The present disclosure relates to linear actuators.
Vuilleumier heat pumps have been known since the early 20th century. Such heat pumps, as disclosed in U.S. Pat. No. 1,275,507, have two displacers that separate the internal volume into hot, warm, and cold chambers. The displacers are crank driven with a 90 degree offset. In a more recent development, the displacers in the heat pump are by a mechatronic system, as described in commonly-assigned PCT/US16/57755. In
Actuator 110 has coils 112 and 118 on either side of armature 116. When coil 112 is activated, armature 116 is attracted toward coil 112. When coil 112 is deactivated spring 114 causes armature 116 (and displacer 102) to move downward. If coil 118 is then activated, it attracts armature 116 toward coil 118. By deactivating coil 118, spring 114 causes armature 116 to move toward coil 112. By acting on armature 116 coupled to displacer 102, displacer 102 is caused to reciprocate between two ends of travel within cylinder 106. Similarly, displacer 104 is caused to reciprocate between its two ends of travel by judicious actuation of coils 122 and 128 that are disposed on either side of armature 126.
Herein, coils 112, 118, 122, and 128 are disposed in back irons 113, 119, 123, and 129. Back iron 113 and coil 112 make up a stator, called a face stator, herein. Similarly, coil 118 with back iron 119, coil 122 with back iron 123, and coil 128 with back iron 129 form stators. The face stators exert an attractive force on their respective armature (116 or 126) in a direction that is substantially in a direction parallel to a central axis 108 of heat pump 100.
In heat pump 100, displacers 102 and 104 separate the volume with cylinder 106 into four volumes: a hot volume 140, a hot-warm volume 142, a cold-warm volume 144, and a cold volume 146.
Problems encountered with the type of linear actuation system shown in
To overcome at least one problem in the prior art, a linear actuator is disclosed that can be used in a thermodynamic apparatus, such as a Vuilleumier heat pump. The linear actuator has an armature coupled to a shaft, which in turn is coupled to a displacer in a cylinder. The linear actuator also has a cylindrical back iron section having first and second recesses with coils disposed in the recesses. The linear actuator assists in moving the armature from one end to the other and holds the armature at the end of travel. However, much of the force for moving the armature is provided by a spring exerting a force on the shaft with respect to the back iron section. In one embodiment, the spring is a compression-tension spring. In another embodiment, the spring is a first compression spring and a second compression spring acting in opposition to the first spring.
A linear actuator is disclosure that has a substantially cylindrical back iron section having a central axis, the back iron section having at least first and second recesses defined therein, with the first recess displaced from the second recess in a direction parallel to the central axis, a first side coil disposed in the first recess, a second side coil disposed in the second recess, and an armature disposed within the back iron, the armature being free to move along the central axis between a first end of travel and a second end of travel.
The actuator also has a shaft coupled to the armature and a spring system having a first end coupled to the armature and second end coupled to the back iron section. The coupling between the spring system and the armature is one of direct and indirect. The coupling between the spring system and the cylindrical back iron section is one of direct and indirect. There may be intermediary components between the spring system and the armature, which is a moving element, and between the spring system and the stationary back iron section.
The armature, in some embodiments, includes a radially-symmetric permanent magnet and to ferromagnetic, radially-symmetric pole pieces coupled to the permanent magnets. The two pole pieces abut the permanent magnet and are mutually separated.
The linear actuator, in some embodiments, includes a shaft coupled to the armature. The armature has first and second substantially-annular pole pieces coupled to the shaft and an annular permanent magnet with a first face of the permanent magnet abutting a face of the first pole piece and a second face of the permanent magnet abutting a face of the second pole piece, the first pole piece being separated from the second pole piece.
The shaft is magnetically insulated from: the first pole piece, the second pole piece, and the permanent magnet. In one embodiment, the shaft is made of a substantially non-magnetic material. In another embodiment, a magnetically insulating element is interposed between the shaft and the first pole piece, the second pole piece, and/or the permanent magnet.
In some embodiments, the linear actuator includes a first substantially disk-shaped back iron section abutting the cylindrical back iron section proximate a first end of the cylindrical back iron section and a second substantially disk-shaped back iron section abutting the cylindrical back iron section proximate a second end of the cylindrical back iron section. The first and second disk-shaped back iron sections and the cylindrical back-iron section form a back iron.
In some embodiments the spring system is made up of a single compression-tension spring. In other embodiments, the spring system has two or more nested springs. First ends of the springs are mounted in a first common element, which could be a stationary piece coupled directly or indirectly to the back iron section. Second ends of the springs are mounted in a second common element, which could be a moving piece coupled directly or indirectly to the armature or a shaft coupled to the armature or other common element. In yet another embodiment, the spring system includes a pair of compression springs that are mutually biased against each other.
