ENERGY EFFICIENT, MOVING COIL OR MOVING MAGNET, DUAL POSITION LATCHING SOLENOID FOR LATCHING AND LINEAR MOTOR APPLICATIONS, AND APPARATUSES USING THE SAME
20230268816 · 2023-08-24
Inventors
Cpc classification
H01F1/00
ELECTRICITY
H02K33/16
ELECTRICITY
International classification
Abstract
The present invention is directed toward providing a new embodiment of prior art Dual Position Latching Solenoid (DPLS), that allows for a moving coil section or moving permanent magnet section, with increased magnetic attraction force and increased travel distance. In this new DPLS embodiment, the control coil and the permanent magnet are separated, which allows magnetic attraction for latching and repulsion for unlatching. Further, this allows the DPLS to be used as Dual Poled Linear Motor (DPLM) that is less dependent on the control coil size as in some prior art linear motors, by using the linear magnetic attraction and repulsion for increase magnetic force, and by using multiple parallel coils to reduce the control coil's resistance. Like prior art DPLS, the permanent magnet section is composed of a toroidal permanent magnet within an inner and outer magnetic core, to produce dual magnetic poles. The coil section(s) is much identical to the permanent magnet section with the toroidal permanent magnet replaced with the control coil. In the preferred embodiment, the outward pole side of the coil section has the attractor used in prior art DPLS embodiments attached to the outward pole sides of the inner and outer magnetic core to encapsulate (on three sides) the control coil and the magnetic flux from the permanent magnet section and the magnetic flux created by the control coil when activated (carrying a current). Then by placing a coil section on one or both sides of the permanent magnet section, the section(s) can be placed in magnetic attraction or repulsion, when the control coil is activated.
Claims
1. A Dual Position Latching Solenoid (DPLS) having two coils separated from the permanent magnet to produce an increased magnetic force and allow greater motion distance, and with a moving coil section or moving permanent magnet section for various magnetic latching and linear motor applications, comprising: a permanent magnet section having a first pole side and second pole side comprising, an outer magnetic core having a pole on both said first pole side and said second pole side; an inner magnetic core having a pole on both said first pole side and said second pole side; and a toroidal or ring permanent magnet encased between said outer magnetic core and said inner magnetic core, poled from said outer magnetic core to said inner magnetic core, where the magnetic flux from said permanent magnet goes through said inner magnetic core in a first flux direction toward and out said first pole side and a second flux direction toward and out said second pole side, returning through said first pole side and said second pole side of said outer magnetic core back to said permanent magnet; a first coil section, having only one pole side, facing said first pole side of said permanent magnet section, comprising; a first control coil; and a first magnetic core with said one pole side, encasing said first control coil on three sides, forming: an inner pole, facing said inner magnetic core on said first pole side of said permanent magnet section, and an outer pole, facing said outer magnetic core on said first pole side of said permanent magnet section, to allow passage of the magnetic flux from said permanent magnet out of said inner magnetic core on said first pole side of said permanent magnet section to flow into said inner pole of said first magnetic core and around said first control coil and out said outer pole of said first magnetic core, to said outer magnetic core on said first pole side of said permanent magnet section and back to said permanent magnet; a second coil section, having only one pole side facing said second pole side of said permanent magnet section comprising; a second control coil; and a second magnetic core with said one pole side, encasing said second control coil on three sides, forming: an inner pole, facing said inner magnetic core on said second pole side of said permanent magnet section, and an outer pole, facing said outer magnetic core on said second pole side of said permanent magnet section, to allow passage of the magnetic flux from said permanent magnet out of said inner magnetic core on said second pole side of said permanent magnet section to flow into said inner pole of said second magnetic core and around said second control coil and out said outer pole of said second magnetic core, to said outer magnetic core on said second pole side of said permanent magnet section and back to said permanent magnet; a pusher through the center of said permanent magnet section, said first coil section, and said second coil section, either attached to: said first coil section and said second coil section, while free to move through said permanent magnetic section, to allow movement of said first coil section and said second coil section when said permanent magnetic section is fixed, or said permanent magnetic section, while free to move through said first coil section and said second coil section, to allow movement of said permanent magnetic section when said first coil section and said second coil section are fixed; and a circuit to send an impulse current to said first control coil and said second control coil in a first current direction and second current direction, wherein said first