SEALING ASSEMBLY FOR A PROGRESSIVE CAVITY PUMP
20230258177 ยท 2023-08-17
Inventors
- Ilya Sitnitsky (Nahariya, IL)
- Alexander Shechtman (Haifa, IL)
- Assaf Govari (Haifa, IL)
- Stanislav Katzir (Hadera, IL)
- Elad Avraham Diukman (Haifa, IL)
Cpc classification
F04C2270/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/1075
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C11/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/0034
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/0019
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04C2/107
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A sealing assembly for a progressive cavity pump and a progressive cavity pump assembly having a retaining sleeve, a ring, and an elastic diaphragm terminating in a first end of the diaphragm in a first opening, and in a second end of the diaphragm, opposite the first end, in a second opening larger than the first opening. The second opening is held in contact with the retaining sleeve by the ring, and the first opening is configured to grip a rotor of the progressive cavity pump, and the ring is configured to hold the second opening fixed with respect to a stator of the progressive cavity pump.
Claims
1. A sealing assembly for a progressive cavity pump, comprising: a retaining sleeve; a ring; and an elastic diaphragm terminating in a first end of the diaphragm in a first opening, and in a second end of the diaphragm, opposite the first end, in a second opening larger than the first opening, wherein the second opening is held in contact with the retaining sleeve by the ring, and wherein the first opening is configured to grip a rotor of the progressive cavity pump, and wherein the ring is configured to hold the second opening fixed with respect to a stator of the progressive cavity pump.
2. The sealing assembly according to claim 1, further comprising a further sleeve that is configured to be positioned between the first opening of the diaphragm and the rotor.
3. The sealing assembly according to claim 2, further comprising an O-ring, wherein the O-ring is configured to be positioned between the further sleeve and the rotor, and wherein the O-ring is configured to grip the rotor.
4. The sealing assembly according to claim 1, wherein the retaining sleeve comprises an aperture having an aperture diameter, and wherein the rotor is located within the aperture and has a rotor diameter smaller than the aperture diameter so as to permit the rotor to move in a planetary motion.
5. The sealing assembly according to claim 1, wherein an inner surface diameter of the retaining sleeve is larger than a diameter of the first opening of the diaphragm, so as to permit the rotor to move in a planetary motion.
6. The sealing assembly according to claim 1, wherein the elastic diaphragm has a conical shape.
7. The sealing assembly according to claim 2, wherein the O-ring is elastomeric.
8. The sealing assembly according to claim 1, wherein the elastic diaphragm is configured to dampen oscillations of pressure in fluid flowing through the progressive cavity pump.
9. A progressive cavity pump assembly, comprising: a cartridge comprising a cartridge housing and a frontal section, wherein the cartridge housing is configured to retain a first stator, a second stator, a first rotor, and a second rotor, wherein the first rotor and second rotor are disposed within the first stator and the second stator respectively, and wherein the frontal section comprises a first pair of ports and a second pair of ports that are fluidly coupled with the first stator and the second stator, respectively, and a sealing assembly, comprising: a retaining sleeve; a ring; and an elastic diaphragm terminating in a first end of the diaphragm in a first opening, and in a second end of the diaphragm, opposite the first end, in a second opening larger than the first opening, wherein the second opening is held in contact with the retaining sleeve by the ring, and wherein the first opening is configured to grip at least one of the first rotor or the second rotor, and wherein the ring is configured to hold the second opening fixed with respect to at least one of the first stator or the second stator.
10. The progressive cavity pump assembly according to claim 9, further comprising a further sleeve that is configured to be positioned between the first opening of the diaphragm and the at least one of the first rotor and the second rotor.
11. The progressive cavity pump assembly according to claim 10, further comprising an O-ring, wherein the O-ring is configured to be positioned between the further sleeve and the at least one of the first rotor and the second rotor, and wherein the O-ring is configured to grip the at least one of the first rotor and the second rotor.
12. The progressive cavity pump assembly according to claim 9, wherein the retaining sleeve comprises an aperture having an aperture diameter, and wherein the at least one of the first rotor and the second rotor is located within the aperture and has a rotor diameter smaller than the aperture diameter so as to permit the rotor to move in a planetary motion.
13. The progressive cavity pump assembly according to claim 9, wherein an inner surface diameter of the retaining sleeve is larger than a diameter of the first opening of the diaphragm, so as to permit the at least one of the first rotor and the second rotor to move in a planetary motion.