The linear actuator system includes a power electronics module electrically coupled to first and second side coils and an electronic control unit (ECU) 80 electronically coupled to the power electronics module. The ECU determines a desired trajectory of the armature, computes a current to provide to the first and second side coils, and commands the power electronic module to deliver such current to the first and second side coils. In some embodiments, a user input is provided to the ECU via electronic coupling. A position sensor is electronically coupled to the ECU. The position sensor, in some embodiments, determines the position of the armature. The ECU computes the desired trajectory of the armature based at least on user input and a signal from the position sensor. Herein, electronically coupled can be via any suitable wired or wireless structures or protocols.
The linear actuator has a back iron that may be formed of multiple, contiguous sections, one of which is the cylindrical back iron or can be a unitary piece.
Also disclosed in an apparatus in which the linear actuator is disposed. The apparatus has a cylinder having a central axis, a reciprocating component disposed in the cylinder, a shaft coupled to the reciprocating component and the linear actuation system. The linear actuation system has: an armature coupled to the shaft, a substantially cylindrical back iron section having a first and second recesses defined therein, a first coil disposed in the first recess, a second coil disposed in the second recess, and a spring system exerting a force on the shaft with respect to the back iron section, the force being in a direction parallel to the central axis. The armature has a first end of travel and a second end of travel. A path of travel from the first end to the second end is parallel to the central axis of the cylinder.
The apparatus further includes a first disk-shaped back iron section delimiting the armature travel at the first end of travel and a second disk-shaped back iron section delimiting the armature travel at the second end of travel. The first disk-shaped back iron section abuts the cylindrical back iron at a first end of the cylindrical back iron. The second disk-shaped back iron section abuts the cylindrical back iron at a second end of the cylindrical back iron.
The first recess overlaps the first disc-shaped back iron section as considered axially. The second recess overlaps the second disc-shaped back iron section as considered axially.
The substantially cylindrical back iron section has a plurality of contiguous sections.
The spring system includes a first compression spring and a second compression spring exerting a force on the shaft with respect to the back iron section. The force of the second compression spring acting in a direction opposite to the direction of the force of the first compression spring.
In some embodiments, the spring system is a compression-tension spring. The force exerted by the spring on the shaft is in a first direction parallel to the central axis when the armature is at the first end of travel. The force exerted by the spring on the shaft is in a second direction parallel to the central axis when the armature is at the second end of travel. The first direction is opposite the second direction.
In some embodiments, the armature has first and second substantially-annular pole pieces coupled to the shaft and an annular permanent magnet with a first face of the permanent magnet abutting a face of the first pole piece and a second face of the permanent magnet abutting a face of the second pole piece. The first pole piece is separated from the second pole piece. The first pole piece, the second pole piece, and the permanent magnet are magnetically isolated from the shaft.
The apparatus has a position sensor coupled to the apparatus that senses position of the reciprocating component. Because the reciprocating component is coupled to the armature, the position sensor also senses position of the armature. The apparatus includes an electronic control unit (ECU) electronically coupled to the position sensor and a power electronics module electronically coupled to the ECU and electrically coupled to the first and second coils. The ECU commands the power electronics module to provide current to the coils based at least on a signal from the position sensor.
Also disclosed is a thermodynamic apparatus that has: a first cylinder having a central axis, a second cylinder have a central axis, a first displacer disposed in the first cylinder, a second displacer disposed in the second cylinder, a first shaft coupled to the first displacer, a second shaft coupled to the second displacer, and a second linear actuation system. The first linear actuation system includes a first substantially-cylindrical back iron section defining first and second recesses with the first recess displaced from the second recess along a direction parallel to the central axis of the first cylinder, first and second coils disposed in the first and second recesses, a first armature located within the first back iron section and coupled to the first shaft, and a first spring system coupled between the first back iron section and the first armature. The first spring system exerting a relative force between the first back iron section and the first armature in a direction substantially parallel to the central axis of the first cylinder. The second linear actuation system includes: a second substantially-cylindrical back iron section defining third and fourth recesses with the third recess displaced from the fourth recess along a direction parallel to the central axis of the second cylinder, third and fourth coils disposed in the third and fourth recesses, a second armature located within the second back iron section and coupled to the second shaft, and a second spring system coupled between the second back iron section and the second armature, the second spring exerting a relative force between the second back iron section and the second armature in a direction substantially parallel to the central axis of the second cylinder.
The thermodynamic apparatus, in some embodiments has: a first disk-shaped back iron section delimiting the first armature travel at a first end of travel within the first cylindrical back iron, a second disk-shaped back iron section delimiting the first armature travel at a second end of travel within the first cylindrical back iron, a third disk-shaped back iron section delimiting the second armature travel at a first end of travel within the second cylindrical back iron, and a second disk-shaped back iron section delimiting the first armature travel at a second end of travel within the second cylindrical back iron. The first disk-shaped back iron section abuts the first cylindrical back iron at a first end of the first cylindrical back iron. The second disk-shaped back iron section abuts the first cylindrical back iron at a second end of the first cylindrical back iron. The third disk-shaped back iron section abuts the second cylindrical back iron at a first end of the second cylindrical back iron. The fourth disk-shaped back iron section abuts the second cylindrical back iron at a second end of the second cylindrical back iron.
