SOLENOID VALVE
20170234449 · 2017-08-17
Inventors
Cpc classification
F16K31/0675
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/0665
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A solenoid valve (1) is provided comprising a housing, an inlet, an outlet, main valve means located between said inlet and said outlet, said main valve means comprising a main valve element, pilot valve means adjusting a pressure difference over said main valve element and having a pilot valve element, a coil, a yoke arrangement magnetically linked to said coil, and armature means for moving said pilot valve element. Such a solenoid valve should achieve a large opening stroke without unduly increasing the coil and yoke arrangement. To this end said armature means comprise a first part attractable by said yoke means to perform an opening stroke, and a second part carrying said pilot valve element, wherein said first part is movable relative to said second part in a first section of said opening stroke and is dragging said second part in a second section of said opening stroke following said first section.
Claims
1. A solenoid valve comprising: a housing, an inlet, an outlet, main valve means located between said inlet and said outlet, said main valve means comprising a main valve element, pilot valve means adjusting a pressure difference over said main valve element and having a pilot valve element, a coil, a yoke arrangement magnetically linked to said coil, and armature means for moving said pilot valve element, wherein said armature means comprise a first part attractable by said yoke means to perform an opening stroke, and a second part carrying said pilot valve element, wherein said first part is movable relative to said second part in a first section of said opening stroke and is dragging said second part in a second section of said opening stroke following said first section, wherein an opening spring is located between said first part and said second part, said opening spring acting on said second part in an opening direction.
2. The solenoid valve according to claim 1, wherein said pilot valve means has a pilot orifice and the length of said second section is in the range of 0.5 to 1.5 times the diameter of said pilot orifice.
3. The solenoid valve according to claim 1, wherein a closing spring is arranged between said first part and said yoke arrangement, said closing spring being compressed during said opening stroke.
4. The solenoid valve according to claim 1, wherein said opening spring is stronger than said closing spring.
5. The solenoid valve according to claim 1, wherein said second part is located inside said first part.
6. The solenoid valve according to claim 5, wherein said first part comprises a hollow first sleeve and a hollow second sleeve, which are connected to each other to form a space in which said second part is accommodated.
7. The solenoid valve according to claim 6, wherein said first sleeve has a bore at a side facing said yoke arrangement, said bore ending at a step supporting said closing spring.
8. The solenoid valve according to claim 7, wherein said second part comprises a stem protruding through said bore.
9. The solenoid valve according to claim 8, wherein said stem is longer than said first sleeve.
10. The solenoid valve according to claim 1, wherein said housing comprises a stop for said main valve element in opening direction, said second part of said armature being retracted behind said stop at the end of said opening stroke.
11. Use of a solenoid valve according to claim 1 in a CO.sub.2 refrigeration system.
12. The solenoid valve according to claim 2, wherein a closing spring is arranged between said first part and said yoke arrangement, said closing spring being compressed during said opening stroke.
13. The solenoid valve according to claim 2, wherein said opening spring is stronger than said closing spring.
14. The solenoid valve according to claim 3, wherein said opening spring is stronger than said closing spring.
15. The solenoid valve according to claim 2, wherein said second part is located inside said first part.
16. The solenoid valve according to claim 3, wherein said second part is located inside said first part.
17. The solenoid valve according to claim 4, wherein said second part is located inside said first part.
18. The solenoid valve according to claim 2, wherein said housing comprises a stop for said main valve element in opening direction, said second part of said armature being retracted behind said stop at the end of said opening stroke.
19. The solenoid valve according to claim 3, wherein said housing comprises a stop for said main valve element in opening direction, said second part of said armature being retracted behind said stop at the end of said opening stroke.
20. The solenoid valve according to claim 4, wherein said housing comprises a stop for said main valve element in opening direction, said second part of said armature being retracted behind said stop at the end of said opening stroke.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] A preferred embodiment of the invention now is described in more detail with reference to the drawing, wherein:
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
DETAILED DESCRIPTION
[0029]
[0030] The control of such a fluid is performed by main valve means 5 having a main valve element 6 and a main valve seat 7.
[0031] The main valve element 6 has the form of a piston having a channel 8 running in lengthwise direction through the complete valve element 6. One end of this channel 8 opens into the main valve seat 7 (in closed condition) or is directed into the main valve seat 7 (in open condition, c. f.
