STAINLESS STEEL LED POWER SWITCH
20230313963 · 2023-10-05
Inventors
Cpc classification
F21S41/645
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V31/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2107/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02B20/30
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21S41/64
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V31/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An encapsulated LED switch that incorporates a MOSFET power drivers, high current transistors, or other suitable power drivers in a PCB that attaches to the LED switch such that a low power LED switch controls the output of a high-power driver. The selected power driver PCB can be adapted to different load requirements by making simple changes. The PCB’s can be interchanged to provide for a predetermined output power required for a particular application. In addition, the wire gauge size of the wires attached to the MOSFET power driver PCB can also be varied to match intended load requirements. For applications in which the LED switch is used in hostile environments, such as marine applications, the LED switch and its associated power driver PCB are encapsulated to protect the circuitry from environmental factors such as high humidity, salt water, etc.
Claims
1. A switch assembly comprising: a light-emitting diode, LED, switch, the LED switch being selectable between an on state and an off state; a printed circuit board, PCB, driver, the PCB driver being in electrical communication with the LED switch; the PCB driver being configured to drive at least one output based on the LED switch being in one of the on state and the off state; and the LED switch being configured for a first amperage load, the PCB driver being configured for a second amperage load, the first amperage load being greater than the second amperage load when the LED switch is in the on state.
2. The switch assembly of claim 1, wherein the output is in electrical communication with a circuit, the circuit comprising a marine pump, a horn, an anchor light, an alarm, a navigation light, or a sensor, or any combination thereof.
3. The switch assembly of claim 2, further comprising: a PCB board, at least one of the LED switch and PCB driver being attached to the PCB board; and the PCB board comprising at least one of a water pressure sensor, a current monitoring sensor, an alarm module, or any combination thereof.
4. The switch assembly of claim 2, wherein the sensor is a water pressure sensor, air pressure sensor, fuel pressure sensor, oil pressure sensor, or vacuum pressure sensor, or any combination thereof.
5. The switch assembly of claim 1, wherein the PCB driver is a Metal-Oxide-Semiconductor Field-Effect Transistor, MOSFET, driver.
6. The switch assembly of claim 1, further comprising a resettable thermal breaker in electrical communication with the LED switch.
7. The switch assembly of claim 1, further comprising a programmable microcontroller in electrical communication with the PCB driver, the microcontroller being configured to control the at least one output.
8. The switch assembly of claim 7, wherein the microcontroller is configured to deactivate the at least one output based on expiration of a pre-determined timer.
9. The switch assembly of claim 7, wherein the microcontroller is resettable.
10. The switch assembly of claim 9, wherein the microcontroller is configured to detect an overvoltage condition of a circuit, the circuit being in electrical communication with the at least one output, and to cause deactivation of the output based on detection of the overvoltage condition of the circuit.
11. The switch assembly of claim 7, wherein the microcontroller is configured to: monitor currents on the at least one output; and deactivate the at least one output upon a predetermined condition associated with the currents on the at least one output.
12. The switch assembly of claim 1, further comprising: a PCB board, at least one of the LED switch and PCB driver being attached to the PCB board; and the PCB board comprising at least one of a water pressure sensor, a current monitoring sensor, an alarm module, or any combination thereof.
13. A switch assembly comprising: a light-emitting diode, LED, switch, the LED switch being selectable between an on state and an off state; a printed circuit board, PCB, driver, the PCB driver being in electrical communication with the LED switch; the PCB driver being configured to drive at least one output based on the LED switch being in one of the on state and the off state; the LED switch being configured for a first amperage load, the PCB driver being configured for a second amperage load, the first amperage load being greater than the second amperage load when the LED switch is in the on state; a programmable microcontroller in electrical communication with the PCB driver, the microcontroller being configured to control the at least one output; and the output being in electrical communication with a circuit, the circuit comprising a marine pump, a horn, an anchor light, an alarm, a navigation light, or a sensor, or any combination thereof.
14. The switch assembly of claim 13, further comprising a resettable thermal breaker in electrical communication with the LED switch.
15. The switch assembly of claim 13, wherein the microcontroller is resettable.
16. The switch assembly of claim 13, further comprising: a PCB board, at least one of the LED switch and PCB driver being attached to the PCB board; and the PCB board comprising at least one of a water pressure sensor, a current monitoring sensor, an alarm module, or any combination thereof.
