Claims
- 1. In an electromagnet assembly for valves having an armature, electrical coil means, and armature return spring means, wherein said electrical coil means is effective upon energization to cause said armature to move in a first direction against the resistance of said return spring means toward a first end position of travel, wherein said armature tends to undergo a bouncing movement when said armature reaches said first end position of travel, wherein said return spring means is effective upon de-energization of said electrical coil means to cause said armature to move in a second direction opposite to said first direction and toward a second end position of travel, and wherein the distance traveled by said armature from said first end position of travel to said second end position of travel comprises the stroke of said armature, the improvement comprising at least one additional mass-means situated generally between said armature and said return spring means, said additional mass-means being movable in said first and second directions, wherein said additional mass-means serves as spring seat means for said return spring means, wherein said additional mass-means has a weight substantially less than that of said armature, wherein when said armature is at second end position of travel and said electrical coil means is energized the force of the resulting magnetic field causes both said armature and said additional mass-means to move in said direction toward said first end position of travel, wherein said additional mass-means is effective to continue to move in said first direction even after said armature has come to said first end position of travel to thereby at least substantially relieve armature of the effect of the force of said return spring means, wherein the length of time during which said additional mass-means at least substantially relieves said armature of the effect of the force of said return spring means in comparison to the inherent bouncing time of the armature while tending to undergo said bouncing movement is such as to enable the still existing excess force of said magnetic field to cause deceleration in said bouncing movement of said armature thereby minimizing the bouncing time of said armature.
- 2. An electromagnet assembly according to claim 1 wherein said return spring means comprises a single spring member.
- 3. An electromagnet assembly according to claim 1 and further comprising resiliently deflectable abutment means, said abutment means serving to cushion any impact as between said armature and said additional mass-means.
- 4. An electromagnet assembly according to claim 3 wherein said abutment means is carried by said armature.
- 5. An electromagnet assembly according to claim 1 wherein said armature is of generally cylindrical configuration, and wherein said armature is received generally within said electrical coil means for movement in said first and second directions.
- 6. An electromagnet assembly according to claim 1 wherein said armature is of cup-like configuration having a cylindrical wall and a transverse end wall, wherein said cylindrical wall circumscribes and embraces a portion of said electrical coil means, and wherein said additional mass-means operatively abuts against said transverse end wall.
- 7. An electromagnet assembly according to claim 1 wherein said armature is operatively connected to a valve for movement in unison with each other, wherein said second end position of travel is that position when said valve is closed, and further comprising first movable abutment means movable in unison with said armature and said valve when said armature is moving in said first direction, second stationary abutment means situated in the path of travel of said movable abutment means, and wherein said first end position of travel is that position of said armature when said movable abutment means operatively engages said stationary abutment means.
- 8. An electromagnet assembly according to claim 7 wherein said movable abutment means is operatively connected to said valve, and wherein said stationary abutment means is situated generally between said armature and said valve and between said armature and said movable abutment means.
- 9. An electromagnet assembly according to claim 1 wherein said return spring means comprises a diaphragm-type spring.
- 10. An electromagnet assembly according to claim 1 wherein said armature is operatively connected to a valve through lost-motion connecting means as to have said valve moved by said armature in said first direction, and wherein when said armature is moving in said second direction said lost-motion connecting means enables said valve to first become closed and further motion thereof in said second direction to be arrested while permitting the further movement of said armature in said second direction to said second end position of travel.
- 11. An electromagnet assembly according to claim 10 wherein said lost-motion connecting means comprises additional spring means, and wherein said additional spring means is effective after said armature reaches said second end position of travel and before said electrical coil means is energized to resiliently move said armature in said first direction a distance sufficient to eliminate any possible lost motion in said lost-motion connection and thereby cause a solid abutting connection as between said valve and said armature.
- 12. An electromagnet assembly according to claim 1 wherein the spring force characteristic of said return spring means is such as to result in a greatly increased rate of spring force being generated in said return spring means as said armature in its movement in said first direction approaches said first end position, wherein when said armature is at said first end position of travel the effective spring force of said return spring means is of a magnitude slightly less than the saturation induction force of said electromagnet, and wherein when said armature is at said second end position the effective spring force of said return spring means is of a magnitude less than half of said saturation induction force.
