AU2003200128B2 - A Pump - Google Patents

A Pump Download PDF

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Publication number
AU2003200128B2
AU2003200128B2 AU2003200128A AU2003200128A AU2003200128B2 AU 2003200128 B2 AU2003200128 B2 AU 2003200128B2 AU 2003200128 A AU2003200128 A AU 2003200128A AU 2003200128 A AU2003200128 A AU 2003200128A AU 2003200128 B2 AU2003200128 B2 AU 2003200128B2
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AU
Australia
Prior art keywords
chamber
assembly
pump
rotor
fluid
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Ceased
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AU2003200128A
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AU2003200128A1 (en
Inventor
Fernando Augusto Becker
Ricardo Augusto De Facci Oliveira
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Eberle Equipamentos e Processos SA
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Eberle Equipamentos e Processos SA
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Publication of AU2003200128A1 publication Critical patent/AU2003200128A1/en
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Publication of AU2003200128B2 publication Critical patent/AU2003200128B2/en
Anticipated expiration legal-status Critical
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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D13/00Pumping installations or systems
    • F04D13/02Units comprising pumps and their driving means
    • F04D13/06Units comprising pumps and their driving means the pump being electrically driven
    • F04D13/0646Units comprising pumps and their driving means the pump being electrically driven the hollow pump or motor shaft being the conduit for the working fluid
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D29/00Details, component parts, or accessories
    • F04D29/58Cooling; Heating; Diminishing heat transfer
    • F04D29/5806Cooling the drive system
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D29/00Details, component parts, or accessories
    • F04D29/70Suction grids; Strainers; Dust separation; Cleaning
    • F04D29/708Suction grids; Strainers; Dust separation; Cleaning specially for liquid pumps

Landscapes

  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Thermal Sciences (AREA)
  • Structures Of Non-Positive Displacement Pumps (AREA)
  • Rotary Pumps (AREA)
  • Containers And Packaging Bodies Having A Special Means To Remove Contents (AREA)

