
Text extracted from the exhibit documents filed with the FCC. Open a document above to read the original.
Bolton Conductive Systems 1164 Ladd Rd, Walled Lake, MI 48390 (248) 669-7080 http://www.boltonconductivesystems.com User Manual Model 01-2720 Wireless Remote Control Figure 1) - KEYFOB BUTTON CONFIGURATION AND GRAPHICS 1.0) Functional requirements: With generator engine switch in the REMOTE (far left) position- 1.1) Receiver logic functions 1.11) To activate the remote control, press and hold the UNLOCK button for at least 3 seconds, then release. Until this is done, the remote control will not respond to any other buttons. This takes the receiver out of its low power or sleep mode. The sleep mode conserves battery power, making it un-necessary for us to have an on-off switch on the receiver. With this scheme, a fresh generator battery will not be discharged by the receiver for at least 6 months. For longer storage, it’s recommended that the receiver power be disconnected from the battery. 1.12) The remote control will remain active for 3 minutes once the receiver is taken out of sleep mode. During this time, all other button functions are active. After the 3 minute time out, the UNLOCK button must be pressed (refer to section 1.11) once again to re- activate all button functions. 1.13) To start the generator once the remote is unlocked, press and release the ARM button, then press and release the START button. The start output is activated for 3 seconds to start the generator. If the generator does not start on the first try, repeat starting procedure. For each attempt to start the generator, ARM must be pressed before pressing START. 1.14) To stop the generator, press the STOP button. The stop output is activated as long as the STOP button is pressed. NOTE: STOP function remains active once remote is in sleep mode. The UNLOCK button doesn’t need to be activated to use this feature. Bolton Conductive Systems 1164 Ladd Rd, Walled Lake, MI 48390 (248) 669-7080 http://www.boltonconductivesystems.com 1.15) If more than one button is pressed simultaneously, the remote control will automatically go back into “sleep” mode and requires the UNLOCK button to be pressed (refer to section 1.11) to be re-activated; This helps prevent un-intentional operation functions from taking place in a scenario where the buttons are pressed in the users pocket, etc. 1.2) Message encryption/security 1.21) The remote kit utilizes a rolling code security system to insure a unique transmitter and receiver communication link. This prevents other wireless systems from unintentionally communicating with the receiver. 1.3) Range requirement 1.31) In an open area (without obstructions or reflecting objects), the radio range shall be at least 100 feet. It is recommended that the receiver be mounted in the position shown in figure 2 for optimal wireless range and performance. 1.4) Environmental operating conditions and requirements 1.41) The remote control shall maintain all functional and range requirements when operated in ambient temperatures between 0ºF and 130ºF. 1.42) The receiver is considered “water resistant” and will protect against small amounts of rain for a short period of time, but it is not “water proof”. The remote is not intended for prolonged use in wet environments such as rain. As such, the receiver will not withstand any under water submersion. 1.5) Vibration/shock/drop 1.51) The transmitter and receiver are designed to withstand a drop from 3 feet onto most surfaces without affecting the functionality or performance. Prolonged abuse or excessive drops could result in permanent damage. 