control coil and said second control coil are wound to cause an attraction between said first coil section and said permanent magnet section or between said second coil section and said permanent magnet section when said impulse current from said circuit is in said first current direction, or a repulsion between said first coil section and said permanent magnet section or between said second coil section and said permanent magnet section when said impulse current from said circuit is in said second current direction; wherein upon said circuit having sent said impulse current in said first current direction only to said first control coil, to produce a magnetic flux in said first magnet core of said first coil section, to cause the magnetic flux from said permanent magnet in said inner magnetic pole of said permanent magnet section going in said second flux direction toward and out said second pole side of said inner magnetic core, to be diverted toward said first pole side of said permanent magnet section, adding to the magnetic flux from said permanent magnet in said inner magnetic pole of said permanent magnet section going in said first flux direction toward and out said first pole side of said inner magnetic core, toward said first coil section, to increase the magnetic attraction force between said first coil section and said permanent magnet section, at the same time, the magnetic attraction force on said second coil section is reduced, with the force on said pusher mainly a function of the magnetic attraction force between said first coil section and said permanent magnet section; with the reverse true when said circuit sends said impulse current to only said second control coil in said first current direction; wherein upon said circuit having sent said impulse current in said second current direction only to said first control coil, to produce a magnetic flux in said first magnet core of said first coil section going toward said first pole of said permanent magnet section, to place the first coil section in magnetic repulsion with said permanent magnet section, at the same time, the magnetic attraction force on said second coil section is increased, with the force on said pusher mainly a function of the magnetic repulsion force between said first coil section and said permanent magnet section and the attraction force between said second coil section and said permanent magnet section; with the reverse true when said circuit sends said impulse current to only said second control coil in said second current direction; wherein upon said circuit having sent said impulse current to said first control coil in said first current direction and said second control coil in said second current direction, to produce a magnetic flux in: said first magnet core of said first coil section, to cause the magnetic flux from said permanent magnet in said inner magnetic core of said permanent magnet section going toward said second pole side of said permanent magnet section, to be diverted toward said first pole side of said permanent magnet section, adding to the magnetic flux from said permanent magnet in said inner magnetic pole of said permanent magnet section going in said first flux direction toward and out said first pole side of said inner magnetic core, toward said first coil section, to increase the magnetic attraction force between said first coil section and said permanent magnet section, and said second magnet core of said second coil section, to produce a magnetic flux in said second magnet core of said second coil section going toward said second pole of said permanent magnet section, to place the second coil section in magnetic repulsion with said permanent magnet section, whereby the force on said pusher is a function of the magnetic attraction force on said first coil section plus the magnetic repulsion force on said second coil section; with the reverse true when said circuit has sent said impulse current to said first control coil in said second current direction and said second control coil in said first current direction; to produce a DPLS for various magnetic latching and linear motor applications.
2. The DPLS of claim 1 used in a valve.
3. The DPLS of claim 1 used in a magnetic spring.
4. The DPLS of claim 1 wherein the first control coil and second control coil are composed of multiple coils in parallel to reduce the resistance of said first control coil and said second control coil.
5. The DPLS of claim 1, wherein the circuit is a BSPMAS.
6. The DPLS of claim 1, used as a Dual Poled Linear Motor (DPLM) for various linear motor applications, having: a first spring and second spring attached to the pusher to prevent magnetic latching, force balanced with the spring forces, between the first spring and the second spring, and with magnetic force, between the permanent magnet section and the first coil section and the second coil section, to maintain a separation between said permanent magnet section and said first coil section and second coil section; and where when the circuit sends high frequency impulse currents in the first current direction or the second current direction to said first coil section and said second coil section to cause: said first coil section and said second coil section to oscillate repeatedly, when said permanent magnet section is fixed, or said moving permanent magnet section to oscillate repeatedly, when said first coil section and said second coil section are fixed, to produce a Dual Poled Linear Motor (DPLM) for various linear motor applications.