Description

1 A PUMP Field of the Invention The present invention relates to a pump, more specifically, a hydraulic one. Background of the Invention 5 At present, there are different types of electro-mechanical pumps used for driving fluids, generally constituted of a chamber containing the electro-magnetic part, basically comprising the stator and the rotor armature, as well as another chamber with a hydraulic part, basically formed of the hydraulic turbine that drives the liquid. However, the electro magnetic and hydraulic chambers need to be insulated from each other so as to prevent the 10 liquid from reaching the stator and the rotor, causing short-circuits and even irreparable damage. Thus, in order to achieve this insulation of the chambers and transmission of rotation movement from the rotor to the hydraulic turbine, several mechanical apparatus are required, such as an axle, roller bearings, bearing journals, cooling systems, hydraulic seals, among others. is The roller bearing journals, for instance, have the function of supporting the rotor axle, on which the rotor cage is mounted, so that, when the latter is induced by magnetic forces from the stator, the rotor turns, assisted by these bearings. Of course, the journals are lubricated with oil or grease so as to decrease friction and wear between the parts in contact. One end of the rotor axle is connected to the hydraulic turbine, formed of blades, 20 which, upon induction of the rotor, begins a rotational movement driving the liquid to be pumped. To prevent the temperature of both the stator and the rotor from reaching undesired levels during their functioning, external cooling systems are used, usually constituted of ventilators. Such cooling systems generally comprise propellers coupled to the end of the 25 rotor axle, outside the pump and opposed to the hydraulic pump, which, taking advantage of the rotation of the rotor, turns to cool both the stator and the rotor. The pumps of the prior art depend upon the perfect functioning of the mechanical seals to prevent the liquid from passing from the hydraulic chamber into the electro-magnetic chamber. As already mentioned, this undesirable contact of the liquid with the stator and 30 rotor may cause short-circuits, as well as a decrease in the lubrication of the journals, resulting in possible seizure of the rotor. Therefore, one can verify the fact that the prior art pumps have hydraulically insulated chambers, wherein an induced, rotor located in a hermetically sealed chamber, transmits rotation by means of its axle to a hydraulic turbine located in another liquid- 2 passage chamber, making it necessary for these pumps to have a number of sealing mechanisms to prevent the occurrence of damage that might even render them useless. In addition, with use and the consequent wear of these mechanisms, such pumps lose their mechanical efficiency. Thus, this combination has the drawback of entailing high costs, 5 because it involves expensive parts, a complex manufacturing process and constant maintenance to keep such pumps functioning. Object of the Invention It is the object of the present invention to substantially overcome or at least ameliorate one or more of the prior art disadvantages or at least provide a useful i0 alternative. Summary of the Invention The present invention provides a centrifugal hydraulic pump comprising: a casing having at least one first hermetically sealed chamber, and at least one second chamber adjacent to said first chamber, defining a passageway for fluids and having is an inlet and an outlet for the fluids, the first and second chambers being separated from each other by walls; a stator located in said first chamber; and a rotor-turbine assembly, with rotor and turbine, and being capable of being induced by the stator to drive a fluid from the inlet to the outlet, at least a portion of said assembly 20 being positioned concentrically with respect to the stator, wherein the rotor and the turbine are integral and are wholly located in the second chamber, so that, when in operation, a film of fluid will be maintained around said assembly to provide a support therefor, wherein said rotor-turbine assembly is bored through, defining an internal fluid passageway; 25 said integral rotor-turbine is supported in said pump bearing free; and a filtration assembly, suitable for filtering a fluid to be impelled by the pump, is positioned in the second chamber in the fluid passageway downstream of the pump inlet and upstream of the through internal passageway.
3 A preferred embodiment of the present invention simplifies the composition of a traditional pump by eliminating sealings, such as mechanical seals or gaskets, as well as roller bearings, axles and external cooling systems, such as ventilators, thereby reducing the chance of the pump being damaged. This new pump motor further provides cooling of the 5 stator-rotor assembly by circulating the pumped fluid itself, as described in Brazilian Patent Application No. PI 0004206-4 which is incorporated herein by reference. In addition, a preferred embodiment of the present invention also provides a new pump that is more compact than the present ones, easy to manufacture and assemble, by virtue of its smaller number of components, thus resulting in better automation and cost 10 reduction. Another feature of a preferred embodiment of the present invention is to provide a pump design that is more efficient, that is, presenting lower energy loss. In addition, the preferred embodiment aims at providing a safer, more protected and corrosion proof pump motor, enabling immersion and installation in environments is that are aggressive and without cooling. A further feature of a preferred embodiment of the present invention is to provide a pump with a very low noise level and lubrication provided by the circulating fluid itself. In a preferred embodiment, the stator is in a position adjacent to the walls that separate the first chamber from the second chamber, so that the fluid circulating through 20 the second chamber will cool it by heat transmission. An integral rotor-turbine assembly, preferably wholly located in the second chamber, is provided, and at least a portion of said assembly is positioned concentrically in relation to the stator. This assembly is induced by the stator to drive a fluid from the inlet to the outlet. When the pump is functioning, at least a fluid film is maintained around the assembly, in order to bring 25 about high performance/accurate rotation with minimum friction and without any need for journals. In other words, when the assembly is induced by the stator, the fluid film works as a bearing to support the assembly. The space between said assembly and the stator, called a gap, is substantially