Pulsation-free positive displacement rotary pump
09970436 ยท 2018-05-15
Assignee
Inventors
Cpc classification
F04B1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/1072
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/1071
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B53/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A pump having two pistons placed in a rotor, situated in a stator forming two opposite parallel eccentric pumping chambers having at least one inlet port through which the fluid is drawn into at least one of the pumping chambers during the filling movement of at least one of the pistons and, subsequently, expelled from at least one of the pumping chambers, during the emptying movement of at least one of the pistons, to at least one outlet port, characterized by an inlet cavity in connection with the inlet port, an outlet cavity in connection with the outlet port and two port changeover transition zones situated between each side of the cavities.
Claims
1. A pump comprising: two pistons in a rotor, the rotor being located inside two cavities forming a stator and being rotatable about an axis in contact with the stator, the rotor forming two opposite parallel pumping chambers in which the pistons respectively translate, driven by a fixed cam located inside the stator, the rotor having port for each pumping chamber through which a fluid can be aspirated into each of the pumping chambers during a filling movement of one of the pistons within the chamber and then expelled from each of the pumping chambers, during a pumping movement of one of the pistons within the chamber, through the port for each pumping chamber, wherein the stator comprises a housing portion defining an inlet cavity alternatively connected by rotation of the rotor, synchronously with the piston pumping movements, to the port of each of the pumping chambers, an outlet cavity alternatively connected to the port of each of the pumping chambers, and two ports changeover transition areas located between the inlet and outlet cavities, the inlet and outlet cavities with their respective external port changeover transition areas located there between being arranged around the rotor axis.
2. The pump as claimed in claim 1, wherein the outlet flow of fluid is continuous and pulsation-free when the rotor is rotated relative to the stator.
3. The pump as claimed in claim 1, wherein the pistons of which include guide elements placed perpendicularly in the fixed cam on the interior face of the stator.
4. The pump as claimed in claim 3, wherein the guide elements of which are driven and retained by the notches of the rotor.
5. The pump as claimed in claim 1, wherein the pistons each include a front channel connected to a lateral channel which communicates with the respective port of the rotor.
6. The pump as claimed in claim 1, wherein including a sealing element between the stator housing portion and the rotor.
7. The pump as claimed in claim 1, wherein the sum of fluid expelled from each of the pumping chambers provides a nominal fluid flow rate of the pump.
8. The pump as claimed in claim 1, wherein the two pumping chambers of which simultaneously expel to the outlet cavity during the partial rotation of the rotor.
9. The pump as claimed in claim 1, further comprising including a cap opposite the stator housing portion with the rotor oriented there between.
10. The pump as claimed in claim 9, wherein the cap of which has on the interior face a cam symmetrical with respect to the fixed cam.
11. The pump as claimed in claim 1, wherein the profile of the fixed cam is composed of six segments.
12. The pump as claimed in claim 1, further comprising a seal between the mobile parts of which is produced with at least one elastomer.
13. The pump as claimed in claim 1, wherein the pistons, rotor and stator are made of plastic and disposable.
14. The pump as claimed in claim 1, having at least one flexible element connected to the inlet or outlet port.
15. The pump as claimed in claim 1, the rotor of which can be moved axially.
Description
DESCRIPTION OF THE DRAWINGS
(1) The present invention will be better understood after reading the description of examples given by way of nonlimiting illustration only with reference to the appended drawings, in which:
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(19) Second Variant
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(29) Third Variant
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(44) Fourth Variant
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(52) According to
(53) According to
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(55) According to
(56) According to
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(58) According to
(59) When the rotor (3) turns from 0 to 45, the pistons (5, 5) move along the cam at low flow rates (61,61), the effect of which is to expel the liquid simultaneously from the chambers (21,21) to the outlet port (16) via the front channels (19, 19), the lateral channels (20,20) of the pistons (5,5) and the through-holes (9,9) connected to the outlet cavity (15).
(60) When the rotor (3) turns from 45 to 75, the piston (5) continues to expel the liquid from the chamber (21) at the nominal flow rate (62). The piston (5) ceases to move in a linear manner and the lateral channel (20) is connected via the through-hole (9) to the port changeover transition area (17), which closes the chamber (21). When the rotor (3) turns preferably from 75 to 150, the piston (5) continues to expel the liquid from the chamber (21) at the nominal flow rate (62). The piston (5) moves in a linear manner in the opposite direction, the effect of which is to aspirate the liquid in the chamber (21) from the inlet port (14) via the front channel (19), the lateral channel (20) and the through-hole (9) connected to the inlet cavity (13).
(61) When the rotor (3) turns preferably from 150 to 180, the piston (5) continues to expel the liquid from the chamber (21) at the nominal flow rate (62). The piston (5) ceases to move in a linear manner and the lateral channel (20) is connected via the through-hole (9) to the port changeover transition area (17), which closes the chamber (21).
