Micro electromagnetically actuated latched switches
10580604 ยท 2020-03-03
Assignee
Inventors
- Mark Bachman (Irvine, CA)
- Guann-Pyng Li (Irvine, CA)
- Yang Zhang (Irvine, CA, US)
- Minfeng Wang (Irvine, CA, US)
Cpc classification
H01H2001/0042
ELECTRICITY
H01H50/58
ELECTRICITY
B81B2201/016
PERFORMING OPERATIONS; TRANSPORTING
B81B3/0054
PERFORMING OPERATIONS; TRANSPORTING
H01H1/0036
ELECTRICITY
International classification
B81B3/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Micro-electromagnetically actuated latched miniature relay switches formed from laminate layers comprising a spring and magnet, electromagnetic coils, magnetic latching material, and transmission line with contacts. Preferably the miniature relay switches transmit up to about 50 W of DC or AC line power, and carry up to about 10 A of load current, with an overall volume of less than about 100 mm.sup.3. In addition to switching large power, the device preferably requires less than 3 V to actuate, and has a latching feature that retains the switch state after actuation without the need for external applied voltage or current.
Claims
1. A latching micro-electro-mechanical relay switch comprising: a first laminate layer comprising a moveable component comprising a spring and a magnet, a second laminate layer comprising a coil, the coil configured to actuate the moveable component, and a third laminate layer comprising a magnetic material, the magnetic material configured to hold the magnet of the moveable component, the magnetic material further configured to latch the magnet of the moveable component into an on state, wherein the first, second and third laminate layers are separate and distinct layers, and wherein the first laminate layer is positioned between the second laminate layer and the third laminate layer.
2. The switch of claim 1 wherein the first, second and third laminate layers are laminated together.
3. The switch of claim 1, wherein the coil comprises a multi-turn, six layer coil.
4. The switch of claim 1, wherein the coil comprises a six layer coil.
5. The switch of claim 1, wherein the moveable component comprises a polyimide spring.
6. The switch of claim 1, wherein the third laminate layer comprises a transmission/signal line.
7. The switch of claim 6, wherein the transmission/signal line comprises a plurality of contact pads.
8. The switch of claim 6, wherein the magnetic material is positioned below the plurality of contact pads to provide magnetic latching.
9. The switch of claim 1, wherein contact surfaces between the magnet and contact pads are coated with a conductive element coating.
10. A switch according to claim 9, applied as a standalone micro relay control function for one of windshield wipers, flashers, power steering, door locks, dashboard electronics, or defogger.
11. The switch of claim 1, further comprising: a second electromagnetic coil for providing electromagnetic energy to actuate the moveable component.
12. The switch of claim 11, wherein the magnet and spring are actuated to latch the magnet on both the top and bottom of the switch.
13. A standalone automotive micro relay control switch, comprising a switch according to claim 1.
14. An embedded automotive micro relay control switch, comprising a switch according to claim 1.
15. A multi-channel lighting control box, comprising at least one switch according to claim 1.
16. The multi-channel lighting control box according to claim 15, configured to control one or more lights.
17. The multi-channel lighting control box according to claim 15, configured to control a panel of lights.
18. The multi-channel lighting control box according to claim 15, configured to receive commands from a computing device via a network.
19. The switch of claim 1, wherein the coil provides electromagnetic energy to actuate the moveable component.
20. The switch of claim 1, wherein the magnet is driven to the latched on state when a pulsed current passes through the coil.
21. The switch of claim 1, wherein the magnet is driven to a delatched state when a pulsed current is reversed through the coil.
22. A single pole, single throw (SPST) electromagnetic micro relay comprising a plurality of laminate layers, a movable component having a spring and magnet in a first laminate layer of the plurality of laminate layers, a magnetic material in a third laminate layer of the plurality of laminate layers, and an electromagnetic actuation mechanism in a second laminate layer of the plurality of laminate layers, wherein the movable component is actuated by the mechanism to pull the movable component close enough to the magnetic material to latch the movable component in an on state, wherein the first, second and third laminate layers are separate and distinct layers, and wherein the first laminate layer is positioned between the second laminate layer and the third laminate layer.
23. The SPST of claim 22, wherein the electromagnetic actuation mechanism includes an electromagnetic coil in the second laminate layer of the plurality of laminate layers.
24. The SPST of claim 23, further comprising an iron core positioned within the electromagnetic coil.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) The accompanying drawings, which are included as part of the present specification, illustrate the presently preferred embodiment and, together with the general description given above and the detailed description of the preferred embodiment given below, serve to explain and teach the principles of the present invention.
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(13) It should be noted that the figures are not necessarily drawn to scale and that elements of similar structures or functions are generally represented by like reference numerals for illustrative purposes throughout the figures. It also should be noted that the figures are only intended to facilitate the description of the various embodiments described herein. The figures do not necessarily describe every aspect of the teachings disclosed herein and do not limit the scope of the claims.