filled with said walls of the first and second chambers, including, furthermore, the fluid film circulating between them. 30 In the preferred embodiment a metallic component, called the rotor cage, preferably composed of iron and aluminium, capable of being induced by the stator, is provided inside the hermetically sealed assembly. In the preferred embodiment, such an assembly is made from polymeric material and is additionally bored through to provide a passage for the turbine inside the rotor. In possible embodiments of the present invention, 4 the turbine of said assembly is composed of turbine blades to centrifuge the fluids. In this way, upon functioning of a possible embodiment of the pump, the fluid, after passing through the inlet of the second chamber, goes into the rotor-turbine assembly, passes through the internal passageway and, after reaching the turbine blades, is driven towards 5 the outlet. However, a portion of the fluid, instead of coming out directly through the outlet, circulates around the first chamber and cools the stator by heat transmission. In this way, the need for an external cooling system is eliminated, since the heat exchange between the circulating fluid and the driving assembly will result in cooling this assembly, so that its 1o temperature will always preferably remain at desirable levels for its good functioning. In addition, the circulating fluid is also used as a lubricant. A film of circulating fluid will pass between the walls of the second chamber and the rotor-turbine assembly, allowing the latter to make a floating rotary movement within the second chamber by virtue of the inducing forces. is In a preferred embodiment, the first chamber provides a circular path with a filtration zone, whereby the fluid, upon entry via the pump's fluid inlet, circulates through a portion of the first chamber, passes through a filter and proceeds to a turbine assembly, after which it is propelled to the fluid outlet, as well as allowing part of the fluid to enter a portion of the second chamber, providing cooling of the pump motor. Additionally, the 20 present pump further incorporates front and rear covers for the principal housing. In view of the foregoing, the pump of the preferred embodiment provides a simpler configuration with less expensive manufacture, since it is basically composed of an induction means and a movement-transmission means similar to those of the prior art, such as stators and rotors, which eliminate the use of a ventilator, as well as roller 25 bearings, axles and mechanical seals. Brief Description of the Drawings Preferred embodiments of the present invention will now be described, by way of an examples only, with reference to the accompanying drawings wherein: Figure 1 is a cross-section side view of a typical pump motor of the prior art; 30 Figure 2 is a cross-section side view of an embodiment depicted in Applicant's Australian Patent No. 2002300182; Figure 3 is a side cross-section view of a preferred embodiment of the present invention; 5 Figure 4 is an exploded perspective view of the pump depicted in Figure 3, allowing a clearer visualization of its components; and Figure 5 is a side cross-section view, similar to that in Figure 3, in which the course of the fluid inside the pump is shown. 5 Detailed Description of the Drawings Figure 1 shows a present-day pump, encountered in the prior art, comprising a coiled stator 4, a rotor 5 and roller bearings 3, which support the axle 9 on which the cage of said rotor 5 is mounted. The axle 9 will be responsible for transmitting driving force from the rotor 5 by means of induction of the magnetic field of the stator 4. One can also note in this 10 figure the existence of a ventilator 1, which is responsible for cooling the stator-rotor assembly, and of covers 2 located on both sides of the rotor 5, which support said roller bearings. In addition, in order to achieve a good functioning of this type of pump motor, the rotor 5 has to be perfectly centered with respect to the stator 4, so as to avoid contact between is their magnetic iron. In the pump motor represented in figure 1, this space between the rotor 5 and the stator 4, called a gap, is filled with air. Figure 1 further illustrates mechanical seals 8, which are widely used in the pump motors of the prior art, to guarantee insulation and separation between the electric part and the hydraulic part of the pump motor, the hydraulic part being constituted of the turbine 7 20 and the volute 6. Figure 2, on the other hand, illustrates an embodiment of Applicant's Australian Patent No. 2002300182, in which some of the elements shown in figure 1 are absent. This embodiment illustrates a pump 10 comprising a casing 14 having a first hermetically sealed chamber 19 and a second internal chamber 17 with at least one inlet 15 and one outlet 16 25 defining the passageway 18 between said inlet and outlet. The casing 14 may be made from a polymeric material or any other type of material suitable for the specified conditions, including bad weather. An integral rotor-turbine assembly II is located in the chamber 17 to drive the fluids that pass through said chamber. This assembly is made from a polymeric material and, in 30 addition, is bored through to define a passageway for the turbine inside the rotor. In this embodiment, the turbine of said assembly is composed of blades for centrifuging the fluids. In this way, when in operation, the fluid, after passing through the inlet 15 of the chamber 17, goes into the rotor-turbine assembly 11, passes through the internal passageway, and, after reaching the turbine blades, is driven toward the outlet 16.
6 The casing 14 also has a first chamber 19, hermetically sealed from the fluids that circulate through the second chamber 17. Both the external walls of the casing and the walls that separate the second chamber 17 from the first chamber 19 are formed of injectable polymeric material. In addition, the stator 12, which may be any one of those known from the 5 prior art, is installed in this first chamber 19 to induce, by means of a magnetic field, the driving of the rotor-turbine assembly 11, located in the second chamber 17 of fluid circulation. This embodiment of the pump also has its second chamber 17 defining passageways other than that going from the inlet to the outlet, so that a portion of the fluids will circulate 1o through this chamber. Such passageways in this embodiment cause the fluid to circulate around the first chamber 19, cooling the stator 12 located therein by heat transmission. In addition, a small portion of the fluid that enters inlet 15 and circulates through the second chamber 17 passes through the communication means 13 between one of the walls of the second chamber 17 and