
Text extracted from the exhibit documents filed with the FCC. Open a document above to read the original.
ClareOne Door Window Sensor with Shock Installation Manual CLR-C1-DWSHK CLR-C1-DWSHK IM V3 05012020 Description The CLR-C1-DWSHK is a wireless window sensor designed for dual protection; open and close and to detect vibrations made by an intruder attempting to break a window. The sensor contains a piezo detection device that detects vibrations when mounted on a window frame. The detection circuit can be adjusted for sensitivity during installation to ensure maximum coverage. The device also has a built-in reed switch to monitor the open and close of the door or window. When activated, the sensor transmits a signal to the control panel. These are the signals the unit provides: supervisory, tamper and low battery (as needed). The sensor is powered by (2) replaceable 3-VDC, lithium coin-cell batteries. Installation Guidelines • Mounting the sensor on metal can affect the transmitting range performance. Therefore, test the sensor from the desired location using the installer sensor test, before permanently mounting it. • Mount the sensor within 100 ft. of the panel. • Mount the sensor on the frame of the door or window. • Mount to either wood or metallic surfaces. • After mounting the sensor, test the sensor using the procedure in the section “Testing the Sensor”. Mounting the Sensor Mount the sensor using the supplied mounting screws for permanent mounting installations or using the supplied double-sided tape is optional . Note: Sensor and magnet should not exceed 5/8”. Mounting Screws 1. Remove the sensor base from the sensor. 2. Place the sensor base in desired location and mount the base with the supplied screws. Attach the sensor to the base. 3. Mount the magnet into the desired location using the supplied screw and lock washer, making sure the alignment mark lines up with the sensor mark. Shock Test Mode • Test mode is entered automatically when the cover is removed. The LED activates on shock activation and goes out upon shock restoral. • LED is functional only in test mode. • Test mode is active as long as the cover is removed. Shock sensor sensitivity setting An LED test mode (see above) is included to aide in setting sensitivity to desired level 1. Mount sensor in intended location and tap mounting surface with desired level of activation impact 2. Adjust potentiometer until correct sensitivity is obtained The potentiometer adjusts shock sensitivity from minimum Low (CCW) to maximum Hi (CW). These setting are marked on the PCB. In maximum sensitivity mode, the least amount of shock is required to activate a shock alarm. If the potentiometer is set all the way Low (CCW) the shock portion of the device is turned off and only the internal reed switch is active Programming The following steps describe the general guidelines for programming the sensor into panel memory. Refer to the specific panel’s documentation for complete programming details. 1. The internal magnetic reed switch and shock zone use the same ID number 2. Enter panel learn-in/enrollment mode 3. Remove battery tabs 4. Trip sensor using magnet or enter ID # 5. Enter sensor information Note: Loop locations: Shock – Loop 1 Reed Switch – Loop 2 Tamper – Loop 4 6. For second zone trip sensor using magnet or enter ID # 7. Enter sensor information Note: Loop locations: Shock – Loop 1 Reed Switch – Loop 2 Tamper – Loop 4 8. Exit program mode Testing and adjusting the Sensor Take the sensor and magnet to the desired mounting location, making sure to line up the magnet alignment ClareOne Door Window Sensor with Shock Installation Manual CLR-C1-DWSHK CLR-C1-DWSHK IM V3 05012020 marks with each other. Trip the sensor by pulling the magnet away from the sensor. Monitor the system after tripping the sensor. Refer to the specific panel documentation for interpretation of the results to ensure desired signal strength is achieved. Battery Replacement Note: If a low battery alarm occurs, replace the battery within 7 days. • Low battery detect. LED flashes until battery is replaced. Device sends low battery signal to control panel. • The CLR-C1-DWSHK requires (2) 3-VDC, lithium coin- cell batteries (Varta or Panasonic, Model CR2032). Both batteries should be replaced at the same time. 1. Remove sensor cover by pressing on