
Text extracted from the exhibit documents filed with the FCC. Open a document above to read the original.
TO THE INSTALLER Regular maintenance and inspection (at least annually) by the installer and frequent testing by the user are vital to continuous satisfactory operation of any alarm system. The installer should assume the responsibility of developing and offering a regular maintenance program to the user, as well as acquainting the user with the proper operation and limitations of the alarm system and its component parts. Recommendations must be included for a specific program of frequent testing (at least weekly) to ensure the system's operation at all times. FCC ID: CFS8DL5817-1 THIS DEVICE COMPLIES WITH PART 15 OF FCC RULES. OPERATION IS SUBJECT TO THE FOLLOWING TWO CONDITIONS: (1) THIS DEVICE MAY NOT CAUSE HARMFUL INTERFERENCE, AND (2) THIS DEVICE MUST ACCEPT ANY INTERFERENCE RECEIVED, INCLUDING INTERFERENCE THAT MAY CAUSE UNDESIRED OPERATION. CANADA: 573F-58171 FOR WARRANTY INFORMATION AND LIMITATIONS OF THE ENTIRE SYSTEM, SEE THE INSTALLATION AND SETUP GUIDE FOR THE CONTROL /RECEIVER WITH WHICH THIS DEVICE IS USED. 165 Eileen Way, Syosset, New York 11791 Copyright Β© 2004 Honeywell International, Inc. www.honeywell.com/security ΓN6483V4uΕ N6483V4 4/05 Rev. a N6483V4 4/05 Rev. A ADEMCO 5817 MULTI-POINT UNIVERSA L TRANSMITTE R INSTALLATION AND SETUP GUIDE GENERAL INFORMATION The 5817 Multi-Point Universal Transmitter may have three contact loops connected to it. Each loop transmits a unique ID code to a 5800 wireless system receiver connected to the system control panel. The Primary Loop has several DIP switch selectable options that determine its connection requirements, response, and transmission characteristics (see DIP switch setting table on next page). The two Auxiliary Loops are closed-circuit, with a nominal response time of 100mSec. For UL installations, no contact in any of the loops may be more than 3 feet from the transmitter. A built-in cover tamper switch is activated when the cover is removed. ENROLLING THE TRANSMITTER IDs The 5817 has its own unique identification codes permanently assigned during manufacture. It is not necessary to program the transmitter IDs during installation. Instead, the control unit is required to "enroll" the transmitter IDs at some point prior to the transmitter's usage in the alarm system. The control unit's installation manual contains general information on the "enrolling" procedure, but the information given herein pertains specifically to the 5817. 1. Place a 3V battery in the battery holder, as described later in BATTERY INSTALLATION / REPLACEMENT and as shown in Diagram 2. Observe polarity! 2. Make sure that the DIP switch's 4 positions (see Diagram 2) are all OFF. 3. Set the system ready for enrolling the ID code of one of the 5817's loops (inputs) to be used, as described in the control's instructions. The 5817 should be treated as "RF" (i.e., supervised RF) Type (mandatory for UL installations) . 4. Proceed with enrolling the i nputs of the loops to be used, as described in the control's instructions. INSTALLATION Mounting For proper orientation of the unit in relation to its wall mounting plate and the loop wiring, read all of this section before installing the unit. The description that follows assumes that the unit will be mounted as shown in the diagrams. The unit may, however, be installed in any direction, as long as the relationship of the unit to its mounting plate is maintained. Although two holes are provided in the unit that would permit mounting directly to a surface (holes "A" in Diagram 2), it is recommended that the mounting plate be used, as described below, for ease in removing the unit for servicing should it become necessary. Before mounting the transmitter permanently, conduct Go/No Go tests (see control's instructions) to verify adequate signal strength and reorient or relocate the transmitter if necessary. When a satisfactory location is found, remove the battery and proceed with installation. 