Valve unit and peristaltic pump including the same
09903359 ยท 2018-02-27
Assignee
Inventors
Cpc classification
F16K15/038
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/1052
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B43/0072
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B43/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B43/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K15/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B43/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A vale unit includes a valve frame and two valve plates. The valve frame defines a valve opening. The valve plates are formed with protrusions. Each of the valve plates has a connecting end that is formed with a notch. The connecting ends are connected to each other. The protrusions protrude from peripheries of the notches. Each of the protrusions has a contact end. The contact ends cooperatively define a gap therebetween. The valve plates are co-rotatable about an axis between a closed position, in which the valve plates substantially close the valve opening, and an opening position, in which the valve plates open the valve opening. The gap has a width varying in response to co-rotation of the valve plates between the opening position and the closed position.
Claims
1. A valve unit for driving a fluid in a flexible tubing, said valve unit comprising: a valve frame defining a valve opening; and first and second valve plates mounted movably on said valve frame and formed respectively with first and second protrusions, each of said first and second valve plates having a connecting end that is formed with a notch, said connecting ends of said first and second valve plates being connected to each other, said first and second protrusions protruding respectively from peripheries of said notches in said connecting ends, each of said first and second protrusions having a contact end, said contact ends of said first and second protrusions opposing each other and cooperatively defining a gap therebetween for extension of the flexible tubing therethrough; wherein said first and second valve plates are co-rotatable relative to said valve frame in opposite rotational directions about a rotation axis transverse to the length of the flexible tubing between a closed position, in which said first and second valve plates substantially close said valve opening, and an opening position, in which said first and second valve plates open said valve opening; wherein said gap has a width between said first and second contact ends that varies in response to co-rotation of said first and second valve plates between said opening position and said closed position, thereby permitting squeezing of the flexible tubing by said contact ends which move toward each other to narrow the width of said gap when said first and second valve plates co-rotate from said opening position to said closed position; and wherein said valve frame is formed with two T-shaped guiding slots that are opposite to each other along a direction parallel to said rotation axis, each of said T-shaped guiding slots having a vertical section and a horizontal section, each of said first and second valve plates being formed with a first guiding stud and two second guiding studs, said first guiding studs of said first and second valve plates extending respectively into said vertical sections of said T-shaped guiding slots, said second guiding studs of each of said first and second valve plates extending respectively into said horizontal sections of said T-shaped guiding slots.
2. The valve unit of claim 1, wherein said valve frame is magnetic.
3. The valve unit of claim 1, wherein said connecting ends of said first and second valve plates are pivoted to each other.
4. The valve unit of claim 1, wherein said contact ends of said first and second protrusions are opposite to each other along a direction that is transverse to said rotation axis and the length of the flexible tubing.
5. The valve unit of claim 1, wherein each of said first and second protrusions is generally arc-shaped.
6. The valve unit of claim 1, wherein said valve frame is generally cylindrical in shape and each of said first and second valve plates is generally semi-circular in shape.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In drawings which illustrate embodiments of the disclosure,
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DETAILED DESCRIPTION
(12)
(13) The pump housing 12 has an outer surface 121 and an inner surface 122, is adapted to be filled with a first liquid (not shown), is formed with a fluid inlet 141 and a fluid outlet 142, and is configured for extension of the flexible tubing 616 therethrough. The outer surface 121 is formed with a plurality of coil-retaining grooves 123 that are spaced apart from one another. The fluid inlet 141 is adapted to receive the first liquid into the pump housing 12. The fluid outlet 142 is adapted to drain the first liquid out of the pump housing 12. In one example, the first liquid may be a spent dialysate from a dialyzer (see
(14) The valve unit 2 is disposed in the pump housing 12, is driven by the driving unit to move relative to the pump housing 12 along the length of the flexible tubing 616, and includes a valve frame 22 and first and second valve plates 3.
(15) The first and second valve plates 3 are formed respectively with first and second protrusions 5. Each of the first and second valve plates 3 has a connecting end 31 that is formed with a notch 310. The connecting ends 31 of the first and second valve plates 3 are connected to each other, such that the first and second valve plates 3 cooperatively define a variable angle () therebetween. The first and second protrusions 5 protrude respectively from peripheries of the notches 310 in the connecting ends 310. Each of the first and second protrusions 5 has a contact end 50. The contact ends 50 of the first and second protrusions 5 oppose each other, and cooperatively define a gap 55 therebetween for extension of the flexible tubing 616 therethrough. The valve frame 22 is disposed adjacent to the inner surface 122 of the pump housing 12, and defines a valve opening 21. The first and second valve plates 3 are mounted movably on the valve frame 22. The variable angle () defined between the first and second valve plates 3 faces toward the valve opening 21.
(16) The driving unit is electromagnetically coupled to the valve frame 22 so as to drive the valve unit 2 to move relative to the pump housing 12 along the length of the flexible tubing 616.
(17) The first and second valve plates 3 are co-rotatable relative to the valve frame 22 in opposite rotational directions about a rotation axis (X) transverse to the length of the flexible tubing 616 between a closed position (see
(18) In this embodiment, the connecting ends 31 of the first and second valve plates 3 are pivoted to each other through a tongue-and-groove engaging manner. The first and second protrusions 5 are opposite to each other along a direction that is transverse to the rotation axis (X) and the length of the flexible tubing 616. Each of the first and second protrusions 5 is generally arc-shaped.
(19) The valve frame 22 is formed with two T-shaped guiding slots 25 that are opposite to each other along a direction parallel to the rotation axis (X). Each of the T-shaped guiding slots 25 has a vertical section 251 and a horizontal section 252. Each of the first and second valve plates 3 is formed with a first guiding stud 33 and two second guiding studs 32. The first guiding studs 33 of the first and second valve plates 3 extend respectively into the vertical sections 251 of the T-shaped guiding slots 25. The second guiding studs 32 of each of the first and second valve plates 3 extend respectively into the horizontal sections 252 of the T-shaped guiding slots 25.
(20) The valve frame 22 is magnetic. The conductive coils 71 are spaced apart from one another, and are mounted on and surround the pump housing 12. Each of the conductive coils 71 is electromagnetically coupled with the valve frame 22 so as to drive movement of the valve frame 22 along the length of the flexible tubing 616. In particular, each of the conductive coils 71 is operable to be powered with a polarity opposite to a polarity of the valve frame 22 so as to permit magnetic interaction between the valve frame 22 and the powered one(s) of the conductive coils 71. Alternatively, the valve frame 22 may be made from a non-magnetic material, and maybe provided with a magnet (not shown) thereon.
(21) In this embodiment, the valve frame 22 is generally cylindrical in shape, and each of the first and second valve plates 3 is generally semi-circular in shape.
(22) To pump the second liquid through the flexible tubing 616, the conductive coils 71 are powered in succession so as to be successively and magnetically coupled with the valve frame 22 to drive movement of the vale unit 2 along the length of the flexible tubing 616 (see
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(24) The second embodiment differs from the previous embodiment in that the valve frame 22 of the second embodiment is rectangular in shape and each of the first and second valve plates 3 is rectangular in shape.
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(26) With the inclusion of the first and second protrusions 5 formed respectively on the first and second valve plates 3 in the valve unit 2 of the peristaltic pump 100 of the present disclosure, the aforesaid drawback associated with the prior art can be alleviated.
(27) While the disclosure has been described in connection with what is considered the exemplary embodiment, it is understood that this disclosure is not limited to the disclosed embodiment but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation and equivalent arrangements.