the latch and pulling the cover off 2. Do not remove the circuit board, slide the old batteries out as shown 3. Insert new batteries observing polarity 4. Replace sensor cover CAUTION: Battery may explode if mistreated. Do not recharge, disassemble or dispose of in fire. Specifications Model no. CLR-C1-DWSHK RF frequency 433.95 MHz Compatibility Clare Control Panels Battery type (2) 3-VDC, lithium coin-cell battery (Varta or Panasonic, Model CR2032) Operating temperature range 32 to 120°F (0 to 49°C) Storage temperature range -30 to 140°F (-34 to 60°C) Relative humidity 95% non-condensing Dimensions (L x W x D) 2.25 x 1.0 x 0.50 in. FCC / IC Statement This equipment has been tested and found to comply with the limits for a Class B digital device, pursuant to Part 15 of the FCC Rules. These limits are designed to provide reasonable protection against harmful interference in a residential installation. Per FCC 15.19 (a) (3) and (a) (4), This device complies with part 15 of the FCC Rules. Operation is subject to the following conditions: (1) this device may not cause harmful interference, and (2) this device must accept any interference received, including interference that may cause undesirable operation. Per FCC 15.21, The user manual or instruction manual for an intentional or unintentional radiator shall caution the user that changes or modifications not expressly approved by the party responsible for compliance could void the user's authority to operate the equipment. This equipment generates, uses and can radiate radio frequency energy and, if not installed and used in accordance with the instructions, may cause harmful interference to radio communications. However, there is no guarantee that interference will not occ…
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Cinch Systems, Inc. 12075 43 rd St NE Suite 300 St. Michael MN 55376 USA Application Cover Letter FCC ID: 2ABBZ-RF-SHK-433 Cinch Security Systems is applying for original certification to FCC Part 15 Subpart C §15.231 for FCC ID number 2ABBZ- RF-SHK-433 door window shock sensor. The wireless communication interface with a security panel is regarded as a proprietary security protocol. The following model numbers are associated with this application: RF-SHK-433-CLR CLR-C1-DWSHK The radio in all models are electrically identical. The differences in the models are the company model naming format. Cinch model Number Clare model number Remark RF-SHK-433-CLR CLR-C1-DWSHK Electrically equivalent devices Electrically all the units are identical. Company Officer: Vice President Telephone Number: 763-497-1059 Email: [email protected]
CSFXXX issue 1 Cinch Systems, Inc. 12075 43 rd St NE Suite 300 St Michael, MN 55376 USA Federal Communications Commission Authorization and Evaluation Division 7435 Oakland Mills Road Columbia, Maryland 21046 User Manual Declaration FCC ID: 2ABBZ-RF-SHK-433 Please be advised that at the time of application we do not currently have a version of the user manual for the product under the ‘Cinch’ brand. Please be advised that the manual for the Cinch brand will be identical to the user manual already provided for the ‘ClareOne’ brand from a regulatory perspective. Company Officer: Vice President Telephone Number: 763-497-1059 Email: [email protected]
Cinch Systems, Inc. 12075 43rd St NE Suite 300 St Michael MN 55376 USA Periodic Operation Attestation We, the equipment manufacturer and/or responsible party confirm that the equipment is not a radio control device or toy, and is not capable of generating continuous transmissions, voice, or video transmissions. Data shall be sent only along with a control signal. We attest that we have verified and documented that periodic transmissions at regular predetermined intervals do not exist, except where regulatory requirements allow polling or supervision transmissions, including data, to determine system integrity. Please see the detail in the operational description. Company Officer: Vice President Telephone Number: 763-497-1059 Email: [email protected]