- 13. An electromagnet assembly according to claim 1 wherein said additional mass-means is comprised of associated valve means movable by said armature in said first direction.
- 14. In an electromagnet assembly for valves having an armature, electrical coil means, and armature return spring means, said return spring means comprising at least first and second spring members, wherein said electrical coil means is effective upon energization to cause said armature to move in a first direction against the resistance of said first spring member toward a first end position of travel, wherein said armature tends to undergo a bouncing movement when said armature reaches said first end position of travel, wherein said return spring means is effective upon de-energization of said electrical coil means to cause said armature to move in a second direction opposite to said first direction and toward a second end position of travel, and wherein the distance traveled by said armature from said first end position of travel to said second end position of travel comprises the stroke of said armature, the improvement comprising at least one additional mass-means movable in said first and second directions and operatively connected to said armature, wherein said second spring member is situated as to be between a stationary abutment and said additional mass-means, wherein said second spring member is also between said additional mass-means and said armature, wherein said additional mass-means has a weight substantially less than that of said armature, wherein when said armature is at said second end position of travel and said electrical coil means is energized the force of the resulting magnetic field causes both said armature and said additional mass-means to move in said first direction toward said first end position of travel, wherein said additional mass-means is effective to continue to move in said first direction even after said armature has come to said first end position of travel to thereby at least substantially relieve said armature of the effect of the force of said second spring member, wherein the length of time during which said additional mass-means at least substantially relieves said armature of the effect of the force of said second spring member in comparison to the inherent bouncing time of the armature while tending to undergo said bouncing movement is such as to enable the still existing excess force of said magnetic field to cause deceleration in said bouncing movement of said armature thereby minimizing the bouncing time of said armature.
- 15. An electromagnet assembly according to claim 14 wherein the spring force characteristic of said second return spring member in comparison to said first return spring member is very steep so that a greatly increased total spring force is generated in said return spring means as said armature in its movement in said first direction approaches said first end position of travel, wherein said greatly increased total spring force is of a magnitude slightly less than the saturation induction force of the electromagnet, and wherein when said armature is at said second end position of travel the effective total spring force of said return spring means is of a magnitude substantially less than half of said saturation induction force.
- 16. An electromagnet assembly according to claim 14 wherein said first spring member and said second spring member respectively have operating strokes of different lengths, and wherein a sudden-rise spring force characteristic of said return spring means is attained by having said first spring member and said second spring member operating in parallel relationship to each other so that said second spring member becomes effective for resiliently resisting the movement of said armature in said first direction only after said armature has traveled a substantial portion of its stroke away from said second end position of travel.
- 17. An electromagnet assembly according to claim 14 wherein the spring force characteristic of said return spring means includes a sudden rise so that a greatly increased spring force is generatred in said return spring means as said armature in its movement in said first direction approaches said first end position of travel and operatively engages said second spring member, wherein said greatly increased spring force is of a magnitude slightly less than the saturation induction force of the electromagnet, and wherein when said armature is at said second end position of travel said second spring member cease to exhibit any force against said armature and the spring force of said return spring means thereby becomes of a magnitude substantially less than half of said saturation induction force.
- 18. An electromagnet assembly according to claim 17 wherein said sudden rise in said spring characteristic occurs at a point which is from 40% to 90% of said armature stroke as measured from said second end position of travel.
- 19. An electromagnet assembly according to claim 17 wherein both prior and subsequent to the occurrence of said sudden rise said spring characteristic of said return spring means is linear and directly related to the distance moved by said armature.
Priority Claims (1)
Number |
Date |
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Kind |
3314899 |
Apr 1983 |
DEX |
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Parent Case Info
This is a continuation of application Ser. No. 602,605, filed Apr. 20, 1984.
US Referenced Citations (9)
Foreign Referenced Citations (10)
Number |
Date |
Country |
1179068 |
Nov 1964 |
DEX |
1589782 |
Mar 1970 |
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2153224 |
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Mar 1983 |
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1540324 |
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Non-Patent Literature Citations (1)
Entry |
IBM Technical Disclosure Bulletin, vol. 6, No. 12, May 1964, p. 61, "Suppressing Bouncing Caused by Impacts", by E. Balle et al. |
Continuations (1)
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Number |
Date |
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Parent |
602605 |
Apr 1984 |
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