1. Remove the transmitter's cover by inserting the flat blade of a small screwdriver into the pry-off slot at the end of the unit farthest from the cover's decorative ribs, and twisting the blade. Note : The open slot at the other end of the unit cannot be used as a cover pry-off. 2. Disengage the supplied mounting plate from the unit by inserting the blade of a small screwdriver into the locking tab release window (see Diagram 2) and pressing it against the case locking tab (see Diagram 1) while sliding the plate downward along the case back. Note : For this application, the alignment guide strip along one edge of the plate serves no function and may be broken away, if desired. β 2 β β 3 β 3. If concealed wiring is to be used, feed the wires through the concealed wiring entry hole at one corner of the plate ( surface wiring is mentioned in Step 5 below). 4. Install the mounting plate, with its case holding posts pointing up (in this example), in the location selected as described in the control unit's installation instructions. Use the flat-head screws supplied. 5. If concealed wiring is to be used, feed it through the slot in the case back but do not connect to the terminal block yet. Surface wiring should enter via the thin "breakout" area provided in the case wall. 6. Attach the case back to the mounting plate by sliding the keyhole slots in the case back down onto the mounting plate's hooks. The locking tab will click as the case back locks in place. 7 Set the DIP switch (after the control has enrolled the transmitter's input IDs) for the desired primary loop characteristics, as described in the table below. P R I M A R Y L O O P O P T I O N S T A B L E SWITCH D I P S W I T C H P O S I T I O N SETTING 1 2 3 4 ON REPEATING TRANSMISSION (every 4 sec.) UPON PRIMARY LOOP FAULT Use for high-priority alarm, such as fire. NORMALLY OPEN CIRCUIT PRIMARY LOOP SLOW PRIMARY LOOP RESPONSE (Approx. 200mSec Normally Closed Response Time) 3 MINUTE, ALL LOOP TRANSMISSION INHIBIT AFTER RESTORE OF PRIMARY LOOP See Note c. This affects tβ¦
Text truncated - open the document above for the full version.
EXHIBIT 2-2 BLOCK DIAGRAM CFS8DL5817-1 SECTION 2.1033(b)SECTION 2.1033(b) SECTION 2.1033(b) (2a). For Part 15 a statement describing how the device operates.
COVER LETTER Federal Communications Commission Honeywell International Inc. Equipment Approval Services Radio Engineering PO BOX 358315 160 Eileen Way Pittsburgh, PA 15251 5315 Syosset, NY 11791 April, 26, 2005 Subject: Application for Certification of Honeywellβs Security Device type: 5817-1 FCC ID: CFS8DL5817-1 Dear Sir or Madam: Please find (e-filed) a 731 application form and 159 payment form for submittal of this product. The following exhibits were also uploaded to your site: β’ functional description β’ circuit description β’ block diagram β’ schematic β’ duty cycle / timing calculation β’ timing diagram β’ external and internal photos β’ product test report β’ users manual β’ label This is for the certification of Honeywellβs 5817-1 transmitter under FCC rules and regulations Part 15 subpart C. If you have any questions or require additional information, please contact me at 516-921-6704 Ext. 6640 Regards, Ken Addy Director Radio Engineering
COVER LETTER Federal Communications Commission Honeywell International Inc. Equipment Approval Services Radio Engineering PO BOX 358315 160 Eileen Way Pittsburgh, PA 15251 5315 Syosset, NY 11791 April, 26, 2005 Subject: Application for Certification of Honeywellβs Security Device type: 5817-1 FCC ID: CFS8DL5817-1 Dear Sir or Madam: Please find (e-filed) a 731 application form and 159 payment form for submittal of this product. The following exhibits were also uploaded to your site: β’ functional description β’ circuit description β’ block diagram β’ schematic β’ duty cycle / timing calculation β’ timing diagram β’ external and internal photos β’ product test report β’ users manual β’ label This is for the certification of Honeywellβs 5817-1 transmitter under FCC rules and regulations Part 15 subpart C. If you have any questions or require additional information, please contact me at 516-921-6704 Ext. 6640 Regards, Ken Addy Director Radio Engineering
EXHIBIT 1 FUNCTIONAL DESCRIPTION CFS8DL5817-1 SECTION 2.1033(b) SECTION 2.1033(b) (2a). For Part 15 a brief description of the circuit functions of the device. The 5817-1 is a Three Point (zone) Transmitter capable of sending alarm messages to the alarm system, via a 5881 receiver. It is supervised, and functionally identical to the 5817 (CFS8DL5817).