The first spring is a first spring system has first and second compression springs biased against other. The second spring system has third and fourth compression springs biased against each other.
The first spring system is a first compression-tension spring and the second spring system is a second compression-tension spring.
The thermodynamic apparatus also includes: a first position sensor coupled to the thermodynamic apparatus that senses the position of the first displacer, a second position sensor coupled to the thermodynamic apparatus that senses the position of the second displacer, an electronic control unit (ECU) electronically coupled to the first position sensor and the second position sensor, and a power electronics module electronically coupled to the ECU and electrically coupled to the first, second, third, and fourth coils.
Each of the first and second armatures has first and second substantially-annular pole pieces coupled to the shaft and an annular permanent magnet with a first face of the permanent magnet abutting a face of the first pole piece and a second face of the permanent magnet abutting a face of the second pole piece. The first pole piece is separated from the second pole piece. The first pole piece, the second pole piece, and the permanent magnet are magnetically isolated from the shaft.
At least one of the substantially cylindrical back iron sections is made up of a plurality of contiguous sections.
As those of ordinary skill in the art will understand, various features of the embodiments illustrated and described with reference to any one of the Figures may be combined with features illustrated in one or more other Figures to produce alternative embodiments that are not explicitly illustrated or described. The combinations of features illustrated provide representative embodiments for typical applications. However, various combinations and modifications of the features consistent with the teachings of the present disclosure may be desired for particular applications or implementations. Those of ordinary skill in the art may recognize similar applications or implementations whether or not explicitly described or illustrated.
A linear actuator system 48 system is shown
Coils 60 and 62 are located near the end of travel of the armature so that they are able to hold the armature 56 for a dwell period. This obviates face stators 24 and 26 such as shown in
If movement of the displacer system (displacer 52, shaft 54, the armature (elements 92, 94, and 96) shaft 55, and plate 76, which is coupled to shaft 55) were driven solely by activating coils 60 and 62, the electrical draw can be very high. Much of the force to move the displacer system is provided by a spring 78 which is affixed to bridge 74, which is in turn affixed to cylinder 50, and affixed to plate 76 which moves within cylinder 50. When the armature is at the top of travel, i.e., proximate coil 60, spring 78 is in compression. When the armature is at the bottom of travel, i.e., proximate back iron section 46, spring 78 is in tension. Consequently, when armature 90 is at the top of travel, spring 78 pushes on plate 76 to cause displacer 52 to move downward when coil 60 is deactivated. And, when the armature is at the bottom of travel, spring 78 pulls upward on plate 76 to cause displacer 52 to move upward when coil 62 is deactivated. Spring 78 provides much of the force to move the displacer system between ends of travel. The force provided by spring 78 cannot be controlled. Side coils 60 and 62 provide additional force during travel, such force being controllable to ensure completing the travel and approaching the end of travel slowly enough to avoid impact.
The armature in
In
Armature 90 has a permanent magnet 96. When current in one direction is provided to a coil, it attracts armature 90. However, when current in the opposite direction is provided to the coil, it repels armature 90. During travel of armature 90 between ends of travel, a signal from position sensor 82 can be used to determine whether the armature is predicted to reach the end of travel or not and at what impact speed. Current can be provided to coils 60 or 62 in either direction to provide attractive or repulsive force acting on armature 90. A graph of force that can be provided as a function of distance between the armature and the stator is shown in
Obtaining reliable operation of the linear actuation system such as shown in
A less complicated illustration of the salient features of the coils and armature portion of a linear actuator is shown in
Because the side stators are located nearer the armature along the travel path (as shown in
There are several options for the spring system. A single, machined spring such as spring 78 in
While the best mode has been described in detail with respect to particular embodiments, those familiar with the art will recognize various alternative designs and embodiments within the scope of the following claims. While various embodiments may have been described as providing advantages or being preferred over other embodiments with respect to one or more desired characteristics, as one skilled in the art is aware, one or more characteristics may be compromised to achieve desired system attributes, which depend on the specific application and implementation. These attributes include, but are not limited to: cost, strength, durability, life cycle cost, marketability, appearance, packaging, size, serviceability, weight, manufacturability, ease of assembly, etc. The embodiments described herein that are characterized as less desirable than other embodiments or prior art implementations with respect to one or more characteristics are not outside the scope of the disclosure and may be desirable for particular applications.
Filing Document | Filing Date | Country | Kind |
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PCT/US18/29223 | 4/24/2018 | WO | 00 |
Number | Date | Country | |
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62489381 | Apr 2017 | US |