
Text extracted from the exhibit documents filed with the FCC. Open a document above to read the original.
D-304286 SD-304 PG2 Installation Instructions 1 SD SDSD SD- -- -304 PG2 304 PG2304 PG2 304 PG2 PowerG, Wireless Shock and Contact detector with Wired Input Installation Instructions 1. INTRODUCTION 1. INTRODUCTION1. INTRODUCTION 1. INTRODUCTION The SD-304 PG2 is a wireless PowerG innovative shock detector with optional magnetic contact and auxiliary input interfacing with PowerMaster-10 and PowerMaster-30 control panels (version 16 and higher). The SD- 304 PG2 fits windows, doors, walls or roofs and is ideal for residential or commercial installations. It detects and analyzes gross attacks or a series of low level shocks (up to 10 low level shocks within 30 seconds) and provides early warning of any attempt of intrusion before a burglar actually breaks-in. The detector incorporates: • A shock / vibration piezoelectric sensor. • Optional reed switch with anti-masking sensor to prevent attempts of magnetic masking of the reed switch. • Optional auxiliary input for connecting other devices Installer added-value features: • Digital display enables fast and easy shock level adjustment • Full remote configuration from PowerMaster control panel or Monitoring Station saves the need to physically access the shock detector for configuration • Remote view of: Low Battery, front and back Tamper, Supervision • An LED lights whenever alarm or tamper events are reported (the LED does not light while a supervision message is being transmitted). A. Transmission LED B. Magnet Figure 1: External View 2 22 2. INSTALLATION . INSTALLATION. INSTALLATION . INSTALLATION 2.1 Mounting A. Auxiliary input terminals B. Back tamper switch (behind P.C. board) C. Battery clips D. Break-away segment (for back tamper) E. Digital display F. Front tamper switch G. Enroll button H. LEDs indication I. Reed switch J. Up and down buttons Figure 2. Base with P.C. Board Removed Refer to the Shock Detection Radius, in the Specifications section, according to the surface material used. Install the device in a location where a strong shock impact is expected. The unit should be mounted on a flat surface and firmly fixed using both mounting screws. For magnetic contact detection, it is highly recommended to attach the detector to the door/window on the fixed frame and the magnet to the movable part (door or window). Make sure that the magnet is located not more than 6 mm (0.25 in.) from the detector’s marked side. Note: Once the cover is removed, a tamper message is transmitted to the control panel. Subsequent removal of the battery prevents transmission of "TAMPER RESTORE", leaving the detector in permanent alert. To avoid this, press the tamper switch while you remove the battery. Caution! Risk of explosion if battery is replaced by an incorrect type. Dispose of used battery according to manufacturer's instructions. Attention! The unit has a back tamper switch (optional) under the PCB. As long as the PCB is seated firmly within the base, the switch lever will be pressed against a special break-away base segment that is loosely connected to the base (Figure 2). Be sure to fasten the break-away segment to the wall. If the detector unit is forcibly removed from the wall, this segment will break away from the base, causing the tamper switch to open. 2 D-304286 SD-304 PG2 Installation Instructions Figure 3. Mounting 1. Insert a flat-edged screwdriver into the slot and push upward to remove cover. 2. Remove screw. 3. Separate base from cover. 4. Secure the base to the mounting surface using the two screws. CAUTION! Do not use double-sided tape, as this will tend to insulate the detector from vibrations. 5. Insert the battery while observing polarity. 6. Mount the magnet near its location mark with 2 screws. A. Fixed frame B. Moving part Note: 868 MHz device is illustrated in the example. The same mounting procedure should be performed for 433 MHz and 915 MHz devices. * This additional screw is used for back tamper only. 2.2 Auxiliary Input Wiring (Fig. 4) A. Connect the auxiliary sensor contacts across the SD-304 PG2 auxiliary input terminals. Note: Maximal guaranteed cable length is 10m. B. If the auxiliary input of the SD-304 PG2 is defined as a Normally Closed (N.C.) type, series connected N.C. sensor contacts must be used exclusively. An alarm message is transmitted once the loop is opened. C. If the auxiliary input of the SD-304 PG2 is defined as a Normally Open (N.O.) type, parallel connected N.O. sensor contacts must be used exclusively. An alarm message is transmitted once the loop is closed. D. For End of Line (EOL) supervision: Normally Closed (N.C.) or Normally Open (N.O.) sensor contacts can be used, as shown in Figure 4. A 2.2kΩ E.O.L. resistor must be wired at the far end of the zone loop. An alarm message is transmitted once the loop is opened or short circuited. E. For Double End of Line (DEOL) supervision: Two Normally Closed (N.C.) sensor contacts can be used, as shown in Figure 4. Two 2.2kΩ E.O.L. resistors must be wired at the far end of the zone loop which is opened or short circuited. Events messages are transmitted according to ALM/TAMP contacts status. 2.3 Enrollment Figure 4. AUX Input Wiring Examples Refer to the PowerMaster panel's Installer Guide and follow the procedure under the "02:ZONES/DEVICES" option of the Installer Menu. A general description of the procedure is provided in the following flow chart. Step 1 Step 2 Step 3 Step 4 Enter the Installer menu and select “02:ZONES/DEVICES” Select "ADD NEW DEVICE" See Note 1 Enroll the detector: press the enroll button and then release it as soon as the yellow LED lights, or, enter the device ID (on the back of device) Select the desired Detector Number for the new device Step 5 Step 6 Step 7 Step 8 Configure Location and Zone Type Parameters Enter PARTITIONS. See Note 2 Assign partitions by pressing the , and buttons Select "Device Settings" and see below to configure the (AUX) button. means scroll and select Z02:DEV SETTINGS Z02:P1 P2 P3 …
