Solenoid valve
10663077 ยท 2020-05-26
Assignee
Inventors
Cpc classification
F16K31/408
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/0675
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/0665
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K47/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/7765
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16K39/024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K31/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K39/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A solenoid valve (1) is described comprising a first port (2), a second port (3), a valve element (4) and a valve seat (5) arranged between said first port (2) and said second port (3), a coil (12) and a yoke arrangement (14-16), said coil (12) being magnetically linked to said yoke arrangement (14-16), said yoke arrangement (14-16) having a movable armature (16). In such a solenoid valve the generation of noise should be kept low. To this end said valve element (4) is driven by a pressure difference between a first pressure on a first side (6) of said valve element (4) and a second pressure on a second side (7) of said valve element (4), at least one of said first pressure and said second pressure being controlled by means of said armature (16), wherein said armature (16) comprises a first front face (18) at a first end and a second front face (19) at a second end opposite said first end, said first front face (18) and said second front face (19) being connected by a first flow path (21), said first flow path having first throttling means for keeping low a flow of a fluid flowing through said first flow path (21).
Claims
1. A solenoid valve comprising a first port, a second port, a valve element and a valve seat arranged between said first port and said second port, a coil and a yoke arrangement, said coil being magnetically linked to said yoke arrangement, said yoke arrangement having a movable armature, wherein said valve element is controlled by a pressure difference between a first pressure on a first side of said valve element and a second pressure on a second side of said valve element, at least one of said first pressure and said second pressure being controlled by means of said armature, wherein said armature comprises a first front face at a first end and a second front face at a second end opposite said first end, said first front face and said second front face being connected by a first flow path, said first flow path having first throttling means for keeping low a flow rate of a fluid flowing through said first flow path, wherein a second flow path connects said first side and said second side of said valve element, said second flow path having second throttling means for keeping a low flow rate of a fluid flowing through said second flow path, wherein said second flow path is arranged between said valve element and a wall of a housing, said housing surrounding said valve element.
2. The solenoid valve according to claim 1, wherein said first flow path is arranged between said armature and a wall of the housing, said housing surrounding said armature.
3. The solenoid valve according to claim 2, wherein said housing is formed as tube having the same diameter for said armature and said valve element.
4. The solenoid valve according to claim 1, wherein said first throttling means and/or said second throttling means comprise a surface structure in a wall of said flow path.
5. The solenoid valve according to claim 4, wherein said surface structure is a saw tooth like profile.
6. The solenoid valve according to claim 5, wherein said saw tooth like profile comprises grooves running circumferentially or screw like around said valve element and/or said armature.
7. The solenoid valve according to claim 1, wherein said valve element comprises a through going channel, a pilot valve being arranged at an end of said channel facing said armature, said armature acting on said pilot valve.
8. The solenoid valve according to claim 7, wherein said pilot valve comprises a pilot valve element, said armature holding said pilot valve element.
9. The solenoid valve according to claim 1, wherein said valve element comprises a throttling cone at an end near said valve seat, said cone being insertable into an opening surrounded by said valve seat.
10. The solenoid valve according to claim 1, wherein said valve element has a stroke corresponding to at least 50% of an inner diameter of said valve seat.
11. The solenoid valve according to claim 1, wherein said valve element and/or said armature are provided with a closure member made of a pressure resistant plastic material.
12. The solenoid valve according to claim 1, wherein said valve element is provided with stroke limiting means.
13. The solenoid valve according to claim 12, wherein said stroke limiting means are in form of a shoulder cooperating with a housing part.
14. The solenoid valve according to claim 2, wherein said first throttling means and/or said second throttling means comprise a surface structure in a wall of said flow path.
15. The solenoid valve according to claim 3, wherein said first throttling means and/or said second throttling means comprise a surface structure in a wall of said flow path.
16. The solenoid valve according to claim 2, wherein said valve element comprises a through going channel, a pilot valve being arranged at an end of said channel facing said armature, said armature acting on said pilot valve.
17. The solenoid valve according to claim 3, wherein said valve element comprises a through going channel, a pilot valve being arranged at an end of said channel facing said armature, said armature acting on said pilot valve.
18. The solenoid valve according to claim 4, wherein said valve element comprises a through going channel, a pilot valve being arranged at an end of said channel facing said armature, said armature acting on said pilot valve.
19. The solenoid valve according to claim 1, wherein said valve element has a stroke corresponding to at least 75% of an inner diameter of said valve seat.
20. The solenoid valve according to claim 11, wherein said closure member is made of PTFE.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Preferred examples of the invention will now be described in more detail with reference to the drawing, wherein:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
DETAILED DESCRIPTION
(12) A solenoid valve 1 comprises a first port 2 and a second port 3. The two ports 2, 3 of the valve 1 can be connected, for example, to a circuit in which a refrigerant circulates. In this case, the valve 1 can be used as expansion valve.