EXHIBIT 2-1 CIRCUIT DESCRIPTION CFS8DL5817-1 SECTION 2.1033(b) SECTION 2.1033(b) (2a). For Part 15 a statement describing how the device operates. ENCODER U1 controls SWITCH, Q1, etc., which in-turn turns on Oscillator Q2 etc., whoβs FDE is SAW XL1, signal is fed to PA Q3 etc., ENCODER U1 is also the source of modulation when The PA is on-off modulated by MODULATOR Q4,Q5 etc. The PA output is fed to the ANTENNA ( ANT1 ) via matching network L1 C19 C17 & C18 etc.
EXHIBIT 3-1 TIMING / DUTY CYCLE CALCULATION CFS8DL5817-1 Section 15.255(b) Section 15.255(b), when the radiated emission limits are expressed in terms of the average value of the emission, and pulsed operation is employed, the measurement field strength shall be determined by averaging over one complete pulse train, including blanking intervals, as long as the pulse train does not exceed 0.1 seconds. The exact method of calculating the average field strength shall be submitted with any application for certification. 5869-1 Duty Cycle Calculation Message protocol, timing and duty cycle calculation: The data output is phase-encoded Manchester that has inherent 50% duty cycle and consists of 64 bits per word sent at a nominal data rate of 3.7 kb/s (3.2kb/s min to 4.2kb/s max). Therefore the duty cycle is calculation is as follows: The word format consists of 64 bits, The duration of each bit is 312.5 uSec max. The duty cycle over a 100 mSec measuring period is calculated as follows: Duty cycle = Actual RF transmission ON time / 100 mSec Actual transmission ON time = 64 bits X 50% X 312.5 uSec = 10 mSec Therefore duty cycle = 10 / 100 mSec = .10 = 10%, and peak to average field strength is 20 db. Total on-air time for a supervision transmission is: 64 X 312.5 uSec + (5 X 150 mSec) = 0.77 seconds The group of six transmissions is repeated twice, with the second group delayed from the first by a max time of 2 seconds. The worst case on-air time is 1.54 + 2 = 3.54 seconds Summary: - Duty cycle = 10% On airtime = 3.54 seconds
EXHIBIT 3-2 TIMING DIAGRAM CFS8DL5817-1 Section 15.255(b) Section 15.255(b), when the radiated emission limits are expressed in terms of the average value of the emission, and pulsed operation is employed, the measurement field strength shall be determined by averaging over one complete pulse train, including blanking intervals, as long as the pulse train does not exceed 0.1 seconds. The exact method of calculating the average field strength shall be submitted with any application for certification. SEE THE NEXT PAGE
EXHIBIT 1 FUNCTIONAL DESCRIPTION CFS8DL5817-1 SECTION 2.1033(b) SECTION 2.1033(b) (2a). For Part 15 a brief description of the circuit functions of the device. The 5817-1 is a Three Point (zone) Transmitter capable of sending alarm messages to the alarm system, via a 5881 receiver. It is supervised, and functionally identical to the 5817 (CFS8DL5817).
EXHIBIT 2-1 CIRCUIT DESCRIPTION CFS8DL5817-1 SECTION 2.1033(b) SECTION 2.1033(b) (2a). For Part 15 a statement describing how the device operates. ENCODER U1 controls SWITCH, Q1, etc., which in-turn turns on Oscillator Q2 etc., whoβs FDE is SAW XL1, signal is fed to PA Q3 etc., ENCODER U1 is also the source of modulation when The PA is on-off modulated by MODULATOR Q4,Q5 etc. The PA output is fed to the ANTENNA ( ANT1 ) via matching network L1 C19 C17 & C18 etc.
