Pump
11486373 ยท 2022-11-01
Assignee
Inventors
Cpc classification
F04B39/123
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B11/0008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/0044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B19/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/004
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N1/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/121
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/0005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/0061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/0072
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B17/044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L55/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B19/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B17/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The pump has a casing accommodating a piston and a driving part. The casing has a first casing member having a driving part retaining portion retaining the driving part, a second casing member fixedly stacked on the first casing member in the reciprocating direction of the piston, and a cylindrical pump chamber peripheral wall member disposed around a head of the piston. The second casing member has an end wall portion extending in a transverse direction substantially perpendicular to the reciprocating direction. A pump chamber, a delivery chamber, and a buffer chamber are defined between the first casing member and the end wall portion of the second casing member. The pump chamber, the delivery chamber, and the buffer chamber are disposed side-by-side in the transverse direction.
Claims
1. A pump comprising: a reciprocating pumping member; a driving part configured to reciprocate the reciprocating pumping member; and a casing accommodating the reciprocating pumping member and the driving part; the pump being configured to convey a fluid by a reciprocating motion of the reciprocating pumping member; the casing having: a first casing member having a driving part retaining portion retaining the driving part; a second casing member fixedly stacked on the first casing member in a reciprocating direction of the reciprocating pumping member, the second casing member having an end wall portion facing the reciprocating pumping member in the reciprocating direction and extending in a transverse direction crossing the reciprocating direction; and a cylindrical pump chamber peripheral wall portion extending in the reciprocating direction between the driving part retaining portion and the end wall portion around the reciprocating pumping member; wherein a pump chamber, a delivery chamber, and a buffer chamber are defined between the first casing member and the end wall portion of the second casing member, the pump chamber being located inside the pump chamber peripheral wall portion and having a volumetric capacity varied by the reciprocating motion of the reciprocating pumping member, the delivery chamber being located around the pump chamber peripheral wall portion and communicating with the pump chamber through a first communication passage extending through the pump chamber peripheral wall portion in the transverse direction, and the buffer chamber being adjacent to the delivery chamber in the transverse direction and communicating with the delivery chamber through a second communication passage extending in the transverse direction, wherein the first casing member further has a buffer chamber forming portion that is adjacent to the driving part retaining portion in the transverse direction and defines at least a part of the buffer chamber.
2. The pump of claim 1, further comprising a passage member defining the second communication passage, the passage member being sandwiched between the first casing member and the second casing member.
3. The pump of claim 1, wherein the second communication passage is configured to have a cross-sectional area decreasing as a distance increases toward the buffer chamber.
4. The pump of claim 1, further comprising an external communication passage extending from an inlet opening located inside the buffer chamber to an outlet opening located outside the buffer chamber, the external communication passage having a tapering flow path portion with a cross-sectional area decreasing as a distance from the inlet opening increases toward the outlet opening.
5. The pump of claim 1, wherein: the pump chamber, the delivery chamber, and the buffer chamber are disposed side-by-side in the transverse direction.
Description
DRAWINGS
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DETAILED DESCRIPTION
(10) As shown in
(11) As shown in
(12) The first casing member 14 has the above-described driving part retaining portion 20 and a buffer chamber forming portion 34 for forming a buffer chamber 32 (described later). The second casing member 16 has an end wall portion 36 facing the piston 22 in the reciprocating direction (horizontal direction as seen in
(13) In addition, between the driving part retaining portion 20 of the first casing member 14 and the end wall portion 36 of the second casing member 16 is formed a delivery chamber 52 located around the pump chamber peripheral wall member 46. The pump chamber peripheral wall member 46 is formed with a first communication passage 54 extending therethrough in a transverse direction crossing the reciprocating direction. The delivery chamber 52 communicates with the pump chamber 50 through the first communication passage 54. The first communication passage 54 has a check valve 56 attached at a side thereof opening into the delivery chamber 52. The check valve 56 is configured to pass only a fluid flowing from the pump chamber 50 toward the delivery chamber 52. It should be noted that there are formed eight first communication passages 54, and that four check valves 56 (
(14) Between the buffer chamber forming portion 34 of the first casing member 14 and the end wall portion 36 of the second casing member 16 is defined a buffer chamber 32 partitioned off from the delivery chamber 52 by a partition 58 of the second casing member 16, the buffer chamber 32 being adjacent to the delivery chamber 52 in the transverse direction. The buffer chamber 32 extends in the reciprocating direction from the end wall portion 36 of the second casing member 16 to the lower side of the driving part 24. A passage member 60 is sandwiched and secured between the first casing member 14 and the partition 58 of the second casing member 16. The passage member 60 is formed with a second communication passage 62 extending in the transverse direction so as to provide communication between the delivery chamber 52 and the buffer chamber 32. The second communication passage 62 is, as shown in
(15) As shown in
(16) When the piston 22 is reciprocated, the volumetric capacity of the pump chamber 50 is varied. More specifically, when the piston 22 is displaced leftward as seen in the figure, the volumetric capacity of the pump chamber 50 decreases, whereas, when the piston 22 is displaced rightward as seen in the figure, the volumetric capacity of the pump chamber 50 increases. When the volumetric capacity of the pump chamber 50 is decreased by the piston 22, the air in the pump chamber 50 is compressed. The pressure of the compressed air opens the check valve 56, and the air in the pump chamber 50 is delivered into the delivery chamber 52 through the first communication passage 54. At the same time, air is sucked into the casing 10 from the suction ports 12 of the third casing member 18. It should be noted that the two suction ports 12 are each disposed at the center position of the associated coil 28, so that the sucked air hits and flows around the coil 28. Thus, the coils 28 can be cooled efficiently.