the rotor-turbine assembly 11, creating a constant fluid film, is which enables this assembly to turn freely submerged in the liquid, without having any contact with the walls of the second chamber 17 while the pump is functioning. In this way, when the assembly is induced by the stator 12, the fluid film works as a bearing to support the assembly 11 and, at the same time, as a lubricant that virtually eliminates friction between the walls of the second chamber and of the assembly 11, further resulting in a very 20 low noise level. Although the assembly 11 is submerged in the liquid, without contact with the walls of the second chamber 17, the magnetic field created by the stator 12 maintains the former in a balanced position around its axle, so that, upon rotational movement, the magnetic forces prevent the assembly from contacting the walls of the second chamber 17. In view of the foregoing, since the second chamber 17 has passageways that enable 25 the liquid to circulate through it, a reduction in noise level is achieved, and this also eliminates the need for industrial lubricants and external cooling systems. Since, in a preferred embodiment of the pump, the pump is basically composed of an injectable polymeric material and there is a decrease in the number of components (i.e. does not include seals) in comparison with those of the prior art, it becomes simpler and less expensive to 30 assemble. In addition, the energy losses are minimized by the low friction between the rotor turbine assembly 11 and the walls of the second chamber 17. Another aspect of the illustrated embodiment is that the space between the stator 4 and the rotor 5 of the pumps of the prior art, the so-called gaps, are filled with air. On the other hand, in addition to the liquid layer 13, there is the polymeric wall of both the second 7 chamber 17 and the rotor-turbine assembly 11, providing accurate centering of the magnetic materials of the stator 12 and the assembly 11, as well as a better balanced position of the latter around its axle, so that, upon rotation, contact with the walls of the second chamber 17 will be avoided. 5 In addition, the illustrated embodiment also provides a non-corrosive pump, since only the surface covered with polymer will have contact with the fluid. Therefore, the latter may be aggressive without causing any damage to the pump motor. In addition, since the liquid itself is used as a coolant, the pump of the present invention may be installed in environments without ventilation or even submerged. 10 Figure 3 illustrates a preferred embodiment of the present invention, where one can observe the absence of some components shown in Figure 1, the latter representing the state of the art in pumps. This embodiment illustrates pump 110 comprising housing 114, its first chamber 119 impervious to liquids, second chamber 117 defining a fluid path, and filtration zone 120 positioned in the inlet portion of second chamber 117 and directed towards the path is between the inlet and outlet of passage 118, this providing communication for the fluid between inlet 115 and outlet 116. Housing 114 may be made of polymeric material or of any other type suitable to cope even with adverse conditions, as determined. Furthermore, this pump consists of covers, both frontal 121 and rear 122 for housing 114, these allowing easy access to the pump mechanism for eventual maintenance and/or part 20 replacement operations. Thus, besides all of the advantages already set forth and indicated in the embodiment in figure 2, the embodiment of figure 3 provides a new technical effect by the provision of filtration zone 120. Such a new technical effect lies in the filtration of the fluid in utilizations that require pumping of a fluid that is already treated, as well as in obtaining 25 enhanced cooling by heat exchange produced by the fluid circulating the filtration zone 120 and the second chamber 117 around the first chamber 119 housing the stator assembly of the pump. In order to facilitate understanding of the matter defined in this application, reference is also made to Figure 4, which shows an exploded perspective view of the pump. 30 As may be observed, pump 110 possesses cover 121, in which the referred filtration zone 120 is located, the latter housing removable filter assembly 128. This filter assembly 128 comprises filter cover 123 and filter element 127. Wall 124 in connection with cover 121 defines portion 120a (Fig. 5) of the filtration zone 120. The stator assembly is represented by reference 112. Inside principal housing 114, the separating walls for stator assembly 112 are 8 illustrated. A rotor, as described in figure 2, is also shown in the referred figure 3 with reference 111. Said rotor 111 is integrally incorporated with turbine 125, these being separated in this figure in order to facilitate visualization of the whole assembly. Passage 118, mentioned previously, is also depicted in this figure, inside the turbine pipe 125. It also 5 shows disc 126 with the turbine blades, responsible for impulsion of the fluid, for instance water, towards fluid outlet 116, as well as the inside of second chamber 117. Finally, cover 122, responsible for closing the principal housing, is shown. Also presented for merely illustrative purposes, figure 5 shows the course of the fluid inside pump 110 in accordance with the preferred embodiment of the invention, this to course being represented by arrows. Upon entry to the pump via inlet 115, the fluid circulates in filtration zone 120, providing initial cooling for the motor, and then through portion 120a towards passage 118, inside the rotor and turbine assembly. By the rotation action of the latter assembly, the fluid is propelled through second chamber 117, after which it goes to pump outlet 116. Part of the fluid propelled by the rotor-turbine assembly circulates in is second chamber 117, producing a second cooling action for the motor. This fluid also runs along passage 113, forming a film between the stator and the rotor so as to cool the gap region of the motor, and, especially to avoid friction and noise generated by the rotation of the rotor. The fluid that runs along referred passage 113 is then returned to passage 118, to be propelled once more by the rotor-turbine assembly in chamber 117. 20 Brazilian Patent Application Nos. PI0103034-5 filed July 16, 2001 and Cl 0103034 5 filed September 16, 2002 and US Patent Publication No. 20030012648 (Application No. 10/050,033) are herein incorporated by reference in their entirety. Having described an example of preferred embodiments of the invention, it should be understood that the scope of the present invention embraces other possible variations, 25 being limited only by the contents of the accompanying claims.