EXHIBIT 3-1 TIMING / DUTY CYCLE CALCULATION CFS8DL5817-1 Section 15.255(b) Section 15.255(b), when the radiated emission limits are expressed in terms of the average value of the emission, and pulsed operation is employed, the measurement field strength shall be determined by averaging over one complete pulse train, including blanking intervals, as long as the pulse train does not exceed 0.1 seconds. The exact method of calculating the average field strength shall be submitted with any application for certification. 5869-1 Duty Cycle Calculation Message protocol, timing and duty cycle calculation: The data output is phase-encoded Manchester that has inherent 50% duty cycle and consists of 64 bits per word sent at a nominal data rate of 3.7 kb/s (3.2kb/s min to 4.2kb/s max). Therefore the duty cycle is calculation is as follows: The word format consists of 64 bits, The duration of each bit is 312.5 uSec max. The duty cycle over a 100 mSec measuring period is calculated as follows: Duty cycle = Actual RF transmission ON time / 100 mSec Actual transmission ON time = 64 bits X 50% X 312.5 uSec = 10 mSec Therefore duty cycle = 10 / 100 mSec = .10 = 10%, and peak to average field strength is 20 db. Total on-air time for a supervision transmission is: 64 X 312.5 uSec + (5 X 150 mSec) = 0.77 seconds The group of six transmissions is repeated twice, with the second group delayed from the first by a max time of 2 seconds. The worst case on-air time is 1.54 + 2 = 3.54 seconds Summary: - Duty cycle = 10% On airtime = 3.54 seconds
EXHIBIT 3-2 TIMING DIAGRAM CFS8DL5817-1 Section 15.255(b) Section 15.255(b), when the radiated emission limits are expressed in terms of the average value of the emission, and pulsed operation is employed, the measurement field strength shall be determined by averaging over one complete pulse train, including blanking intervals, as long as the pulse train does not exceed 0.1 seconds. The exact method of calculating the average field strength shall be submitted with any application for certification. SEE THE NEXT PAGE
EXHIBIT 5-1 Report of Measurements. CFS8DL5817-1 Section 15.231 and ANSI C63.4 Measurements were made at Honeywell's Measurement Facility at 160 Eileen Way, Syosset , NY 11791 , FCC Registration number : 156835. Measurements were made in accordance with the procedures and reporting requirements of ANSI C63.4-1992. The Test Set-Up (C63.4 section 10.1.3) is shown in the attached drawing; EXHIBIT 5-2. The sequence of testing (C63.4 section 10.1.7) for radiated emissions is as follows: A preliminary scan was conducted with the receiver antenna close to the EUT in order to identify the emission characteristics of the EUT (C63.4 section 8.3.1.1). The antenna and EUT were then placed at the proper separation with the EUT positioned on a non-conducting turntable. The EUT was rotated on the turntable to maximize the received signal strength, then the receiver antenna height was varied to further maximize the received reading. Thereafter, the device was again rotated to a peak output position and the antenna height was re-adjusted for maximum received signal. This procedure was re- iterated until there was no further increase in signal level. This procedure was performed with the EUT rotating in three orthogonal planes (C63.4 section 13.1.4.1) to generate a final maximum reading which is recorded on the radiated emissions result sheet. Similar measurements were made on the receiver to ensure compliance as an unintentional radiator. See EXHIBIT 6 for list of test equipment (C63.4 section 10.1.4). Note, Spectrum Analyzer resolution bandwidths set as follows; (Video Bandwidth set greater than RBW) - For occupied bandwidth measurements, RBW = 100kHz, (This is in accordance with the minimum RBW allowed by C63.4, which requires RBW greater than 5% of the FCC required occupied bandwidth spec of 0.25% of center frequency). - For radiated emissions below 1 GHz, the RBW = 100kHz. Detector function set to peak. - For radiated emissions above 1 GHz, the RBW = 1MHz. Detector function set to peak. RADIATED EMISSIONS are recorded in EXHIBIT 5-3 (TX) and OCCUPIED BANDWIDTH is recorder in EXHIBIT 5-4. EXHIBIT 5-2 PICTURE OF THE TEST SETUP CFS8DL5869-1-1
