Swash plate compressor having a curved piston guide wall
09932971 · 2018-04-03
Assignee
Inventors
Cpc classification
F04B1/143
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/122
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/145
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B1/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B27/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A piston pump for a high-pressure cleaning appliance is provided, which includes a plurality of pistons that are movable back and forth and each of which enters a pump chamber and is displaceably held at a piston guiding part. The piston guiding part has a supporting wall on which a plurality of guiding elements, each of which guides a piston, are disposed. In order to be able to produce the piston pump in a more cost-effective manner, it is proposed according to the invention that the supporting wall is curved.
Claims
1. A piston pump for a high-pressure cleaning appliance, comprising a plurality of pistons that are movable back and forth and each of which enters a pump chamber and is displaceably held at a piston guiding part, the piston guiding part having a supporting wall on which a plurality of guiding elements, each of which guides a piston, are disposed, the supporting wall being curved; wherein the supporting wall is configured in the manner of a spherical cap; wherein the supporting wall forms a spherically cap-shaped cover of a housing that accommodates a drive mechanism for the pistons; wherein the guiding elements have a cylindrical base that is integrally connected to the supporting wall and protrudes from the supporting wall on both sides thereof; wherein the base is integrally connected to a guide sleeve; wherein a material thickness of the base is greater than a material thickness of the guide sleeve; and wherein outer sides of the base transition into outer sides of the guide sleeve via radially inwardly oriented steps.
2. The piston pump according to claim 1, wherein the supporting wall is bended towards inside of the housing or towards outside the housing both on its front side facing the pump chambers and on its rear side facing away from the pump chambers.
3. The piston pump according to claim 1, wherein the supporting wall is bended in the direction facing the pump chambers or in the direction facing away from the pump chambers.
4. The piston pump according to claim 1, wherein the guiding elements are integrally connected to the supporting wall and protrude from the supporting wall on the rear side of the supporting wall facing away from the pump chambers.
5. The piston pump according to claim 1, wherein radially protruding reinforcement ribs are formed on the outer sides of the guiding elements.
6. The piston pump according to claim 1, wherein the base of the guiding elements protrudes from the supporting wall on the side of the supporting wall facing the pump chambers, and which carries radially protruding reinforcement ribs on its outer side which protrude beyond the base in an axial direction of the pump.
7. The piston pump according to claim 1, wherein a cylindrical collar is formed on the outer circumference of the supporting wall.
8. The piston pump according to claim 1, wherein the base of the guiding elements is integrally connected to the supporting wall and to which the guide sleeve is connected in an axial direction of the pump, which guide sleeve encloses a piston in a positive-fitting manner in the circumferential direction.
9. The piston pump according to claim 8, wherein radially protruding reinforcement ribs are formed on the outer side of the guide sleeve.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
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(8)
DETAILED DESCRIPTION OF THE INVENTION
(9)
(10) The supporting wall 26 is configured in the manner of a spherical cap, and in the embodiment illustrated in
(11) The guiding elements 24 have an identical design, and in each case comprise a cylindrical base 34 that is integrally connected to the supporting wall 26 and protrudes from the supporting wall on the front side 36 of the supporting wall 26 facing away from the wobble plate 12, and also on the rear side 38 of the supporting wall 26 facing the wobble plate 12. In the direction toward the wobble plate 12, a guide sleeve 40 is integrally connected to the base 34 and encloses the respective piston 18 in a positive manner. The material thickness of the base 34 is selected to be greater than the material thickness of the guide sleeve 40.
(12) As is apparent in particular from
(13) In contrast to the bases 34, the guide sleeves 40 formed on the bases 34 on the rear side 38 of the supporting wall 26 have no reinforcement ribs on the outside.
(14) A pump block 46 of the piston pump 10 is attached to the piston guiding part 22, and a pump head 48 of the piston pump 10 is attached to the pump block 46. The pump block 46 and the piston guiding part 22 are clamped between the pump head 48 and the wobble plate housing 14 by means of tensioning screws 50.
(15) The pump block 46 has pump chambers 52 each of which a piston 18 enters and which are in flow communication with a suction line 56 via an inlet opening 54, and are in flow communication with a pressure line 60 via an outlet opening 58. A suction valve known per se, which is not illustrated in the drawing, is disposed in each case between the pump chambers 52 and the suction line 56, and a pressure valve known per se, which is not illustrated in the drawing, is disposed in each case between the pump chambers 52 and the pressure line 60.