(62) When the rotor (3) turns preferably from 180 to 225, the pistons (5, 5) move along the cam at low flow rates (63,63), the effect of which is to expel the liquid simultaneously from the chambers (21,21) to the outlet port (16) via the front channels (19, 19), the lateral channels (20,20) of the pistons (5,5) and the through-holes (9,9) connected to the outlet cavity (15).
(63) When the rotor (3) turns from 225 to 255, the piston (5) continues to expel the liquid from the chamber (21) at the nominal flow rate (62). The piston (5) ceases to move in a linear manner and the lateral channel (20) is connected via the through-hole (9) to the port changeover transition area (17), which closes the chamber (21).
(64) When the rotor (3) turns from 255 to 330, the piston (5) continues to expel the liquid from the chamber (21) at the nominal flow rate (62). The piston (5) moves in a linear manner in the opposite direction, the effect of which is to aspirate the liquid in the chamber (21) from the inlet port (14) via the front channel (19), the lateral channel (20) and the through-hole (9) connected to the inlet cavity (13).
(65) When the rotor (3) turns preferably from 330 to 360, the piston (5) continues to expel the liquid from the chamber (21) at the nominal flow rate (62). The piston (5) ceases to move in a linear manner and the lateral channel (20) is connected via the through-hole (9) to the port changeover transition area (17), which closes the chamber (21).
(66) When the rotor (3) is turned 360 relative to the stator (2) it returns to the 0 position, which corresponds to a complete pumping cycle of the pump (1).
(67) Description of a Second Variant of the Invention
(68) According to
(69) Guide elements (76,76), preferably in the form of pins, are placed inside the holes (75,75) in the pistons (5,5) so as to guide the pistons (5,5) along the cam (10) of the stator (2) and the cam (10), which is symmetrical with respect to the cam (10), on the interior face of the cap (70). The ends of the guide elements (76,76) are therefore guided perfectly in a symmetrical manner making the movements of the pistons (5,5) more effective and ensuring improved resistance to forces when the pump turns at a high speed or delivers at a high pressure. The guide elements (76,76) turn freely inside the holes (75,75) of the pistons (5,5) so as to reduce the friction with the cam (10) and the cam (10).
(70) According to
(71) Description of a Third Variant of the Invention
(72) According to
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(74) The return element (90) may be adapted so that the function is reversed and the rotor (3) must be drawn toward the direction opposite to the return element (90) to bear on the sealing element (4).
(75) According to
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(77) During operation of the pump (1), pressure variations occurring in the pumping chambers (21,21) deform the respective flexible elements (87,87), which transmit the pressure from each cavity (94,94) to the cavities (95,95), respectively. It is then possible to measure the pressure at the inlet and at the outlet of the pump by placing two pressure sensors (not shown) at the exterior ends of the channels (102,102). The flexible elements (87,87) provide the isolation and the seal between the internal fluidic circuit of the pump and the exterior, as well as making it possible to measure pressure variations occurring at the inlet and at the outlet of the pump. This system is particularly suitable for measuring leaks or detecting blockages at the inlet or at the outlet of the pump without having to connect pressure gauges to the external tubes of the pump. Integrating the flexible elements (87,87) into the pump (1) makes it possible to reduce the overall size of the system, which is extremely important in portable pumps, for example, notably in the medical field.
(78) Description of a Fourth Variant of the Invention
(79) According to
(80) The pumping principle described above is reversible by having the rotor turn in the other direction.
(81) The angle values defined above are given by way of example and may be different according to the dimensions of the cam or the required flow rate curve.
(82) The low flow rates (61,61,63, 63) are preferably equivalent to half the nominal flow rate of the pump.
(83) The cam may be adapted to produce a pulsed or semi-pulsed flow.
(84) In another variant, not shown, the housing (11) and the sealing element (4) may be on the interior face of the rotor (3).
(85) In another variant, not shown, the cavities (13,15) and the changeover transition areas (17,17) may be perpendicular to the rotation axis of the pump. In this case, the sealing element is preferably at the periphery of the rotor of the pump.
(86) In another variant, not shown, the rotor may be adapted to receive a magnetic element so that it can be driven in rotation with the aid of a magnet or any other exterior electromagnetic element. Thus the pump may be coupled to a contactless drive arrangement. This variant is particularly suitable if the pump is implanted under the skin or in the body and must be actuated from the outside.
(87) In another variant, not shown, the cap may be adapted to receive the inlet and outlet ports of the pump.
(88) The seal between the mobile parts is preferably produced by means of an elastomer, an overmolded seal or any other sealing element. However, it is possible to produce the pump with no sealing element between the stator or the cap and the rotor, for example by virtue of the fit between them. The elements constituting the pump are preferably made of plastic and disposable. The pump may be sterilized for the distribution of food or medication for example. The choice of materials is not limited to plastics, however.
(89) Although the invention has been described with reference to a plurality of embodiments, there exist other variants that are not described. The scope of the invention is therefore not limited to the embodiments described above.