14. The progressive cavity pump assembly according to claim 9, wherein the elastic diaphragm has a conical shape.
15. The progressive cavity pump assembly according to claim 10, wherein the O-ring is elastomeric.
16. The progressive cavity pump assembly according to claim 9, wherein the elastic diaphragm is configured to dampen oscillations of pressure in fluid flowing through the progressive cavity pump assembly.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0007]
[0008]
DESCRIPTION OF EXAMPLES
[0009] Reference is now made to
[0010] System 20 further comprises a fluidics system 28, which is described below. As the phacoemulsification procedure is performed, fluidics system 28 aspirates debris (including pieces of the lens) from the eye while maintaining a flow of an irrigating fluid, such as a balanced salt solution, to the eye so as to maintain the intraocular pressure in the eye.
[0011] More specifically, fluidics system 28 comprises a cartridge 30, comprising two progressive cavity pumps 29 (described with reference to
[0012] Typically, base 50 is disposed within, or is an integral part of, a console 34, and cartridge 30 is inserted into the base through a slot 36 in a side panel 35 or top panel 37 of console 34. The cartridge 30 has irrigation and aspiration lines that couple with probe 22 by a connector 31. Ports of the cartridge, for the irrigation and aspiration lines, and for connecting to reservoir 42 and container 44, are described further below with respect to
[0013] In some examples, system 20 further comprises a display 48. System 20 may further comprise a processor and/or other circuitry (not shown), configured to drive the ultrasonic transducer of probe 22, control fluidics system 28, display relevant information on display 48, and/or perform any other relevant function.
[0014] A more detailed description of cartridge 30 is provided with reference to
[0015] As illustrated in
[0016] The cartridge further comprises two rotors 52 (
[0017] As described above with reference to
[0018] As stated above, pumps 29 are progressive cavity pumps, and the rotors of these pumps, as is known in the art, rotate in a planetary motion. In order to convert the rotary motion of the motors of base 50 to the required planetary motion, examples of the present invention comprise Oldham couplings 63, and the couplings 63 are attached to respective connectors 54. Each connector 54 has a non-circular external section that is typically female. In the illustrated example the external sections of respective connectors 54 comprise troughs 56 (
[0019] In
[0020] Assembly 100 comprises an outer retaining sleeve 102 having an aperture 104 configured to retain rotor 52, while having a diameter that is larger than the diameter of the rotor. Thus, as illustrated in
[0021] First opening 108 of the diaphragm 106 is configured to grip an inner retaining sleeve 112, which in turn retains an elastic O-ring 116. O-ring 116 encircles rotor 52, so that the first opening of the diaphragm 106, using the inner sleeve 112 and the O-ring 116, effectively grips rotor 52.
[0022] Second opening 110 of the diaphragm is held in contact with outer retaining sleeve 102 by a ring 120, and the ring 120 is in turn held in contact with an inner surface of housing 55. The ring 120 thus holds the second opening 110 of the diaphragm 106 in proximity to, and substantially fixed with respect to, and in sealing contact with, the stator 51 of pump 29. The contact of second opening 110 of diaphragm 106 with sleeve 102 and ring 120 is enhanced, in an example of the present invention, by a thickening 124 of opening 110. Thickening 124 can be of any shape or thickness necessary to maintain contact with sleeve 102 and ring 120.
[0023] As is apparent from inspection of
[0024] Furthermore, the space between the proximal side of diaphragm 106 and an inner surface of outer retaining sleeve 102, as well as the larger diameter of aperture 104 compared with the diameter of rotor 52, permit the planetary motion of the rotor 52 that is required during operation of the pump 29.
[0025] Progressive cavity pumps, such as pumps 29, operate by moving discrete volumes of fluid, within respective cavities, through the pump. The discrete nature of the flow means that there is inherently pulsation of the flow, so that there is an oscillation of the pressure. In examples of the present invention, the elastic nature of diaphragm 106 acts to dampen the oscillations of the pressure.
[0026] It will be appreciated that the examples described above are cited by way of example, and that the present disclosure is not limited to what has been particularly shown and described hereinabove. Rather, the scope of the present disclosure includes both combinations and subcombinations of the various features described hereinabove, as well as variations and modifications thereof which would occur to persons skilled in the art upon reading the foregoing description and which are not disclosed in the prior art.