Piston Pump for Conveying Pressure Medium in a Pressure Medium Circuit
20190176786 ยท 2019-06-13
Inventors
Cpc classification
F04B49/035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T8/4031
PERFORMING OPERATIONS; TRANSPORTING
F04B11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B9/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T17/02
PERFORMING OPERATIONS; TRANSPORTING
F04B7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B60T8/40
PERFORMING OPERATIONS; TRANSPORTING
F04B9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A piston pump is configured to convey pressure medium in a pressure medium circuit, in particular in a braking circuit of a motor vehicle braking system that may be electronically controlled to counteract slip. The pump piston delimits an operating chamber and is received in a displaceable manner in a pump cylinder and may be driven to produce a stroke movement that goes back and forth between two reversing positions. The operating chamber may be connected in a controllable manner to a pump inlet or outlet. A pressure medium connection is provided from the pump outlet to the operating chamber, said pressure medium connection is controllable in dependence upon a relative position of the pump piston with respect to the first reversing position. Pressure pulsations of the piston pump are prevented and the operating noise is reduced.
Claims
1. A piston pump configured to convey pressure medium in a braking circuit of a motor vehicle braking system that is electronically controlled to counteract slip, the piston pump comprising: a pump piston configured to delimit an operating chamber, the pump piston received in a displaceable manner in a pump cylinder and configured to be driven to produce a stroke movement that goes back and forth between a first reversing position and a second reversing position, wherein the operating chamber comprises a maximum volume in the first reversing position of the pump piston and a minimum volume in the second reversing position of the pump piston, and wherein the operating chamber is connected in an alternating controllable manner respectively to one of a pump inlet and a pump outlet of the piston pump; and a pressure medium connection from the pump outlet to the operating chamber, said pressure medium connection controlled in dependence upon a relative position of the pump piston with respect to one of the first and second reversing positions.
2. The piston pump according to claim 1, wherein: the pressure medium connection comprises an orifice cross section in the operating chamber, and the orifice cross section is controlled by one of: (i) the pump piston; and (ii) a component that is fastened to the pump piston.
3. The piston pump according to claim 2, wherein the orifice cross section is one of circular, rectangular, triangular, square, oval, and trapezoidal.
4. The piston pump according to claim 1, wherein the pressure medium connection is controlled by a non-return valve that allows a flow in the flow direction from the pump outlet to the operating chamber and blocks a flow in the opposite flow direction thereto from the operating chamber to the pump outlet.
5. The piston pump according to claim 1, wherein: the pressure medium connection comprises at least two connecting sections of different sized cross sections, and a first of the at least two connecting sections comprises the smallest cross section and faces the operating chamber.
6. The piston pump according to claim 5, wherein a transition between the at least two connecting sections is one of a right-angled shoulder and a ramp.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] An exemplary embodiment of the disclosure is explained in detail in the following description and is illustrated in the drawing. In the drawing
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION
[0020] The piston pumps 110 that are illustrated in two different piston positions according to the
[0021] Furthermore, the piston pump 110 comprises an outlet valve 142 for controlling an outlet valve seat 144 that is embodied on the cylinder liner base. The outlet valve seat 144 is likewise controlled by a spring-loaded outlet valve body 146. An outlet valve spring 148 is supported for this purpose on a plug 150 that is centered via a band on the cylinder liner 116. A pump outlet 152 that is oriented transversely with respect to the longitudinal axis of the piston pump 110 is embodied on the plug 150 via which pressure medium that escapes from the outlet valve 142 is discharged.
[0022] The inlet valve 130 and the outlet valve 142 control a flow of a pressure medium flow through the piston pump 110 in that said inlet valve and outlet valve connect their operating chamber 120 in an alternating manner to the pump inlet 134 or to the pump outlet 152. Inlet valve 130 and outlet valve 142 open and close in dependence upon the pressure ratios in the interior of the operating chamber 120, said pressure ratios being determined by the manner in which the piston is actuated. If this operating chamber 120 comprises its maximum volume, as is illustrated in
[0023] Prior to this, this pressure medium also flows through a filter element 154 that filters impurities from the pressure medium before said impurities can penetrate into the interior of the piston pump 110. The filter element 154 is fastened to the open end of the cylinder liner 116. Furthermore, the filter element 154 is fitted with a filter sealing arrangement 156 that seals the pump inlet 134 with respect to the space in which the rotating drive element 114 is located.
