2299119B1|2009-09-22|2018-11-07|ECP Entwicklungsgesellschaft mbH|Inflatable rotor for a fluid pump|
EP2298371A1|2009-09-22|2011-03-23|ECP Entwicklungsgesellschaft mbH|Function element, in particular fluid pump with a housing and a transport element|
EP2298372A1|2009-09-22|2011-03-23|ECP Entwicklungsgesellschaft mbH|Rotor for an axial pump for transporting a fluid|
EP2314331B1|2009-10-23|2013-12-11|ECP Entwicklungsgesellschaft mbH|Catheter pump arrangement and flexible shaft arrangement with a cable core|
EP2314330A1|2009-10-23|2011-04-27|ECP Entwicklungsgesellschaft mbH|Flexible shaft arrangement|
US8690749B1|2009-11-02|2014-04-08|Anthony Nunez|Wireless compressible heart pump|
EP2338541A1|2009-12-23|2011-06-29|ECP Entwicklungsgesellschaft mbH|Radial compressible and expandable rotor for a fluid pump|
EP2338540A1|2009-12-23|2011-06-29|ECP Entwicklungsgesellschaft mbH|Delivery blade for a compressible rotor|
EP2338539A1|2009-12-23|2011-06-29|ECP Entwicklungsgesellschaft mbH|Pump device with a detection device|
EP2347778A1|2010-01-25|2011-07-27|ECP Entwicklungsgesellschaft mbH|Fluid pump with a radially compressible rotor|
EP2363157A1|2010-03-05|2011-09-07|ECP Entwicklungsgesellschaft mbH|Device for exerting mechanical force on a medium, in particular fluid pump|
US8965476B2|2010-04-16|2015-02-24|Sanofi-Aventis Deutschland Gmbh|Tissue penetration device|
EP2388029A1|2010-05-17|2011-11-23|ECP Entwicklungsgesellschaft mbH|Pump array|
US9795747B2|2010-06-02|2017-10-24|Sanofi-Aventis Deutschland Gmbh|Methods and apparatus for lancet actuation|
EP2399639A1|2010-06-25|2011-12-28|ECP Entwicklungsgesellschaft mbH|System for introducing a pump|
EP2407185A1|2010-07-15|2012-01-18|ECP Entwicklungsgesellschaft mbH|Radial compressible and expandable rotor for a pump with a turbine blade|
EP2407186A1|2010-07-15|2012-01-18|ECP Entwicklungsgesellschaft mbH|Rotor for a pump, produced with an initial elastic material|
EP2407187A3|2010-07-15|2012-06-20|ECP Entwicklungsgesellschaft mbH|Blood pump for invasive application within the body of a patient|
EP2422735A1|2010-08-27|2012-02-29|ECP Entwicklungsgesellschaft mbH|Implantable blood transportation device, manipulation device and coupling device|
CN102019002A|2010-12-03|2011-04-20|中山哈特人工心脏实验室有限公司|Implanted hollow minimal axial blood pump|
EP2497521A1|2011-03-10|2012-09-12|ECP Entwicklungsgesellschaft mbH|Push device for axial insertion of a string-shaped, flexible body|
DE102011075097A1|2011-05-02|2012-11-08|Krones Aktiengesellschaft|Device for moving a fluid|
EP2564771A1|2011-09-05|2013-03-06|ECP Entwicklungsgesellschaft mbH|Medicinal product with a functional element for invasive use in the body of a patient|
US8926492B2|2011-10-11|2015-01-06|Ecp Entwicklungsgesellschaft Mbh|Housing for a functional element|
JP6139550B2|2011-11-28|2017-05-31|ミ‐ヴァド インコーポレイテッド|Auxiliary circulation apparatus and method|
EP2942527B1|2013-01-07|2018-04-11|National University Corporation Kobe University|Axial flow blood pump|
WO2015130768A2|2014-02-25|2015-09-03|KUSHWAHA, Sudhir|Ventricular assist device and method|
CN103893849B|2014-04-15|2016-01-20|中南大学|A kind of full-implantation type axial blood pump of air gaps magnetically-actuated and control method thereof|
NO338808B1|2014-11-10|2016-10-24|Vetco Gray Scandinavia As|Modular Hydrocarbon Fluid Taskbar|
CN104976131A|2015-04-23|2015-10-14|李德生|Externally-driven barrier-free screw pump equipment|
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CN105041666A|2015-04-23|2015-11-11|李德生|External drive high-efficiency turbine pump device|
US10851791B2|2016-12-19|2020-12-01|Okinawa Institute Of Science And Technology School Corporation|Contactless magnetic couplings for microfluidic devices and nautical propulsion|
US11152283B2|2018-11-15|2021-10-19|Hewlett Packard Enterprise Development Lp|Rack and row-scale cooling|
US11015608B2|2018-12-10|2021-05-25|Hewlett Packard Enterprise Development Lp|Axial flow pump with reduced height dimension|
DE102019216948A1|2019-11-04|2021-05-06|Uwe Jetstream Gmbh|Conveying device for conveying water, countercurrent system with such a conveying device, and swimming pools|
WO2021230238A1|2020-05-15|2021-11-18|国立大学法人東京工業大学|Pump mechanism|
CN111676684B|2020-07-23|2021-11-12|徐州力达缝纫设备制造有限公司|Low-noise and low-consumption cloth floating wool removing equipment|
法律状态:
2000-12-27| AS| Assignment|Owner name: NISSHO CORPORATION, JAPAN Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:NODA, HIROYUKI;REEL/FRAME:011414/0510 Effective date: 20001208 |
2001-05-30| AS| Assignment|Owner name: NIPRO CORPORATION, JAPAN Free format text: CHANGE OF NAME;ASSIGNOR:NISSHO CORPORATION;REEL/FRAME:011851/0109 Effective date: 20010402 |
2006-08-11| FPAY| Fee payment|Year of fee payment: 4 |
2010-08-11| FPAY| Fee payment|Year of fee payment: 8 |
2014-10-10| REMI| Maintenance fee reminder mailed|
2015-03-04| LAPS| Lapse for failure to pay maintenance fees|
2015-03-30| STCH| Information on status: patent discontinuation|Free format text: PATENT EXPIRED DUE TO NONPAYMENT OF MAINTENANCE FEES UNDER 37 CFR 1.362 |
2015-04-21| FP| Expired due to failure to pay maintenance fee|Effective date: 20150304 |
优先权:
申请号 | 申请日 | 专利标题
JP2000017504A|JP2001207988A|2000-01-26|2000-01-26|Magnetic driving type axial flow pump|
JP2000-017504||2000-01-26||
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