Valve, in particular proportional pressure regulating valve
10584801 ยท 2020-03-10
Assignee
Inventors
Cpc classification
F15B13/0442
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/0716
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B13/0407
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2013/004
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/0613
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16B13/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/07
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B13/044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A proportional pressure regulating valve has a spring-loaded valve piston (10) guided in and actuated by an actuating magnet (14) within a valve housing (12). Opposite valve piston sides are exposed to tank pressure. The valve piston (10) has a regulation surface (44) connectable to working port (A) for a regulation pressure (PR). A ring-shaped chamber (42) in the valve housing (10) opens into the working port (A). At the transition between the ring-shaped chamber (42) and the working port (A), the regulation surface (44) is active. When the actuating magnet (14) is deenergized, a maximum regulation pressure (PR) is generated.
Claims
1. A valve, comprising: a valve housing having a pump connection, a working connection and a tank connection; a valve piston biased by a compression spring and movable in and along a longitudinal axis of said valve housing selectively connecting and disconnecting fluid communication of said working connection with said pump connection and said tank connection, in different connection positions of said valve piston along said longitudinal axis in said valve housing, opposite axially facing sides of said valve piston being permanently connected to said tank connection in fluid communication such that said opposite axially facing sides are at tank pressure; an annular space in said valve housing, said working connection opening into said annular space in a radial or axial direction; an actuating magnet coupled to said valve piston and moving said valve piston in said valve housing between the connection positions of said valve piston in opposition to biasing of said compression spring; and a pressure-active regulation surface on said valve piston being connected in fluid communication to said working connection generating a regulation pressure and being at a transition point between said annular space and a mouth of said working connection, a maximum regulation pressure being generated producing a respective adjustment state applying an axial force on said valve piston in opposition to the spring force of said compression spring with the regulation pressure applied at said regulation surface of said valve piston in a de-energized state of said actuating magnet.
2. A valve according to claim 1 wherein said valve housing, said valve piston, said annular space, said actuating magnet and said pressure-active regulating pressure regulation surface form a proportional pressure regulating valve.
3. A valve according to claim 1 wherein an increasing portion of the spring force is compensated by a magnetic force of said actuating magnet with increasing current at the actuating magnet.
4. A valve according to claim 1 wherein said actuating magnet moves said valve piston against biasing of said compression spring and moves said valve piston with increasing energy of said actuating magnet towards said tank connection increasingly closing fluid communication between said pump connection and said working connection.
5. A valve according to claim 1 wherein said pressure-active regulation surface is formed by a change in outer diameter of said valve piston and is at least partially movable in said annular space in said valve housing, said working connection opening into said annular space in a radial or axial direction to provide fluid communication therebetween.
6. A valve according to claim 1 wherein said compression spring comprises a first free end abutting against said valve piston and a second free end abutting against parts of said valve housing, said valve piston extending through said compression spring.
7. A valve according to claim 1 wherein said actuating magnet comprises an operating plunger abutting an end of said valve piston remote from said tank connection.
8. A valve according to claim 1 wherein said valve piston comprises a longitudinal groove on an exterior circumference of said valve piston providing fluid communication between said pump connection and said working connection of the respective connection position of said valve piston.
9. A valve according to claim 1 wherein said valve piston has a cross-sectional width within said annular space that is less than a cross-sectional width of said pressure-active regulation surface.
10. A valve according to claim 1 wherein said valve piston has a cross-sectional width within said annular space not greater than a narrowest cross-sectional width point of said pressure-active regulation surface.
11. A valve according to claim 1 wherein said valve piston has a cross-sectional width less than a cross-sectional width of said pressure-active regulation surface along an entire length portion of said valve piston extending from said pressure-active regulation surface in a direction away from said tank port.
12. A valve according to claim 1 wherein said valve piston has a cross-sectional width not greater than a narrowest cross-sectional width point of said pressure-active regulation surface along an entire length portion of said valve piston extending from said pressure-active regulation surface in a direction away from said tank port.
13. A valve according to claim 1 wherein said valve piston comprises a continuous channel extending from said tank connection and opening radially into a transverse channel discharging into an annular groove being delimited by edges between first and second channels of said working connection in the de-energized state of said actuating magnet.
14. A valve according to claim 13 wherein said actuating magnet comprises a keeper having a continuous hollow channel permanently connected in fluid communication with said continuous channel of said valve piston.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Referring to the drawings that form a part of this disclosure and are schematic and not to scale:
(2)
(3)
(4)
DETAILED DESCRIPTION OF THE INVENTION
(5)
(6) As can also be seen from
(7) A compression spring 30 serves for the spring loading of the valve piston. The compression spring 30 is conically tapered upwards, when viewed in the viewing direction of
(8) Viewed in the viewing direction of
(9) The actuating magnet 14 has a coil winding 46 in a manner that is standard and therefore not described in detail. The coil winding can be energized from the outside via a connector part 48. The entire actuating magnet 14 is encapsulated in a pressure-tight manner by a housing part 50. On the inside, a longitudinally displaceable keeper 52 is provided, which keeper acts via an operating plunger 54 having direct contact directly on the valve piston 10. The actuating magnet 14 is designed as an oppressive magnet, i.e., when the coil winding 46 is energized, the keeper 52 travels, viewed in the viewing direction of
(10) The regulation pressure P.sub.R is measured at the diameter jump at the valve piston 10 in the form of the regulation surface 44, with all other piston face sides being pressurized with the tank pressure. If the actuating magnet 14 is de-energized, a balance is then obtained between the compression spring 30 and the regulation pressure P.sub.R applied at the circular ring, or the regulation surface 44. If the coil winding 46 is now energized, then a portion of the compression spring that increases with increasing current is compensated for by the magnetic force of the actuating magnet 14, and the regulation pressure P.sub.R drops, as is depicted in
(11) The valve solution according to the invention then permits realizing in a cost-effective manner a proportional pressure regulator with a falling characteristic curve according to the exemplary depiction of
(12) The second embodiment of the valve according to the invention in accordance with
(13) In the embodiment according to
(14) Also in the present exemplary embodiment, the central channel 16 of the hollow piston as a valve piston 10 opens in the radial direction into the transverse channel 18, which is in turn delimited inside the valve piston 10 towards the outside by an annular groove 19. This transverse channel 18 with the annular groove 19 is again arranged in the exemplary embodiment according to
(15) The longitudinal channel 60 is arranged for the purpose of its production as an overall longitudinal bore in the valve housing 12. Channel 60 discharges upwards in the direction of the spring space 40, with it being closed in a pressure-tight manner in this discharge region by a blind plug 62. Because, in principle, the valve piston 10 is only actuated by the regulation pressure PR at the regulation surface 44, it can act very promptly in a regulating manner on a hydraulic control circuit, so that regulating delays or switching delays during operation of the valve are avoided.
(16) While various embodiments have been chosen to illustrate the invention, it will be understood by those skilled in the art that various changes and modifications can be made therein without departing from the scope of the invention as defined in the claims.