17. The switch assembly of claim 13, wherein the sensor is a water pressure sensor, air pressure sensor, fuel pressure sensor, oil pressure sensor, or vacuum pressure sensor, or any combination thereof.
18. A switch assembly comprising: a light-emitting diode, LED, switch, the LED switch being selectable between an on state and an off state; a printed circuit board, PCB, driver, the PCB driver being in electrical communication with the LED switch; the PCB driver being configured to drive at least one output based on the LED switch being in one of the on state and the off state; and the LED switch being configured for a first amperage load, the PCB driver being configured for a second amperage load, the first amperage load being greater than the second amperage load when the LED switch is in the on state; the at least one output being in electrical communication with a circuit, the circuit comprising a marine pump, a horn, an anchor light, an alarm, a navigation light, or a sensor, or any combination thereof; the sensor including a water pressure sensor, air pressure sensor, fuel pressure sensor, oil pressure sensor, or vacuum pressure sensor, or any combination thereof a resettable thermal breaker in electrical communication with the LED switch; and a programmable microcontroller in electrical communication with the PCB driver, the microcontroller being configured to control the output, and the microcontroller being resettable.
19. The switch assembly of claim 18, wherein: the microcontroller is further configured to: deactivate the at least one output based on expiration of a pre-determined timer; monitor currents on the at least one output and deactivate the at least one output upon a predetermined condition associated with the currents on the at least one output; or detect an overvoltage condition of the circuit, and cause deactivation of the output based on detection of the overvoltage condition of the circuit; or any combination thereof.
20. The switch assembly of claim 19, further comprising: a PCB board, at least one of the LED switch and PCB driver being attached to the PCB board; and the PCB board comprising at least one of a water pressure sensor, a current monitoring sensor, an alarm module, or any combination thereof.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] For a fuller understanding of the nature of the present invention, reference should be had to the following detailed description taken in connection with the accompanying drawings in which:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0017] The invention provides a sealed high-power switch that is encapsulated to protect the switch from environmental factors. For ease of discussion, the invention will be discussed in terms of use with marine equipment. However, those skilled in the art will recognize that the invention provides the same benefits to a wide range of other applications in many fields, such as aviation, automotive, computers, etc.
[0018] In
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[0022] The following
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[0024] Those skilled in the art will recognize that any color led can be selected based on design preferences.
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[0028] An alternative embodiment uses a microcontroller on the PCB to provide a timer function that automatically turns off the navigation lights in the event the boat owner forgets to do so.
[0029]
[0030] As can be seen, the invention provides a low power switch that controls a high power MOSFET driver to provide power to a variety of devices, while protecting the circuitry from harsh environments, such as in marine applications. Further, the switch disclosed herein can be designed to use one of many PCBs that are capable of forming any number of functions.
[0031] Because the switches disclosed herein may be designed with microprocessors for micro controllers, they would in effect become smart switches that include one or more of the following capabilities: [0032] 1. Programming capabilities (e.g., On/Off, Momentary, multimode etc.). [0033] 2. Communications capability (e.g. NEMA2000, CAN, RS232, USB, etc.). [0034] 3. Current monitoring, including shutdown. [0035] 4. Overvoltage and undervoltage monitoring. [0036] 5. Multicolor LED switch controls. [0037] 6. Visual and audible alarm functions. [0038] 7. Sensor applications, such as water pressure, air pressure, fuel pressure, oil pressure, vacuum pressure, etc. [0039] 8. Timer and counter functions with indicators. [0040] 9. Data acquisition. [0041] 10. Adaptable to switches of different types and sizes. [0042] 11. Ignition proof.
[0043] As can be seen from the foregoing discussion, the invention provides a number of advantages. It is inexpensive to manufacture, it is compact and lightweight, it provides effective protection of electronic circuitry from the outside environment, and can be use in a wide variety of environments and technical and commercial areas.
[0044] While the invention has been described with respect to a preferred embodiment thereof, it will be understood by those skilled in the art that various changes in detail may be made therein without departing from the spirit, scope, and teaching of the invention. For example, the material used to construct the switch may be anything suitable for its purpose, the size and shape of the encapsulated power switch assembly can vary, the type of circuitry can vary, etc. Accordingly, the invention herein disclosed is to be limited only as specified in the following claims.
[0045] Now that the invention has been described,