7. The DPLS of claim 1, where a diode is placed across the first control coil and second control coil;
8. The DPLS of claim 1 used in a compressor with the pusher attached to at least one compressor piston.
9. The DPLS of claim 1 used in a pump with the pusher attached to at least one pump piston.
10. A Dual Position Latching Solenoid (DPLS) having one coil separated from the permanent magnet to produce an increased magnetic force and allow greater motion distance, and with a moving coil section or moving permanent magnet section for various magnetic latching and linear motor applications, comprising: a permanent magnet section having a first pole side and second pole side comprising, an outer magnetic core having a pole on both said first pole side and said second pole side; an inner magnetic core having a pole on both said first pole side and said second pole side; and a toroidal or ring permanent magnet encased between said outer magnetic core and said inner magnetic core, poled from said outer magnetic core to said inner magnetic core, where the magnetic flux from said permanent magnet goes through said inner magnetic core in a first flux direction toward and out said first pole side and a second flux direction toward and out said second pole side, returning through said first pole side and said second pole side of said outer magnetic core back to said permanent magnet; and a coil section, having only one pole side facing said first pole side of said permanent magnet section comprising; a control coil; and a magnetic core with said one pole side, encasing said first control coil on three sides, forming: an inner pole, facing said inner magnetic core on said first pole side of said permanent magnet section, and an outer pole, facing said outer magnetic core on said first pole side of said permanent magnet section, to allow passage of the magnetic flux from said permanent magnet out of said inner magnetic core on said first pole side of said permanent magnet section to flow into said inner pole of said first magnetic core and around said first control coil and out said outer pole of said first magnetic core, to said outer magnetic core on said first pole side of said permanent magnet section and back to said permanent magnet; a pusher through the center of said permanent magnet section and said coil section, either attached to: said coil section and free to move through said permanent magnetic section, to allow movement of said coil section when said permanent magnetic section is fixed, or said permanent magnetic section and free to move through said coil section, to allow movement of said permanent magnetic section when the coil section is fixed; and a circuit to send an impulse current to said control coil in a first current direction and second current direction, wherein said control coil is wound to cause an attraction between said coil section and said permanent magnet section when said impulse current from said circuit is in said first current direction, or a repulsion between said coil section and said permanent magnet section when said impulse current from said circuit is in said second current direction; wherein said coil section is on the first side of said permanent magnet section and upon said circuit having sent said impulse current in said first current direction to said control coil, to produce a magnetic flux in said magnet core of said coil section, to cause the magnetic flux from said permanent magnet in said inner magnetic pole of said permanent magnet section going in said second flux direction toward and out said second pole side of said inner magnetic core, to be diverted toward said first pole side of said permanent magnet section, adding to the magnetic flux from said permanent magnet in said inner magnetic pole of said permanent magnet section going in said first flux direction toward and out said first pole side of said inner magnetic core, toward said coil section, to increase the magnetic attraction force between said coil section and said permanent magnet section, where when said pusher is attached to: said coil section with the permanent magnet section fixed, where said coil section is allowed to move toward said permanent magnet section, or said permanent magnetic section with the coil section fixed, where said permanent magnetic section is allowed to move toward said coil section; to produce a DPLS, having one control coil, and a moving coil section or moving permanent magnet section, for various magnetic latching and linear motor applications.
11. The DPLS of claim 10 used in a valve.
12. The DPLS of claim 10 wherein the control coil is composed of multiple coils in parallel to reduce the resistance of said control coil.