EXHIBIT 5-1 Report of Measurements. CFS8DL5817-1 Section 15.231 and ANSI C63.4 Measurements were made at Honeywell's Measurement Facility at 160 Eileen Way, Syosset , NY 11791 , FCC Registration number : 156835. Measurements were made in accordance with the procedures and reporting requirements of ANSI C63.4-1992. The Test Set-Up (C63.4 section 10.1.3) is shown in the attached drawing; EXHIBIT 5-2. The sequence of testing (C63.4 section 10.1.7) for radiated emissions is as follows: A preliminary scan was conducted with the receiver antenna close to the EUT in order to identify the emission characteristics of the EUT (C63.4 section 8.3.1.1). The antenna and EUT were then placed at the proper separation with the EUT positioned on a non-conducting turntable. The EUT was rotated on the turntable to maximize the received signal strength, then the receiver antenna height was varied to further maximize the received reading. Thereafter, the device was again rotated to a peak output position and the antenna height was re-adjusted for maximum received signal. This procedure was re- iterated until there was no further increase in signal level. This procedure was performed with the EUT rotating in three orthogonal planes (C63.4 section 13.1.4.1) to generate a final maximum reading which is recorded on the radiated emissions result sheet. Similar measurements were made on the receiver to ensure compliance as an unintentional radiator. See EXHIBIT 6 for list of test equipment (C63.4 section 10.1.4). Note, Spectrum Analyzer resolution bandwidths set as follows; (Video Bandwidth set greater than RBW) - For occupied bandwidth measurements, RBW = 100kHz, (This is in accordance with the minimum RBW allowed by C63.4, which requires RBW greater than 5% of the FCC required occupied bandwidth spec of 0.25% of center frequency). - For radiated emissions below 1 GHz, the RBW = 100kHz. Detector function set to peak. - For radiated emissions above 1 GHz, the RBW = 1MHz. Detector function set to peak. RADIATED EMISSIONS are recorded in EXHIBIT 5-3 (TX) and OCCUPIED BANDWIDTH is recorder in EXHIBIT 5-4. EXHIBIT 5-2 PICTURE OF THE TEST SETUP CFS8DL5869-1-1
HONEYWELL SECURITY & CUSTOM ELECTRONICS 165 EILEEN WA Y SYOSSET, NY 11791EXHIBIT 5-3 FCC ID # CFS8DL5817-1 Date : 3/15/2005 Tested by :Y. Mohammed Approved by :K.Addy Test Sample (model) : 5817 Transistor - N10-55GN Test method: ANSI C63.4 - 1992 Test specification: FCC Part 15, Sub-part C Notes: (1) Fo = 345MHz. (2) Detector = Peak (3) Frequency range scanned to 4 GHz. Emissions not reported were more than 20dB below the specified unit. [(Meter reading + Cable/Amp factor + Antenna factor) / 20 )] (4) Conv. Reading = 10 (5) Corr. Reading = Conv. Reading X Duty Cycle (6) Six Highest Emissions Recorded Freq. (MHz) Antenna Polarity (V/H) Meter Reading (dB uV) Cable/Amp Factor (dB) Antenna Factor (dB/M) Conv. Reading (uV/M) Duty Cycle (%) Corr. Reading (uV/M) Limit @ 3M (uV/M) 30 CABLE "A"BICONILOG729 345H79.701.314.7861517.710.0%6151.87292 690H41.001.719.101230.310.0%123.0729 1035H46.002.322.703548.110.0%354.8500 1380H45.003.025.104518.610.0%451.9500 1725H43.003.327.554926.110.0%492.6729 2070H41.003.829.425140.410.0%514.0729 2415H38.004.131.854983.110.0%498.3729 2760 H 39.004.1 32.205821.010.0%582.1729 3105H36.005.731.754704.410.0%470.4729 3450H37.006.232.285942.910.0%594.3729 4000 CABLE "A"BICONILOG
5817 OCCUPIED BANDWIDTH (459 KHz) Transistor β 80GN
EXHIBIT 6 TEST EQUIPMENT USED CFS8DL5817-1 Section 15.231 and ANSI C63.4 Section 15.231, per C63.4 section 10.1.4. This is a list of all test equipment used. Test Equipment list 1. Antenna: BICONOLOG S/N: 00029290 Cal. on: 09/14/04 Cal. due: 09/14/05 2. Spectrum Analyzer H. P. 8563E S/N:3246A00232 Cal. on: 08/23/04 Cal. due: 08/23/05
EXHIBIT 5-2 PICTURE OF THE TEST SETUP CFS8DL5817-1 SECTION 2.1093 (c) SECTION 2.1093 (c) Photo of the test setup shall be provided.
165 Eileen Way Β· Syosset, New York Β· United States
| # | Rule Parts | Frequency Range | Power Output |
|---|---|---|---|
| 1 | 15.231 | 345 MHz - 345 MHz | - |

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