(17) The air delivered from the pump chamber 50 into the delivery chamber 52 is introduced into the buffer chamber 32 through the second communication passage 62. The buffer chamber 32 has a large volumetric capacity as compared to the pump chamber 50 and the delivery chamber 52 and thus temporarily stores the air conveyed from the pump chamber 50 through the delivery chamber 52. The air delivered from the pump chamber 50 has periodic pulsations. The pulsations of the air, however, are reduced to a considerable extent as a result of the air being temporarily stored in the buffer chamber 32 having a relatively large volumetric capacity. The air having being temporarily stored in the buffer chamber 32 is discharged to the outside from the external discharge port 6 through the external communication passage 70.
(18) In the pump 1, the buffer chamber 32 is integrally formed in the casing 10, together with the pump chamber 50 and the delivery chamber 52. In the integrated structure, the delivery chamber 52 and the buffer chamber 32 are disposed side-by-side relative to the pump chamber 50 in a transverse direction crossing the reciprocating direction of the piston 22 at substantially right angles. Therefore, the delivery chamber 52 and the buffer chamber 32 do not cause an increase in the overall dimensions of the casing 10 and the pump 1 in the reciprocating direction. Consequently, the installation area of the pump 1 can be reduced. In addition, the second casing member 16 is fixedly stacked on the first casing member 14 in the reciprocating direction of the piston 22, thereby defining the pump chamber 50, the delivery chamber 52, and the buffer chamber 32 between the first casing member 14 and the second casing member 16. That is, the pump chamber 50, the delivery chamber 52, and the buffer chamber 32 are defined substantially by the first casing member 14 and the second casing member 16; therefore, the number of parts constituting the casing 10 reduces as compared to the conventional pump having a buffer chamber integrally formed in a casing. In addition, because the number of seal points also reduces, the sealing reliability can be increased.
(19) As shown in
(20) Referring to
(21) Although some embodiments of the present invention have been described above, the present invention is not limited to the described embodiments. For example, the pumps in the foregoing embodiments are piston pumps, but a pump in accordance with this invention may be a pump of other type, e.g. a diaphragm pump in which a fluid is conveyed by reciprocating a diaphragm. Further, the fluid to be conveyed is not limited to air but may be other gas or other fluid, e.g. water. The peripheral wall portion and partition that the second casing member has may be provided on the first casing member. Further, in the foregoing embodiments, the pump chamber peripheral wall member, which is required to be machined with high precision, is formed as a single member; however, the pump chamber peripheral wall member may be integrally formed with the first casing member or the second casing member. The configuration of the pump chamber peripheral wall member is not limited to a circular cylindrical shape but may be other cylindrical shape, e.g. an elliptical or quadrangular cylindrical shape, in conformity to the shape of the head of the piston or the diaphragm. Although the foregoing second embodiment has a pair of structures each arranged as shown in
REFERENCE SIGNS LIST
(22) 1: pump; 2: cover; 3: upper cover; 4: lower cover; 5: external suction port; 6: external discharge port; 10: casing; 10a: rear end face; 12: suction ports; 14: first casing member; 16: second casing member; 18: third casing member; 20: driving part retaining portion; 22: piston (reciprocating pumping member); 24: driving part; 26: field core; 28: coils; 29: armature; 30: spring; 32: buffer chamber; 34: buffer chamber forming portion; 36: end wall portion; 38: peripheral edge; 40: peripheral wall portion; 42: seal member; 44: head; 44a: outer peripheral surface; 46: pump chamber peripheral wall member (pump chamber peripheral wall portion); 46a: inner peripheral surface; 48: seal member; 50: pump chamber; 52: delivery chamber; 54: first communication passage; 56: check valve; 58: partition; 60: passage member; 62: second communication passage; 64: discharge pipe; 66: inlet opening; 68: outlet opening; 70: external communication passage; 72: tapering flow path portion; 74: elastic support members; 101: pump; 110: casings; 126: field core; 132: buffer chamber; 133: buffer chamber; 164: discharge pipe; 174: connecting pipe; 201: pump; 202: cover; 204: lower cover; 210: casing; 214: first casing member; 216: second casing member; 218: third casing member; 222: piston; 232: buffer chamber; 264: discharge pipe; 276: fixed pipe portion; 278: rubber tube; 278A: first attaching portion; 278B: second attaching portion; 278C: intermediate portion; 278D: securing portion; 280: tube attaching portion; 282: tube attaching portion.