DESCRIPTION
(14) The embodiments provided herein are directed to the micro mechanical relay switches and more particularly, to electromagnetically actuated latched miniature relay switches. Preferably the miniature relay switches transmit up to about 50 W of DC or AC line power, and carry up to about 10 A of load current, with an overall volume of less than about 100 mm.sup.3. In addition to switching large power, the device preferably requires less than 3 V to actuate, and has a latching feature that retains the switch state after actuation without the need for external applied voltage or current. The embodiments also relate to methods of manufacturing such relay devices directly within or on any of the following: lead frames, substrates, microelectronic packages, printed circuit boards, flex circuits, and rigid-flex materials.
(15) The embodiments refer to several techniques already disclosed in the following applications, which are incorporated by reference: U.S. application Ser. No. 12/112,925: Methods of manufacturing microdevices in laminates, lead frames, packages, and printed circuit boards; U.S. application Ser. No. 11/956,756: Acoustic substrate; U.S. application Ser. No. 11/849,914: High-Isolation Tunable MEMS Capacitive Switch; U.S. application Ser. No. 10/751,131: MEMS Fabrication on a Laminated Substrate.
(16) Since all relays will be eventually mounted on a substrate, such as a printed circuit board, for system integration, it is preferable to design and build them directly within a printed circuit board. The illustrative embodiments use printed circuit boards and laminates to build MEMS relay devices, which are ideally suited to the needs of high power applications, since they allow the creation of rugged, highly conductive contacts, and allow relatively easy integration of alternative technologies such as magnetic components for electro-magnetic actuation. These small sized devices employ an electromagnetic actuation component that directs electric current through another contact in the on state, or provides an open circuit in the off state. The device requires low voltage to actuate, and requires zero power to maintain either the on or off state (latching). The finished devices are automatically packaged within a printed circuit board, whether singulated or panelized.
(17) The embodiments of this disclosure introduce a micro electromechanical relay fabricated directly within printed circuit boards for moderate to high power applications. These devices simultaneously possess features that are missing in other solutions, such as high power handling, embeddable small form factor, low insertion loss, high isolation, low voltage actuation and zero-power latching. In a detailed comparison against existing relay devices (see Table 1 below), the embodiments described herein have an advantage on most features as standalone devices. Collectively, embedded arrays and networks of these devices would show further benefits in larger scaled applications.
(18) TABLE-US-00001 TABLE 1 Comparison Matrix Of The Present Disclosure Versus Existing Solutions Macro-machined Solid State Present Relays MEMS Switches relays embodiment Typical load 20 A 1 A 20 A 20 A current Typical switching 120 V 10 V 120 V 120 V current Contact resistance 3 mOhm 1 Ohm N/A 0.2 Ohm Leakage current 0 0 7 mA 0 Form factor 20 20 10 0.5 0.5 0.5 50 50 10 5 5 4 Switching speed 100 ms 25 us 0.1-1 ms 100 ms Control 12 V/0.1 A 50 V 3 V/3 mA 3 V/1 A voltage/current Latching N N N N
(19) Devices in accordance with the embodiments described herein are fundamentally different from existing products in both design and fabrication technology. For instance, micro devices in accordance with the embodiments described herein employ an electromagnetic actuation mechanism that drives a permanent magnet with highly conductive alloy to reach different states of the relay. The magnet latches to paramagnetic materials at each state and no power is needed to maintain the state once established. For example, in a single throw single pole relay, the conductive coating directs electric current through two adjacent contacts in the on state, or provides an open circuit in the off state.
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(22) In one preferred embodiment, the preferred elements of the device are 1) two multi-turn, six layer coils 203 produced in a 12-layer laminate to provide an electromagnetic actuation force; 2) a polyimide spring 205 which holds a 1 mm0.25 mm gold-plated, neodymium permanent magnet 206 with a polished surface; 3) a transmission/signal line 209 with nickel-gold contact pads 207; and 4) nickel plated regions 201 on the top and under the contact pads to provide magnetic latching. Other elements include structural layers to hold elements and provide open space for the armature to move, and electrical vias.
(23) During normal OFF operation, the permanent magnet remains latched to the top of the device, held in place by magnetic attraction to the top nickel plate. During actuation to ON state, a low voltage, high current pulse is passed through the coils producing an electromagnetic force 3 mN on the magnet and moving it towards the bottom plate, which contains a transmission/signal line that is designed with an open gap. When sufficiently close, the nickel plate on the bottom attracts the magnet causing it to. After this, the coil is completely de-energized. The polished gold coated magnet makes electrical contact with two polished gold contact pads on the transmission/signal line and places the switch in the ON position. To actuate the device into the OFF state, a reverse current pulse is sent through the coils, causing the magnet to move back up and latch to the top plate.
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(33) While the invention is susceptible to various modifications, and alternative forms, specific examples thereof have been shown in the drawings and are herein described in detail. It should be understood, however, that the invention is not to be limited to the particular forms or methods disclosed, but to the contrary, the invention is to cover all modifications, equivalents and alternatives falling within the spirit and scope of the appended claims.