Cinch Systems, Inc. 12075 43 rd St NE Suite 300 St Michael, MN 55376 USA Confidentiality Request FCC ID: 2ABBZ-RF-SHK-433 Pursuant to Sections 0.457(d) and 0.459 of the Commission’s Rules, Cinch Systems hereby requests permanent confidential treatment of information accompanying this application as outlined below: Common exhibits for which confidentiality is requested are: Schematics: Block Diagrams: Theory of Operation: Cinch Systems also hereby requests short-term confidential treatment of information accompanying this application as outlined below for a period of 180 days: Exhibits for which short-term confidentiality is commonly requested are: Internal Photos: External Photos: User Manual: Test Set-up Photographs: The above materials contain trade secrets and proprietary information not customarily released to the public. The public disclosure of these matters might be harmful to the Applicant and provide unjustified benefits to its competitors. The Applicant understands that pursuant to Rule 0.457(d)(1)(ii), disclosure of this Application and all accompanying materials will not be made before the date of the Grant for this Application. Company Officer: Vice President Telephone Number: 763-497-1059 Email: [email protected]
Model: RF-SHK-433-CLR Cinch Systems Inc. FCC ID: 2ABBZ-RF-SHK-433 Model: RF-SHK-433-CLR IC : 11817A- RFSHK433 Model: CLR-C1-DWSHK Clare Inc. FCC ID: 2ABBZ-RF-SHK-433 Model: CLR-C1-DWSHK IC : 11817A- RFSHK433
RF-SHK-433 Antenna info Overview: Antenna description: The antenna is a piece of wire and used in a monopole arrangement. Antenna is permanently attached to the unit. The antenna does not use reverse polarity connector. Antenna Drawing: Antenna design: Antenna specification Frequency band 433.95MHz Frequency (MHz) 430 431 433 434 436 Return loss (dB) < -18 Peak gain (dBi) 0.412 0.22 -0.93 1.67 3.08 Average gain (dBi) -1.34 -3.6 -2.95 -1.9 -1.97 Efficiency (%) 33.8 37.86 48.8 68.3 68.83
This report must not be used to claim product certification, approval, or endorsement by NVLAP, NIST, or any agency of the U.S. Government. This Report shall not be reproduced, except in full without written approval of the laboratory. CINCH Systems RF-SHK-433-CLR FCC 15.231:2020 Low Power Radio Report: CINC0052.3 Rev. 1, Issue Date: June 15, 2020 NVLAP LAB CODE: 200881-0 CERTIFICATE OF TEST 2018-09-14 Product compliance is the responsibility of the client; therefore, the tests and equipment modes of operation represented in this report were agreed upon by the client, prior to testing. The results of this test pertain only to the sample(s) tested. The specific description is noted in each of the individual sections of the test report supporting this certificate of test. This report reflects only those tests from the referenced standards shown in the certificate of test. It does not include inspection or verification of labels, identification, marking or user information. As indicated in the Statement of Work sent with the quotation, Element’s standard process is to always use the latest published version of the test methods even when earlier versions are cited in the test specification. Issuance of a purchase order was de facto acceptance of this approach. Otherwise, the client would have advised Element in writing of the specific version of the test methods they wanted applied to the subject testing. Last Date of Test: June 1, 2020 CINCH Systems EUT: RF-SHK-433-CLR Radio Equipment Testing Standards Specification Method FCC 15.231:2020 ANSI C63.10:2013 Results Method Clause Test Description Applied Results Comments 6.2 Powerline Conducted Emissions (Transmitter) No N/A Not required for a battery powered EUT. 6.5, 6.6 Field Strength of Fundamental Yes Pass 6.5, 6.6 Spurious Radiated Emissions Yes Pass 6.9.2 Occupied Bandwidth Yes Pass 7.5 Duty Cycle Yes N/A Deviations From Test Standards None Approved By: Eric Brandon, Department Manager Report No. CINC0052.3 Rev. 12/24 REVISION HISTORY 2018.07.17 Revision Number Description Date (yyyy-mm-dd) Page Number 01 The calculation is missing the 100 ms divisor and so incomplete/inaccurate. Also the DCCF listed as “-19.3 dB” is inaccurate and should be “-20.7 dB”. 