1.6) Electrical characteristics 1.61) Receiver operating voltage and current Voltage range 10 - 14 volts 12 volts nominal 1.63) Receiver standby current 3 mA max standby current 1.64) Transmitter battery Transmitter uses 2 - CR2016 3 volt lithium coin cell batteries Battery life- brand new batteries last approximately two years depending on how often the remote is used and the manufacturer of the batteries. Bolton Conductive Systems 1164 Ladd Rd, Walled Lake, MI 48390 (248) 669-7080 http://www.boltonconductivesystems.com 1.7) Generator compatibility 1.71) The wireless remote is compatible with these Honda generator models: EU6500is EM5000is 1.8) Additional transmitters 1.81) One pre-programmed wireless remote transmitter is included with each remote kit. Additional transmitters are available for purchase with detailed and easy to follow instructions included for “learning” additional transmitter(s) into the receiver. Receiver can be programmed with up to 4 different transmitters 2.0) Regulatory requirements 2.1) The remote kit complies with all regulatory requirements of: 2.11) FCC (USA) 2.12) IC (Canada) This device complies with part 15 of the FCC Rules and with RSS-210 of Industry Canada. Operation is subject to the following two conditions: (1) this device must not cause harmful interference, and (2) this device must accept any interference received, including interference that may cause undesired operation. WARNING: Changes or modifications not expressively approved by the party responsible or compliance could void the user’s authority to operate the equipment. The term “IC:” before the radio certification number only signifies that Industry Canada technical specifications were met. Figure 2) - RECOMMENDED RECIEVER MOUNTING POSITION
December 2, 2009 Re: Certification for BCS Transmitter Model/PN(s): 01-2720 FCC ID: XSZ-BCSLLC-387621 IC: 8646A-BCSLLC12946 STATEMENT OF MODIFICATIONS There were no modifications made to the DUT by this test laboratory. (Also see Section 3.1 of the attached Test Report). _____________________ Valdis V. Liepa Research Scientist Re: Certification for BCS Transmitter Model/PN(s): 01-2720 FCC ID: XSZ-BCSLLC-387621 IC: 8646A-BCSLLC12946 GENERAL PRODUCT INFORMATION The device, for which certification is pursued, has been designed by: Bolton Conductive Systems 1164 Ladd Rd Walled Lake, MI 48390 Contact: Joe Malecke [email protected] Tel: 248-669-7080 Fax: 248-669-0464 It will be manufactured by: Bolton Conductive Systems 1164 Ladd Rd Walled Lake, MI 48390 Contact: Joe Malecke [email protected] Tel: 248-669-7080 Fax: 248-669-0464 Canadian Contact: Honda Canada 715 Milner Avenue Toronto, ON M1 B2K8 Contact: Brian Robinson [email protected] Tel: (416) 287-4541 Fax:(416) 284-3977 Re: Certification for BCS Transmitter Model/PN(s): 01-2720 FCC ID: XSZ-BCSLLC-387621 IC: 8646A-BCSLLC12946 POWER OF ATTORNEY A letter granting Valdis V. Liepa the Power of Attorney is on file and can be provided when so requested.
December 2, 2009 American Telecommunications Certification Body, Inc. 6731 Whittier Avenue Suite C110 McLean, VA 22101 RE: Certification Application FCC ID: XSZ-BCSLLC-387621 IC: 8646A-BCSLLC12946 Model/PN(s): 01-2720 Please find enclosed application materials for certification of Bolton Conductive Systems Transmitter Note: 1) Portions of this submittal are filed Confidential. 2) A list of the modifications made is provided in Attestations. If there are any questions regarding the application or testing performed, please contact me at the above address or call 734-483-4211, fax 734-647-2106, or e-mail [email protected]. Sincerely, Valdis V. Liepa Research Scientist
MOD# 01-2720 SER# UM001-XXXX FCC ID: XSZ-BCSLLC-387621 IC: 8646A-BCSLLC12946 MANUFACTURED BY BOLTON CONDUCTIVE SYSTEMS
This device is a portable low-power transmitter used to activate an associated receiver. The device employs a SAW RF oscillator at 315.0 MHz and a microcontroller. The transmitter is normally off until any button is activated. A switch activation enables the microcontroller, which activates the RF oscillator. The microcontroller generates the data waveform (pulse width modulation) for the RF oscillator.