[0024] In accordance with
[0025] Since in this respect the construction and function of the explained piston pump correspond to the prior art, further statements in relation to this are omitted.
[0026] In accordance with the disclosure a pressure medium connection 160 is embodied between the pump outlet 152 and the operating chamber 120 and said pressure medium connection may be controlled in dependence upon the relative position of the pump piston 112 with respect to the first reversing point. This pressure medium connection 160 comprises a connecting duct 162 that is preferably embodied in a pump housing that receives the piston pump 110 and said connecting duct issues into the operating chamber 120 of the piston pump 110. An allocated orifice 164 is embodied on the periphery of the cylinder liner 116 of the piston pump 110. The orifice may consequently be controlled by the pump piston 112 that moves back and forth and said orifice is positioned on the cylinder liner 116 in such a manner that the orifice cross section is only opened if the pump piston 112 approaches its first reversing position or is in its first reversing position. In this position of the pump piston 112 the operating chamber 120 of the piston pump 110 comprises its maximum volume. The pressure ratios in the operating chamber 120 change on account of the pressure medium connection that is then connected to the pump outlet 152. In lieu of the low pressure that hitherto prevails on account of the piston movement direction, the high pressure that prevails at the pump outlet 152 now prevails. This pressure change takes place within a relatively short period of time and in particular at a point in time in which the outlet valve 142 is still closed, the piston pump 110 therefore does not convey pressure medium. The pressure medium consequently starts to be conveyed by means of opening the outlet valve 142 immediately after the reversal of movement direction of the pump piston 112. The compression phase and the point at which a piston pump 110 in accordance with the disclosure starts to convey the pressure medium converge in terms of time with respect to one another or ideally start at the same point in time. The effect of this is that the idle travel of the pump piston 112, in other words the necessary piston stroke for compressing the pressure medium, reduces to the pressure level at which pressure medium is conveyed.
[0027] As explained in the case of the described exemplary embodiment, the pressure medium connection 160 is controlled by means of the pump piston 112 or by means of the inlet valve housing (piston part 128) that is arranged on the pump piston 112, which represents a particularly cost-effective solution that saves installation space since it is not necessary to provide separate control means. Nevertheless, this solution is not the only possibility for controlling this pressure medium connection 160. Fundamentally, by way of example a control procedure by means of a valve that may be electronically actuated, such as by way of example a solenoid valve, would also be conceivable.
[0028] A further possibility for optimizing the explained effect of the proposal in accordance with the disclosure is embodied in the selection of the embodiment, dimensioning and/or orienting the cross section of the orifice 164 into the operating chamber 120. This orifice cross section may have, for example as an alternative to a circular shape of a hole, the shape of a rectangle, square, triangle, oval or a trapeze. In the case of controlling the orifice cross section by means of the pump piston 112, the transition from the closed state to the opened state may be performed in a uniform manner and may be adjusted to the respective application by means of orienting the orifice cross section in a plane.
[0029] It is also conceivable in addition to fit the pressure medium connection 160 with a non-return valve 200 or to control said pressure medium connection using a non-return valve as is illustrated schematically in
[0030] The pressure medium connection 160 in the region of the cylinder liner 116 is illustrated in the
[0031]
[0032] The characteristic curve 410 in diagram 4a illustrates the stroke that is transferred from a drive element 114 to a pump piston 112. This stroke continuously increases after a point in time t1. The compression phase of the piston pump 110 accordingly starts at the point in time t1, in other words, the pump piston 112 starts to move from its first reversing point in the direction of its second reversing point and in so doing successively reduces the volume of the operating chamber 120 (operating stroke).
[0033] Diagram 4b illustrates the curve of the pressure level in the interior of the operating chamber in a manner that is synchronized in terms of time with
[0034]
[0035] Finally, in
[0036] Further changes and amendments with respect to the described exemplary embodiments of the disclosure are obviously conceivable without deviating from the fundamental idea of the disclosure.