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Rev 11/20/07 To: Timco Engineering, Inc. 10/January 2013 To Whom It May Concern We the undersigned, hereby authorize Mr. Michael Nikishin of Hermon Laboratories to act on behalf of Visonic Ltd. in all manners relating to application for certification of FCC ID:WP3SD304CPG2. Any and all acts carried out by Hermon Laboratories, on our behalf shall have the same legal authority as acts of our own. This authorization is valid until further written notice from Visonic Ltd. Sincerely, Arik Elshtein International Standards Manager
Rev 11/20/07 Federal Communications Commission Authorization and Evaluation Division Confidentiality Request regarding application for certification of FCC ID:WP3SD304CPG2. Pursuant to Sections 0.457 and 0.459 of the Commission’s Rules, we hereby request confidential treatment of information accompanying this application as outlined below: Exhibit Type File Name Block diagram SD-304C_BlkDia Schematic diagram SD-304C_Schem Operational description SD-304C_OpDes The above materials contain trade secrets and proprietary information not customarily released to the public. The public disclosure of these materials may be harmful to the applicant and provide unjustified benefits to its competitors. The applicant understands that pursuant to Section 0.457 of the Rules, disclosure of this application and all accompanying documentation will not be made before the date of the Grant for this application. Sincerely, Arik Elshtein
Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 1 of 7 EXTERNAL PHOTOGRAPHS This document contains 6 photographs Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 2 of 7 Photograph No.1 Shock detector SD-304C PG2 front view Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 3 of 7 Photograph No.2 Shock detector SD-304C PG2 rear side view Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 4 of 7 Photograph No.3 Shock detector SD-304C PG2 right side view Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 5 of 7 Photograph No.4 Shock detector SD-304C PG2 left side view Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 6 of 7 Photograph No.5 Shock detector SD-304C PG2 top view Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 7 of 7 Photograph No.6 Shock detector SD-304C PG2 bottom view
Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 1 of 1 Label Label location Label with FCC ID:WP3SD304CPG2 and IC:1467C-SD304CPG2 is located at the rear side panel of the shock detector. The statement according to FCC part 15 §15.19(a)(3) is placed in User’s Guide, page 4 and page 5 (Application exhibit SD-304C_UserMan). FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2
Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 1 of 9 INTERNAL PHOTOGRAPHS This document contains 8 photographs Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 2 of 9 Photograph No.1 Shock detector SD-304C PG2 internal view Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 3 of 9 Photograph No.2 Shock detector SD-304C PG2 main PCB with RF card front view Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 4 of 9 Photograph No.3 Shock detector SD-304C PG2 main PCB with RF card rear side view Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 5 of 9 Photograph No.4 Shock detector RF card with antenna close view Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 6 of 9 Photograph No.5 Shock detector SD-304C PG2 main PCB front view Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 7 of 9 Photograph No.6 Shock detector SD-304C PG2 main PCB rear side view Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 8 of 9 Photograph No.7 Shock detector RF card front view Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 9 of 9 Photograph No.8 Shock detector RF card rear side view
Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Exposure limit according to §15.247(i) and RSS-102 The device is classified as mobile. Limit for power density for general population/uncontrolled exposure is f/1500 mW/cm 2 for 300 – 1500 MHz frequency range: P = 912.75/1500 = 0.61 mW/cm 2 The power density P (mW/cm 2 ) = P T / 4 r 2 P T is the transmitted power, which is equal to the peak transmitter output power 27.09 dBm plus maximum antenna gain -5 dBi, the maximum equivalent isotropically radiated power EIRP is P T = 27.09 dBm -5 dBi = 22.09 dBm = 162 mW. The power density at 20 cm (minimum safe distance, required for mobile devices), calculated as follows: 162 mW / 4 (20 cm) 2 = 0.032 mW/cm 2 << 0.61 mW/cm 2 General public cannot be exposed to dangerous RF level.