(16) The suction line 56 connects the pump chambers 52 to a suction inlet 62 of the piston pump 10, to which a suction hose, for example, can be connected. The pressure line 60 connects the pump chambers 52 to a pressure outlet 64 of the piston pump 10, to which a pressure hose, for example, can be connected.
(17) When the wobble plate 12 is set in rotation about its axis of rotation 66, the pistons 18 perform a reciprocating movement parallel to the axis of rotation 66, the pistons thereby periodically changing the volume of the respective pump chamber 52 which they enter so that liquid can be drawn into the pump chamber 52 via the suction inlet 62 and the suction line 56, subsequently pressurized and then discharged via the pressure line 60 and the pressure outlet 64. The pistons 18 are guided in the axial direction, i.e., parallel to the axis of rotation 66, by means of the piston guiding part 22. For this purpose, the pistons 18 in each case slide along a guide sleeve 40 that is integrally connected to the supporting wall 26 via a base 34. Due to its spherical cap-shaped configuration, the supporting wall has high mechanical stability that is increased by the cylindrical collar 30 which is aligned concentrically with respect to the axis of rotation 66 and is integrally connected to the supporting wall 26. Moreover, the supporting wall 26 is characterized by high thermal stability since it has a comparatively large surface via which heat can be dissipated.
(18)
(19) Pistons 78, which are pushed by return springs 80 toward the wobble plate 72, rest against the wobble plate 72. The pistons 78 are held at a piston guiding part 82 so as to be displaceable in the axial direction. The piston guiding part 82 comprises guiding elements 84 that are integrally connected to a supporting wall 86 of the piston guiding part 82. The supporting wall 86 is attached to a casing 88 of the wobble plate housing 74, and a cylindrical collar 90 is formed on the outer circumference of the supporting wall 86 and encloses an end portion of the casing 88 in the circumferential direction.
(20) Similar to the supporting wall 26 of the piston pump 10 described above with reference to
(21) The guiding elements 84 of the piston pump 70 each comprise a cylindrical base 94 that is integrally formed onto the supporting wall 86 and protrudes beyond the supporting wall 86 on the front side 96 and also on the rear side 98. A guide sleeve 100 that faces the wobble plate 72 is integrally connected to the base 94, the material thickness of the guide sleeve being selected to be less than the material thickness of the cylindrical base 94. The outer side of the cylindrical base 94 transitions into the outer side of the guide sleeve 100 via a radially inwardly oriented step 102. This is apparent in particular from
(22) The cylindrical base 94 has reinforcement ribs 104 only on the outer side of its region protruding beyond the front side 96, whereas the outer side of the region of the cylindrical base 94 protruding beyond the rear side 98 carries no reinforcement ribs. Instead, further reinforcement ribs 105 are formed on the outer side of the guide sleeves 100, and allow the material thickness of the guide sleeves 100 to be kept low without affecting the mechanical or thermal stability of the guide sleeves 100.
(23) The piston pump 70 comprises a pump block 106 that is attached to the piston guiding part 82, and a pump head 108 that is attached to the pump block 106. The pump block 106 and the piston guiding part 82 are clamped between the pump head 108 and the wobble plate housing 74 by means of tensioning screws, not illustrated in the drawing.
(24) The pump block 106 has pump chambers 112 each of which a piston 78 enters, and which are in flow communication with a suction line 116 via an inlet opening 114, and are in flow communication with a pressure line 120 via an outlet opening 118. The pump chambers 112 are connected to a suction inlet 122 via the suction line 116, and the pump chambers 112 are connected to a pressure outlet 124 via the pressure line 120. A suction valve, known per se to the person skilled in the art and not illustrated in the drawing, is disposed in each case between the pump chambers 112 and the suction line 116, and a pressure valve, known per se to the person skilled in the art and not illustrated in the drawing, is disposed in each case between the pump chambers 112 and the pressure line 120.
(25) When the wobble plate 72 is set in rotation about its axis of rotation 126, the pistons 78 are moved in a reciprocating manner so that the volume of the respective pump chamber 112 into which the pistons 78 plunge changes periodically for sucking in, pressurizing and discharging liquid. Each of the pistons is guided in the axial direction, i.e., parallel to the axis of rotation 126, by a guide sleeve 100 which is integrally connected to the supporting wall 86 via a cylindrical base 94. Due to its curved configuration, the supporting wall 86 has high mechanical and thermal stability. The mechanical stability is additionally increased by the collar 90 that is formed on the supporting wall 86 and is aligned concentrically with respect to the axis of rotation 126.