Claims (11)

1. A centrifugal hydraulic pump comprising: a casing having at least one first hermetically sealed chamber, and at least one second chamber adjacent to said first chamber, defining a passageway for fluids and having 5 an inlet and an outlet for the fluids, the first and second chambers being separated from each other by walls; a stator located in said first chamber; and a rotor-turbine assembly, with rotor and turbine, and being capable of being induced by the stator to drive a fluid from the inlet to the outlet, at least a portion of said assembly io being positioned concentrically with respect to the stator, wherein the rotor and the turbine are integral and are wholly located in the second chamber, so that, when in operation, a film of fluid will be maintained around said assembly to provide a support therefor, wherein said rotor-turbine assembly is bored through, defining an internal fluid passageway; is said integral rotor-turbine is supported in said pump bearing free; and a filtration assembly, suitable for filtering a fluid to be impelled by the pump, is positioned in the second chamber in the fluid passageway downstream of the pump inlet and upstream of the through internal passageway.
2. The pump according to claim 1, wherein said walls of the first and second 20 chambers are made of injectable polymer.
3. The pump according to claim 1, wherein said rotor-turbine assembly is of a polymeric material, having a metallic component inside, which is capable of being induced by the stator.
4. The pump according to claim 3, wherein said metallic component is 25 composed of iron and aluminum.
5. The pump according to claim 1, wherein said stator is located in a position adjacent to the walls that separate said first chamber from the said second chamber, so that fluid circulating in the second chamber can cool it by heat transmission.
6. The pump according to claim 1, wherein the turbine of said assembly is 30 composed of blades for centrifuging the fluids.
7. The pump according to claim 1, wherein a space between said assembly and the stator is substantially filled up by said walls of the first and the second chambers. 10
8. The pump in accordance with claim 1, wherein the filtration assembly comprises a replaceable filter element and cover.
9. The pump in accordance with claim 1, wherein the opening of the inlet is coaxial with a hollow interior in the rotor-turbine assembly and establishes a course for the 5 fluid, extending initially downward and then extending to upper portion of said second chamber, where it reaches the filtration assembly, the course of the fluid proceeding beyond the filtration assembly, via an intermediate chamber, and then on to a passage that constitutes the hollow interior of the rotor and turbine assembly.
10. The pump in accordance with claim 1, in which the housing comprises a io front cover and a rear cover closing the ends of the housing.
11. A centrifugal hydraulic pump, substantially as hereinbefore described with reference to Figures 3 to 5 of the accompanying drawings. Dated 15 June, 2009 Eberle Equipamentos E Processos S.A. is Patent Attorneys for the Applicant/Nominated Person SPRUSON & FERGUSON
AU2003200128A 2001-07-16 2003-01-16 A Pump Ceased AU2003200128B2 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
BRPI0103034-5A BR0103034B1 (en) 2001-07-16 2001-07-16 bomb.
BRC10103034-5 2002-09-16