University of Michigan Radiation Laboratory FCC Part 15, IC RSS-210/Gen - Test Report No. 417124-526 Page 1 of 12 The University of Michigan Radiation Laboratory 3228 EECS Building Ann Arbor, MI 48109-2122 Tel: (734) 764-0500 Fax: (734) 647-2106 Measured Radio Frequency Emissions From Bolton Conductive Systems Transmitter FCC ID: XSZ-BCSLLC-387621 IC: 8646A-BCSLLC12946 Test Report No. 417124-526 December 2, 2009 Copyright © 2009 For: Bolton Conductive Systems 1164 Ladd Rd Walled Lake, MI 48390 Contact: Joe Malecke [email protected] Phone: 248-669-7080 Fax: 248-669-0464 Testing supervised by: Measurements made by: Valdis V. Liepa Report Approved by:__________________________ Valdis V. Liepa Test report written by: Joseph D. Brunett Research Scientist Summary Tests for compliance with FCC Regulations, CFR 47, Part 15 and with Industry Canada RSS-210/Gen, were performed on a Bolton Conductive Systems, FCC ID: XSZ-BCSLLC-387621, IC: 8646A- BCSLLC12946. This device under test (DUT) is subject to the rules and regulations as a Transmitter. In testing completed on August 26, 2009, the DUT tested met the allowed specifications for radiated emissions by 13.0 dB. Conducted emissions are not subject to regulation as the DUT is powered by a 6 VDC battery. University of Michigan Radiation Laboratory FCC Part 15, IC RSS-210/Gen - Test Report No. 417124-526 Page 2 of 12 Table of Contents 1. Introduction ...................................................................................................................................... 3 2. Equipment Used ............................................................................................................................... 3 3. Device Under Test ........................................................................................................................... 4 3.1 Description & Block Diagram .............................................................................................. 4 3.2 Variants and Samples ............................................................................................................ 4 3.3 Modes of Operation .............................................................................................................. 4 3.4 Exemptions ........................................................................................................................... 4 3.5 EMC Relevant Modifications ............................................................................................... 4 4. Emissions Limits .............................................................................................................................. 5 4.1 Radiated Emissions Limits .................................................................................................... 5 4.2 Power Line Conducted Emissions Limits ............................................................................. 5 5. Measurement Procedures ................................................................................................................. 6 5.1 Semi-Anechoic Chamber Radiated Emissions ...................................................................... 6 5.2 Outdoor Radiated Emissions ................................................................................................. 6 5.3 Radiated Field Computations ................................................................................................ 6 5.4 Indoor Power Line Conducted Emissions ............................................................................. 6 5.5 Supply Voltage Variation ...................................................................................................... 7 6. Test Results ...................................................................................................................................... 7 6.1 Radiated Emissions ............................................................................................................... 7 6.1.1 Correction for Pulse Operation ......................................................................................... 7 6.1.2 Emission Spectrum ........................................................................................................... 7 6.1.3 Emission Bandwidth ......................................................................................................... 7 6.1.4 Supply Voltage and Supply Voltage Variation ................................................................. 7 6.2 Conducted Emissions ............................................................................................................ 7 University of Michigan Radiation Laboratory FCC Part 15, IC RSS-210/Gen - Test Report No. 417124-526 Page 3 of 12 1. Introduction This Bolton Conductive Systems Transmitter was tested for compliance with FCC Regulations, Part 15, adopted under Docket 87-389, April 18, 1989 as subsequently amended, and with Industry Canada RSS- 210/Gen, Issue 7, June 2007. Tests were performed at the University of Michigan Radiation Laboratory Willow Run Test Range following the procedures described in ANSI C63.4-2003 "Methods of Measurement of Radio-Noise Emissions from Low-Voltage Electrical and Electronic Equipment in the Range of 9 kHz to 40 GHz". The Site description and attenuation characteristics of the Open Site facility are on file with FCC Laboratory, Columbia, Maryland (FCC Reg. No: 91050) and with Industry Canada, Ottawa, ON (File Ref. No: IC 2057A-1). 2. Equipment Used The test equipment commonly used in our facility is listed in Table 2.1. Except where indicated as a pre- test, monitoring, or support device; all equipment listed below is a part of the University of Michigan Radiation Laboratory (UMRL) quality system. This quality system has been established to ensure all equipment has a clearly identifiable classification, calibration expiry date, and that all calibrations are traceable to national standards. Table 2.1 Test Equ…
Text truncated - open the document above for the full version.
1301 Beal Ave. · Ann Arbor, Michigan · United States
| # | Rule Parts | Frequency Range | Power Output |
|---|---|---|---|
| 1 | 15.231 | 315 MHz - 315 MHz | - |