Hermon Laboratories Ltd. Harakevet Industrial Zone, Binyamina 30500, Israel Tel. +972-4-6288001 Fax. +972-4-6288277 E-mail: [email protected] Page 1 of 74 Report ID: VISRAD_FCC.23888.docx Date of Issue: 26-Dec-12 ELECTRICAL TESTING 0839.01 TEST REPORT ACCORDING TO: FCC 47CFR part 15 subpart C § 15.247 (FHSS) and subpart B, RSS-210 issue 8 Annex 8, ICES-003 Issue 5:2012 FOR: Visonic Ltd. PowerG Wireless Shock Detector Model: SD-304C PG2 FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 This report is in conformity with ISO/ IEC 17025. The "A2LA Accredited" symbol endorsement applies only to the tests and calibrations that are listed in the scope of Hermon Laboratories accreditation. The test results relate only to the items tested. This test report shall not be reproduced in any form except in full with the written approval of Hermon Laboratories Ltd. Report ID: VISRAD_FCC.23888.docx Date of Issue: 26-Dec-12 Page 2 of 74 Table of contents 1 Applicant information ..................................................................................................................................................... 3 2 Equipment under test attributes .................................................................................................................................... 3 3 Manufacturer information .............................................................................................................................................. 3 4 Test details .................................................................................................................................................................... 3 5 Tests summary .............................................................................................................................................................. 4 6 EUT description ............................................................................................................................................................. 5 6.1 General information ....................................................................................................................................................... 5 6.2 Test configuration .......................................................................................................................................................... 5 6.3 Changes made in the EUT ............................................................................................................................................ 5 6.4 Transmitter characteristics ............................................................................................................................................ 6 7 Transmitter tests according to 47CFR part 15 subpart C and RSS-210 Annex 8 requirements .................................... 7 7.1 20 dB bandwidth ........................................................................................................................................................... 7 7.2 Carrier frequency separation ....................................................................................................................................... 11 7.3 Number of hopping frequencies .................................................................................................................................. 13 7.4 Average time of occupancy ......................................................................................................................................... 17 7.5 Peak output power ...................................................................................................................................................... 20 7.6 Band edge radiated emissions .................................................................................................................................... 25 7.7 Field strength of spurious emissions ........................................................................................................................... 29 7.8 Antenna requirements ................................................................................................................................................. 58 8 Unintentional emissions .............................................................................................................................................. 59 8.1 Radiated emission measurements .............................................................................................................................. 59 9 APPENDIX A Test equipment and ancillaries used for tests ....................................................................................... 64 10 APPENDIX B Measurement uncertainties ................................................................................................................... 65 11 APPENDIX C Test laboratory description ................................................................................................................... 66 12 APPENDIX D Specification references ....................................................................................................................... 66 13 APPENDIX E Test equipment correction factors ......................................................................................................... 67 14 APPENDIX F Abbreviations and acronyms ................................................................................................................. 74 Report ID: VISRAD_FCC.23888.docx Date of Issue: 26-Dec-12 Page 3 of 74 1 Applicant information Client name: Visonic Ltd. Address: Habarzel street 24, Tel Aviv 69710, Israel Telephone: +972 3645 6714 Fax: +972 3645 6788 E-mail: [email protected] Contact name: Mr. Arik Elshtein 2 Equipment under test attributes Product name: PowerG Wireless Shock Detector Product type: Transceiver Model(s): SD-304C PG2 Serial number: 90-205091 Hardware version: E-205093 Software release: JS-702232 Ver 4.01 RF module HW:…
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Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 1 of 5 SETUP PHOTOGRAPHS This document contains 4 photographs Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 2 of 5 Photograph No.1 Setup for spurious emission field strength measurements in the anechoic chamber below 30 MHz Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 3 of 5 Photograph No.2 Setup for carrier field strength, OBW, spurious emission field strength measurements in the anechoic chamber in 30 – 1000 MHz range Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 4 of 5 Photograph No.3 Setup for spurious emission field strength measurements in the anechoic chamber above 1000 MHz range Visonic Ltd. FCC ID:WP3SD304CPG2 IC:1467C-SD304CPG2 Page 5 of 5 Photograph No.4 Setup for band edge emissions and hopping parameters measurements
| # | Rule Parts | Frequency Range | Power Output |
|---|---|---|---|
| 1 | 15C | 912.75 MHz - 919.106 MHz | 512.00 mW |

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