[0032] A small gap between the main valve element 6 and the housing 2 is unavoidable and in the present case intended so that a fluid pressure from the inlet 3 can act on both front faces 11, 12 of the main valve element 6, i.e. in a pressure space 13 on a side of the main valve element 6 opposite to said main valve seat 7. The area of the front face 11 surrounding the main valve seat 7 is smaller than the area of the opposite front face 12 so that the main valve element 6 is held against the main valve seat 7 by the resulting force difference and the main valve means 5 are closed.
[0033] Furthermore, the solenoid valve 1 comprises pilot valve means 14. The pilot valve means 14 comprise a pilot valve element 15 cooperating with the pilot orifice 9, i. e. closing the pilot orifice 9 (
[0034] Movement of the pilot valve element 15 is performed by an armature 16 which will be described later.
[0035] The solenoid valve 1 comprises a coil 17 and a yoke arrangement 18 (only partly shown). When the coil 17 is supplied with electric current, the yoke arrangement 18 which is magnetically linked to the coil 17 generates a magnetic force acting on the armature 16.
[0036] The armature 16 comprises a first part 19 and a second part 20. The first part 19 is formed of a first sleeve 21 and a second sleeve 22. Both sleeves 21, 22 are hollow. They are connected to each other in a connection area 23. They can, for example, be joined by a press-fit connection or connected by means of a pair of threadings, they can be glued together or brazed together or connected to each other in any other way. The first part 19 is made from a magnetizable material, whereas there are no similar requirements to the second part 20.
[0037] The two sleeves 21, 22 together form a space 24 in which the second part 20 of the armature is accommodated. The second part 20 of the armature 16 carries the pilot valve element 15.
[0038] The first sleeve 21 comprises a bore 25 through which a stem 26 of the second part is guided. Furthermore, the bore 25 forms a step 27. A closing spring 28 rests against this step 27. The other end of the closing spring 28 rests against the yoke arrangement 18. When the first part 19 is moved in a direction towards the yoke arrangement 18, the closing spring 28 is compressed.
[0039] An opening spring 29 is arranged in the space 24 within the first part 19 as well. This opening spring 29 acts between the first part 19 and the second part 20 and presses the second part 20 against the first sleeve 21.
[0040] The state shown in
[0041]
[0042] All elements are designated with the same reference numerals in all figures.
[0043] As can be seen in
[0044] The first part 19 has been moved over an opening stroke, i. e. from the position shown in
[0045] This opening stroke has some sections. In a first section the first part 19 can be moved relative to the second part 20 of the armature without moving the second part 20 of the armature 16. In a second section of the opening stroke the first part 19 has come in contact with a step 30 at the lower end of the second part 20 and pulls or drags the second part 20 upon further movement of the first part 19.
[0046] During movement of the first part 19, the closing spring 28 and the opening spring 29 are compressed.
[0047] At the end of the first section, the first part 19 of the armature has already a certain speed and correspondingly a certain kinetic energy. This kinetic energy can be used to move the second part 20 of the armature 16 as well. This movement can be rather small, for example less than 1 mm. In general, the second section of the opening stroke has a length in the range of 0.5 to 1.5 times the diameter of the pilot orifice 9. Less than 0.5 means that the pressure difference becomes too big. More than 1.5 means that the magnetic forces become too small. The movement of the second part 20 is sufficient when the pilot valve element 15 is just lifted off the pilot orifice 9 so that fluid out of the pressure space 13 can start to escape out of the pressure space 13 thereby lowering the pressure in the pressure space 13. This state can be termed as “pre-lift”.
[0048] As shown in
[0049] As shown in
[0050] When the pilot valve means 14 are open the pressure in the pressure space 13 decreases and consequently the pressure acting on the lower front face 11 generates a force higher than the pressure acting on the opposite front face 12 of the main valve element 6. The main valve element 6 moves away from the main valve seat 7 and opens the main valve means 5.
[0051] As can be seen in
[0052]
[0053] When the supply of current to coil 17 is stopped, no magnetic forces are generated in the yoke arrangement 18.
[0054] When the current is switched off, the closing process starts. The magnetic sticking force is overcome by the force of the opening spring 29. Since the stem 26 is longer than the first sleeve 21, the opening spring 29 pushes the first part 19 away from the yoke arrangement 18 in a direction towards the pilot valve orifice 9. Once the first part 19 abuts the second part 20 the opening spring 29 does no longer contribute to further movement of the first part (as shown in
[0055] In
[0056]
[0057] The difference of forces over the main valve element 6 moves the main valve element 6 in a direction towards the main valve seat 7 so that finally the main valve element 6 comes to rest the main valve seat 7 and the main valve means 5 close, as shown in
[0058] 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.