(13) The valve 1 comprises a valve element 4 cooperating with a valve seat 5. The valve element 4 has a first side 6 and a second side 7. Furthermore, the valve element 4 comprises a through going channel 8 connecting the first side 6 and the second side 7. A pilot valve 9 which will be described in more detail in connection with
(14) The valve element 4 is arranged in a tubular housing 10. The valve element 4 is moveable in the housing 10 along a longitudinal axis 11 of the housing 10.
(15) The housing 10 is surrounded by a coil 12 which can be supplied with electrical energy via an electrical connection 13. The coil 12 is part of a magnetic circuit. The magnetic circuit furthermore comprises a yoke arrangement having a first yoke part 14 surrounding the housing 10, a stationary second yoke part 15 positioned within the housing 10 and a moveable armature 16 arranged within housing 10 as well. A spring 17 is positioned between the second yoke part 15 and the armature 16 and forces the armature 16 away from the second yoke part 15. The housing 10 is in form of a tube having the same diameter for the valve element 4 and the armature 16.
(16) When the coil 12 is energized with electrical current, the yoke arrangement is magnetized and the second yoke part 15 attracts magnetically the moveable armature 16 against the force of the spring 17.
(17) The armature 16 has a first front face 18 and a second front face 19.
(18) A first flow path 21 is arranged between the housing 10 and the armature 16. A second flow path 20 is arranged between the valve element 4 and the housing 10.
(19) A first pressure space 22 is arranged between the valve element 4 and the armature 16. A second pressure space 23 is arranged between the armature 16 and the second yoke part 15.
(20) More details of the valve element 4 are shown in
(21) When the throttling cone 24 is moved into the opening 25 the flow resistance through a gap 26 between the throttling cone 24 and the valve seat 25 gradually decreases.
(22)
(23) The armature 16 at its second front face 19 comprises a ring shaped wall 29 surrounding a space 30 accommodating the pilot valve element 27. The ring shaped wall 29 can be replaced by at least three protrusions extending from the second front face 19 of the armature 16 in a direction towards the valve element 4.
(24)
(25)
(26) The same surface structure is provided on the circumference of the valve element 4.
(27) In the condition shown in
(28) In this condition fluid entering the valve via the first port 2 passes through the second flow path 20 and increases the pressure in the first pressure space 22 since this fluid cannot escape through the pilot valve 9. The pilot valve 9 is closed by means of the armature 16.
(29) Although the pressure on both sides 6, 7 of the valve element 4 is the same, the valve element 4 is pressed against the valve seat 5 since the pressure in the first pressure space 22 acts on a larger area than the pressure at the second side 7 of the valve element. On the second side 7 the valve seat 5 covers a part of the pressure area and connects this to a lower pressure.
(30) If, however, the coil 12 is energized and the armature 16 is attracted by the second part 15 of the yoke arrangement against the force of the spring 17, the armature 16 is moved a bit away from the valve element 4. In this case the pilot valve element 27 is lifted off from the pilot valve seat 28 and fluid in the first pressure space 22 can escape through the channel 8 thus decreasing the pressure in the second pressure space 22. The pressure difference between the second side 7 and the first side 6 moves the valve element 4 to follow the armature 16 until the pilot valve 9 is moved in closing direction. This movement is rather slow since the surface structure on the circumference of the valve element 4 throttles the flow through the second flow path 20. The movement of the armature 16 is slow as well since the fluid in the second pressure space 23 can escape through the first flow path 21 only which has, as described above, a certain flow resistance. The movement of the valve element 4 is controlled by the movement of the armature 16. Since the armature 16 can move with low velocity only, the velocity of the valve element is limited as well. Consequently, not only noise produced by a click but also noise produced by a water hammer can be reduced.
(31)
(32) In a fully open condition shown in
(33) The valve element 4 has a stroke corresponding to at least 50% of the inner diameter of the valve seat 25, i.e. of the diameter of the opening 25 which can also be termed as main orifice. The stroke is the distance the valve element 4 moves between the fully closed condition shown in
(34)
(35) A strainer or mesh 34 has been added to remove dirt of other part flowing together with the refrigerant through the valve 1.
(36) The valve element 4 is provided with a closure member 35 made of a plastic material, like polytetrafluoroethylene (PTFE) on its lower side 7. This closure member 35 comes into contact with the valve seat 5, when the valve element 4 is moved into a closing position. Furthermore, the armature 16 is provided with a closure member 36 made of a plastic material like polytetrafluoroethylene (PTFE). This closure member 36 replaces the pilot valve 9 of
(37) Valve element 4 is provided with stroke limiting means 37 in form of a radial shoulder. When the valve element 4 is in fully open condition, like shown in
(38) While the present disclosure has been illustrated and described with respect to a particular embodiment thereof, it should be appreciated by those of ordinary skill in the art that various modifications to this disclosure may be made without departing from the spirit and scope of the present disclosure.