2020-06-15 12, 13, 15, 16, 17, 21, 22, 23, and 24 Report No. CINC0052.3 Rev. 13/24 ACCREDITATIONS AND AUTHORIZATIONS 2019.03.08 United States FCC - Designated by the FCC as a Telecommunications Certification Body (TCB). Certification chambers, Open Area Test Sites, and conducted measurement facilities are listed with the FCC. A2LA - Accredited by A2LA to ISO / IEC 17065 as a product certifier. This allows Element to certify transmitters to FCC and IC specifications. NVLAP - Each laboratory is accredited by NVLAP to ISO 17025 Canada ISED - Recognized by Innovation, Science and Economic Development Canada as a Certification Body (CB) and as a CAB for the acceptance of test data. European Union European Commission – Within Element, we have a EU Notified Body validated for the EMCD and RED Directives. Australia/New Zealand ACMA - Recognized by ACMA as a CAB for the acceptance of test data. Korea MSIT / RRA - Recognized by KCC’s RRA as a CAB for the acceptance of test data. Japan VCCI - Associate Member of the VCCI. Conducted and radiated measurement facilities are registered. Taiwan BSMI – Recognized by BSMI as a CAB for the acceptance of test data. NCC - Recognized by NCC as a CAB for the acceptance of test data. Singapore IDA – Recognized by IDA as a CAB for the acceptance of test data. Israel MOC – Recognized by MOC as a CAB for the acceptance of test data. Hong Kong OFCA – Recognized by OFCA as a CAB for the acceptance of test data. Vietnam MIC – Recognized by MIC as a CAB for the acceptance of test data. SCOPE For details on the Scopes of our Accreditations, please visit: https://www.nwemc.com/emc-testing-accreditations Report No. CINC0052.3 Rev. 14/24 FACILITIES 2019.03.08 California Labs OC01-17 41 Tesla Irvine, CA 92618 (949) 861-8918 Minnesota Labs MN01-10 9349 W Broadway Ave. Brooklyn Park, MN 55445 (612)-638-5136 Oregon Labs EV01-12 6775 NE Evergreen Pkwy #400 Hillsboro, OR 97124 (503) 844-4066 Texas Labs TX01-09 3801 E Plano Pkwy Plano, TX 75074 (469) 304-5255 Washington Labs NC01-05 19201 120 th Ave NE Bothell, WA 98011 (425)984-6600 NVLAP NVLAP Lab Code: 200676-0 NVLAP Lab Code: 200881-0 NVLAP Lab Code: 200630-0 NVLAP Lab Code:201049-0 NVLAP Lab Code: 200629-0 Innovation, Science and Economic Development Canada 2834B-1, 2834B-3 2834E-1, 2834E-3 2834D-1 2834G-1 2834F-1 BSMI SL2-IN-E-1154R SL2-IN-E-1152R SL2-IN-E-1017 SL2-IN-E-1158R SL2-IN-E-1153R VCCI A-0029 A-0109 A-0108 A-0201 A-0110 Recognized Phase I CAB for ISED, ACMA, BSMI, IDA, KCC/RRA, MIC, MOC, NCC, OFCA US0158 US0175 US0017 US0191 US0157 Report No. CINC0052.3 Rev. 15/24 MEASUREMENT UNCERTAINTY TMU.2015.07.10 Measurement Uncertainty When a measurement is made, the result will be different from the true or theoretically correct value. The difference is the result of tolerances in the measurement system that cannot be completely eliminated. To the extent that technology allows us, it has been our aim to minimize this error. Measurement uncertainty is a statistical expression of measurement error qualified by a probability distribution. A measurement uncertainty estimation has been performed for each test per our internal quality document QM205.4.6. The estimation is used to compare the measured result with its "true" or theoretically correct value. The expanded measurement uncertainty (K=2) can be found included as part of the applicable test description page. Our measurement data meets or exceeds the measurement uncertainty requirements of the applicable specification; therefore, the test data can be compared directly to the specification limit to determine compliance. The calculations for estimating measurement uncertainty are based upon ETSI TR 100 028 (or CISPR 16-4-2 as applicable), and are available upon request. Th…
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photo PSA-ESCI 2020.04.03.0 photos PSA-ESCI 2020.04.03.0 RF-SHK-433 (1).JPG RF-SHK-433 (2).JPG SHK-433 (2) FIELD STRENGTH OF FUNDAMENTAL photo PSA-ESCI 2020.04.03.0 photos PSA-ESCI 2020.04.03.0 RF-SHK-433 (3).JPG RF-SHK-433 (4).JPG SHK-433 (4) FIELD STRENGTH OF FUNDAMENTAL photo PSA-ESCI 2020.04.03.0 photos PSA-ESCI 2020.04.03.0 RF-SHK-433 (1).JPG RF-SHK-433 (2).JPG SHK-433 (2) SPURIOUS RADIATED EMISSIONS photo PSA-ESCI 2020.04.03.0 photos PSA-ESCI 2020.04.03.0 RF-SHK-433 (3).JPG RF-SHK-433 (4).JPG SHK-433 (4) SPURIOUS RADIATED EMISSIONS photo PSA-ESCI 2020.04.03.0 photos PSA-ESCI 2020.04.03.0 SE ABOVE 1G 004.jpg SE ABOVE 1G 005.jpg ABOVE 1G 005 SPURIOUS RADIATED EMISSIONS photo PSA-ESCI 2020.04.03.0 photos PSA-ESCI 2020.04.03.0 SE ABOVE 1G 006.jpg SPURIOUS RADIATED EMISSIONS XMit 2020.03.25.0 RF-SHK-433 (1).JPG RF-SHK-433 (2).JPG LAB TESTS
| # | Rule Parts | Frequency Range | Power Output |
|---|---|---|---|
| 1 | 15.231 | 433.95 MHz - 433.95 MHz | - |
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