13. The DPLS of claim 10, wherein the circuit is a BSPMAS.
14. The DPLS of claim 10, used as a Dual Poled Linear Motor (DPLM) for various linear motor applications, having: a first spring and second spring are attached to the pusher to prevent magnetic latching, force balanced with the spring forces, between the first spring and the second spring, and with magnetic force, between the coil section and the permanent magnet section, to maintain a separation between said coil section and said permanent magnet section; and where when, the circuit sends high frequency impulse currents in said first current direction or second current direction to the control coil to cause said coil section to oscillate repeatedly, when said permanent magnet section is fixed, or said permanent magnet section to oscillate repeatedly, when said coil section is fixed to produce a Dual Poled Linear Motor (DPLM) for various linear motor applications.
15. The DPLS of claim 10, where a diode is placed across the control coil to allow passage of the back emf current into said control coil;
16. The DPLS of claim 10 used in a compressor with the pusher attached to at least one compressor piston.
17. The DPLS of claim 10 used in a pump with the pusher attached to at least one pump piston.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] For a better understanding of the present invention, references are made to the accompanying drawings in which:
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
DETAILED DESCRIPTION OF THE DRAWINGS
[0033] Referring to the Drawings as Follows:
[0034]
[0035] the first coil section 10L and the second coil section 10R, while free to move through the permanent magnetic section 20, to allow movement of the first coil section 10L and the second coil section 10R when the permanent magnetic section 20 is fixed, or
[0036] the permanent magnetic section 20, while free to move through the first coil section 10L and the second coil section 10R, to allow movement of the permanent magnetic section 20 when the first coil section 10L and the second coil section 10R are fixed.
[0037] In
[0038] In
[0039] In
[0040] In
[0041] It is understood that the outer surface area and shape of the inner pole of the magnetic cores (12L and 12R) are, preferred to be, the same as the outer surface area and shape of the inner magnetic core 22 of the permanent magnet section 20, with respect to the first pole side and second pole side.
[0042] Further, it is understood that the outer surface area and shape of the outer pole of the magnetic cores (12L and 12R) are, preferred to be, the same as the outer surface area and shape of the outer magnetic core 21 of the permanent magnet section 20, with respect to the first pole side and second pole side.
[0043] The present invention in
[0044] to cause magnetic attraction between the first coil section 10L and the permanent magnet section 20 or between the second coil section 10R and the permanent magnet section 20 when the impulse current from the circuit is in the first current direction; or
[0045] to cause magnetic repulsion between the first coil section 10L and the permanent magnet section 20 or between the second coil section 10R and the permanent magnet section 20 when the impulse current from the circuit is in the second current direction.
[0046] It is understood that the present invention is an improved embodiment of the prior art DPLS, in previous patents by the present inventor, to provide increased magnetic force and increase movement distance, due to the control coils (13L and 13R) being separated from the permanent magnet section 20, which reduces leakage magnetic flux about the permanent magnet 23 that would have been present through the control coil(s) 13 in the prior DPLS by the present inventor.
[0047] Further, it is understood that the present invention allows the coil sections (10L and 10R) to increase in length to accommodate longer control coils (13L and 13R) having more amp turns to increase the magnetic flux in the magnetic cores (12L and 12R) without increasing the leakage magnetic flux about the permanent magnet 23, to produce a DPLS with increased magnetic attraction or repulsion force at larger separation distance between the coil sections (10L and 10R) and the permanent magnet section 20, which produces even more increased movement distance, which is another improvement over the prior DPLS by the present inventor.
