IP Library › Granted Patent US 9,905,099
Granted Patent B2
US 9,905,099 · App. 15/329,233 · Granted Feb 27, 2018

Magnetic field sensor for use in a security alarm system

Inventors: Julian Paul Carlson (Surrey, CA); Dean David Schebel (Port Coquitlam, CA)
Assignee: 1010210 B.C. Ltd.
G08B13/24G01V3/081G08B3/10G08B5/36G08B6/00
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Quick Facts
Patent No.
US 9,905,099
App. No.
15/329,233
Granted
Feb 27, 2018
Kind
B2
Abstract

A proximity sensor comprises a magnet which generates a magnetic field and a magnetic field sensor. The magnetic field sensor includes a radio and an antenna which can transmit an output signal on a plurality of output frequencies. A microprocessor is programmed with a plurality of data protocols. Each of the output frequencies operates on at least one of the data protocols. There is a dip switch which is actuated to provide a code to the microprocessor. A data protocol is implemented by the microprocessor based on the code. There is a MEMS oscillator programmed to a discrete frequency based on the data protocol implemented by the microprocessor. The MEMS oscillator provides the discrete frequency to the radio. The radio is provided with single phase-locked loop which generates the output signal based on the discrete frequency. The single phase-locked loop may be a ×32 multiplier.

Claims (23)

1. A magnetic proximity sensor including a magnet which generates a magnetic field and a magnetic field sensor, the magnetic field sensor comprising:

a radio and an antenna which transmit an output signal on a plurality of output frequencies;

a microprocessor programmed with a plurality of data protocols, each of the output frequencies operating on at least one of the data protocols;

a dip switch which is actuated to provide a code to the microprocessor, and one of the data protocols being implemented by the microprocessor based on the code; and

a MEMS oscillator programmed to a discrete frequency based on the said one of the data protocols implemented by the microprocessor, wherein the MEMS oscillator provides the discrete frequency to the radio and the radio is provided with single phase-locked loop which generates the output signal based on the discrete frequency; and

an indicator which turns on when a magnetic field generated by the magnet is sensed and turns off when a magnetic field generated by the magnet is not sensed, and wherein the microprocessor renders the indicator inoperable a predetermined period of time after the magnetic field sensor is powered up.

2. The magnetic field sensor as claimed in claim 1 further including a shunt at each terminal of the antenna.

3. The magnetic field sensor as claimed in claim 1 further including a circuit board and a housing with an opening:

wherein the dip switch and the indicator are mounted on opposite sides of the circuit board; and

wherein the circuit board is disposed in the housing with the dip switch being accessible though the opening.

4. The magnetic field sensor as claimed in claim 1 wherein the indicator is an auditory indicator.

5. The magnetic field sensor as claimed in claim 1 wherein the indicator is a vibratory indicator.

6. The magnetic field sensor as claimed in claim 1 wherein the indicator is a visual indicator.

7. The magnetic field sensor as claimed in claim 6 wherein the indicator comprises a light emitting diode.

8. The magnetic field sensor as claimed in claim 1 further including a coin cell battery as a power source.

9. The magnetic field sensor as claimed in claim 8 further including a supercapacitor connected in series with the coin cell battery.

10. The magnetic field sensor as claimed in claim 1 further including a tamper switch.

11. A security alarm system having a proximity sensor, the proximity sensor including a magnet which generates a magnetic field and a magnetic field sensor, the magnetic field sensor comprising:

a radio and an antenna which transmit an output signal on a plurality of output frequencies;

a microprocessor programmed with a plurality of data protocols, each of the output frequencies operating on at least one of the data protocols;

a dip switch which is actuated to provide a code to the microprocessor, and one of the data protocols being implemented by the microprocessor based on the code; and

a MEMS oscillator programmed to a discrete frequency based on the said one of the data protocols implemented by the microprocessor, wherein the MEMS oscillator provides the discrete frequency to the radio and the radio is provided with single phase-locked loop which generates the output signal based on the discrete frequency; and

an indicator which turns on when a magnetic field generated by the magnet is sensed and turns off when a magnetic field generated by the magnet is not sensed, and wherein the microprocessor renders the indicator inoperable a predetermined period of time after the magnetic field sensor is powered up.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 1, 2020
From: SCHEBEL, DEAN DAVID
To: 1010210 B.C. LTD.
Reel/Frame 052804/0024 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 1, 2020
From: CARLSON, JULIAN PAUL
To: 1010210 B.C. LTD.
Reel/Frame 052804/0050 →
Continuity (3)
Continuation 14341710 · Jul 25, 2014
Provisional Application 62140439 · Mar 30, 2015
Related Publication 20170228992A1 · Aug 10, 2017