Publications (2)

Publication Number Publication Date
AU2003200128A1 AU2003200128A1 (en) 2004-04-01
AU2003200128B2 true AU2003200128B2 (en) 2009-07-16

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AU2002300182A Ceased AU2002300182B2 (en) 2001-07-16 2002-07-16 A Pump
AU2003200128A Ceased AU2003200128B2 (en) 2001-07-16 2003-01-16 A Pump

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AU2002300182A Ceased AU2002300182B2 (en) 2001-07-16 2002-07-16 A Pump

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US (1) US20030012648A1 (en)
EP (2) EP1277965B1 (en)
JP (2) JP4180853B2 (en)
AR (1) AR030789A1 (en)
AT (1) ATE491886T1 (en)
AU (2) AU2002300182B2 (en)
BR (1) BR0103034B1 (en)
CA (2) CA2393243C (en)
DE (1) DE60335328D1 (en)
DK (1) DK1398508T3 (en)
ES (2) ES2612908T3 (en)
HK (1) HK1063498A1 (en)
MX (2) MXPA02006940A (en)
PT (2) PT1277965T (en)

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DE102006023379B4 (en) * 2006-05-17 2013-10-02 Al-Ko Kober Ag liquid pump
JP5371939B2 (en) * 2010-12-07 2013-12-18 株式会社市丸技研 Fluid feeder and tire vulcanizer
CN102828998B (en) * 2012-08-29 2014-12-10 三一重工股份有限公司 Water pump for engine, engine and engineering machinery equipped with water pump
RU2548698C2 (en) * 2013-03-01 2015-04-20 Открытое акционерное общество "Информационные спутниковые системы" имени академика М.Ф. Решетнёва" Electric pump unit
BR102014021617B1 (en) 2014-09-01 2023-04-11 Mundial S/A Produtos De Consumo FLOATING BEARING MOTOR PUMP COOLED BY A CIRCULATING FLUID
US10551498B2 (en) 2015-05-21 2020-02-04 Navico Holding As Wireless sonar device
US9759813B2 (en) 2015-06-22 2017-09-12 Appetite Lab Inc. Devices and methods for locating and visualizing underwater objects
EP3156663B1 (en) * 2015-10-15 2019-07-24 Grundfos Holding A/S Centrifugal pump assembly
CN106704208A (en) * 2017-03-06 2017-05-24 威隼汽车科技(宁波)有限公司 Automobile electronic water pump
RU181506U1 (en) * 2017-04-10 2018-07-17 Владислав Савельевич Медведев Sealed Hollow Shaft Electric Motor Rotor
CN114109907A (en) * 2020-08-27 2022-03-01 芜湖美的厨卫电器制造有限公司 Pump cover, water pump and water heater
CN112283166B (en) * 2020-11-09 2022-06-24 江苏优格曼航空科技有限公司 A easily install casing structure for high-speed magnetic suspension fan
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EP1398508A3 (en) 2004-09-01
EP1277965A2 (en) 2003-01-22
PT1277965T (en) 2017-02-13
CA2416085A1 (en) 2004-03-16
ES2612908T3 (en) 2017-05-19
EP1398508A2 (en) 2004-03-17
AU2002300182B2 (en) 2008-01-10
BR0103034A (en) 2003-07-29
JP2004108353A (en) 2004-04-08
CA2393243A1 (en) 2003-01-16
DE60335328D1 (en) 2011-01-27
BR0103034B1 (en) 2009-05-05
EP1277965B1 (en) 2016-11-02
BR0103034C1 (en) 2003-11-04
JP2003097482A (en) 2003-04-03
AR030789A1 (en) 2003-09-03
PT1398508E (en) 2011-03-15
EP1398508B1 (en) 2010-12-15
JP4180853B2 (en) 2008-11-12
US20030012648A1 (en) 2003-01-16
AU2003200128A1 (en) 2004-04-01
HK1063498A1 (en) 2004-12-31
ES2358012T3 (en) 2011-05-04
EP1277965A3 (en) 2004-08-04
DK1398508T3 (en) 2011-03-28
MXPA03000417A (en) 2004-12-09
CA2393243C (en) 2008-10-14
ATE491886T1 (en) 2011-01-15
MXPA02006940A (en) 2004-12-13

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