[0048] Still further, it is understood that the circuit to operate the present invention is in U.S. Pat. No. 9,343,216, titled “Energy Efficient Bi-Stable Permanent Magnet Actuation System (BSPMAS),” May 17, 2016 by the present inventor, preferably the circuit of
[0049] There are three operation modes for the present invention in
[0050] 1. Operation Mode 1
[0051] Upon the circuit having sent an impulse current in the first current direction only to the first control coil 13L, to produce a magnetic flux in the first magnet core 12L of the first coil section 10L, to cause the magnetic flux from the permanent magnet 23 in the inner magnetic pole 22 of the permanent magnet section 20 going in the second flux direction toward and out the second pole side of the inner magnetic core 22, to be diverted toward the first pole side of the permanent magnet section 20, adding to the magnetic flux from the permanent magnet 20 in the inner magnetic pole 22 of the permanent magnet section 20 going in the first flux direction toward and out the first pole side of the inner magnetic core 22, toward the first coil section 10L, to increase the magnetic attraction force between the first coil section 10L and the permanent magnet section 20, at the same time, the magnetic attraction force on the second coil section 10R is reduced, with the force on the pusher mainly a function of the magnetic attraction force between the first coil section 10L and the permanent magnet section 20; with the reverse true when the circuit sends an impulse current to only the second control coil 13R in the first current direction.
[0052] 2. Operation Mode 2
[0053] Upon the circuit having sent an impulse current in the second current direction only to the first control coil 13L, to produce a magnetic flux in the first magnet core 12L of the first coil section 12L going toward the first pole of the permanent magnet section 20, to place the first coil section 12L in magnetic repulsion with the permanent magnet section 20, at the same time, the magnetic attraction force on the second coil section 12R is increased, with the force on the pusher mainly a function of the magnetic repulsion force between the first coil section 12L and the permanent magnet section 20 and the attraction force between the second coil section 12R and the permanent magnet section 20; with the reverse true when the circuit sends an impulse current to only the second control coil 13R in the second current direction;
[0054] 3. Operation Mode 3
[0055] Upon the circuit having sent an impulse current to the first control coil 13L in the first current direction and the second control coil 13R in the second current direction, to produce a magnetic flux in the first magnet core 12L of the first coil section 10L as described in Operation Mode 1, placing the first coil section 10L and the permanent magnet section 20 in magnetic attraction, and in the second magnet core 12R of the second coil section 10R, as described in Operation Mode 2, placing the second coil section 10R and the permanent magnet section 20 in magnetic repulsion, whereby the force on the pusher 30 is a function of the magnetic attraction force on the first coil section 10L plus the magnetic repulsion force on the second coil section 10R; with the reverse true when the circuit has sent an impulse current to the first control coil 13L in the second current direction and the second control coil 13L in the first current direction.
[0056] It is understood that the present invention in
1. Slide Valve
[0057]
[0058] In
[0059] It is understood that since the present invention of
2. Dual Acting Valve
[0060]
[0061] In
[0062] It is understood that since the present invention of
3. Magnetic Spring
[0063]
[0064] In
[0065] In
[0066] It is understood that since the present invention of
[0067] Further, it is understood that the increased movement distance and magnetic attraction force, in the present invention allows the present invention to be operated by high frequency impulse currents to the control coils (13L and 13R), thus allowing higher dynamic isolation.
4. Linear Motor
[0068] The increased movement distance and magnetic attraction force, allows the present invention to be used as a linear motor with high frequency impulse currents to the control coils (13L and 13R), referred to herein as a Dual Poled Linear Motor (DPLM).
[0069]
[0070] It is understood that the coil sections (10L and 10R) could be fixed to the housing blocks (50L and 50R) and the permanent magnet section 20 free to move, with the pusher 30 attached to the permanent magnet section 20 and free to move through the coil sections (10L and 10R).
[0071] In
[0072] Operation of the present invention as a DPLM in the dual piston compressor or pump in
[0073] It is understood that the output pressure of the compressor or pump of
[0074]
[0075] It is understood that one section (
[0076]
[0077] It is understood that the advantage of using the present invention of
[0078]
[0079] In
[0080] The DPLM in
[0081]
[0082] In
[0083] The DPLM in
[0084] It is understood that the DPLMs in
[0085] It is also understood that most compressors and all pumps will have an inlet port (not shown in