Tightness controls, adjustable test period which can be adapted to different systems, adjustable test instant allows quick system start, maximum safety thanks to self-monitoring electronics (55 pages)
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Fire Alarm & Emergency Communication System Limitations While a life safety system may lower insurance rates, it is not a substitute for life and property insurance! An automatic fire alarm system—typically made up of smoke IMPORTANT! Smoke detectors must be installed in the same room detectors, heat detectors, manual pull stations, audible warning as the control panel and in rooms used by the system for the devices, and a fire alarm control panel (FACP) with remote...
INSPIRE®, Intelligent FAAST®, NOTIFIER®, ONYX®, ONYXWorks®, SWIFT®, VeriFire®, and VIEW® are all registered trademarks of Honeywell International Inc.Triga™ is a trademark of TRIGA Life Safety Systems, LLC. Flexput®, Honeywell®, JumpStart®, and SWIFT® are registered trademarks of Honeywell International Inc.Fiplex® is a registered trademark of Fiplex Communications, Inc.
Brief description of content you think should be improved or corrected • Your suggestion for how to correct/improve documentation Send email messages to: FireSystems.TechPubs@honeywell.com Please note this email address is for documentation feedback only. If you have any technical issues, please contact Technical Services. info@trigaglobal.com or call +1 330-577-5199 This symbol (shown left) on the product(s) and / or accompanying documents means that used electrical and electronic products should not be mixed with general household waste.
Section 1: Overview 1.1 TRTR-RPS1-PS1 Description The TR-RPS1 Intelligent Power Module provides additional power and circuits to the TR-2100ECS, TR-2100, and TR-75 FACPs. The TR- RPS1 can power all compatible modules, including SLC devices (via a TR-6815 SLC Expander), remote annunciators, notification appli- ances, auxiliary power modules, and all other compatible modules.
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TRTR-RPS1-PS1 Description Overview The TR-RPS1 is optically isolated providing ground loop TR-2100 isolation and transient protection. The SBUS repeater conditions the RS-485 signal and drives up to 6,000 feet of additional wiring (14 gauge). TR-RPS1 #1 and #2 are connected directly to the FACP SBUS. First TR-RPS1 TR-RPS1 can be daisy-chained to other TR-RPS1.
Agency Requirements Overview 1.2.1 UL 864 9th and 10th Edition • Per the UL Continuing Certification Program, UL 864 9th edition fire alarm control equipment will retain certification after the rollout of UL 10th edition (12/2/2018). • Installations of UL 864 10th Edition certified equipment are permitted to use UL864 9th Edition certified equipment when approved by the local Authority Having Jurisdiction (AHJ).
Section 2: Before You Begin Installing 2.1 Inventory The TR-RPS1 ships with the following hardware: • A cabinet with all hardware assembled • Two keys for the front door • Ten 4.7K ohm end-of-line resistors NOTE: For UL installations, 4.7kΩ end-of-line resistor (ordered separately) must be used. •...
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TR-RPS1 Board and Terminal Strip Description Before You Begin Installing Rating Terminal # and Label Description Voltage Current AC input (hot) 240 VAC, 50/60 Hz 1.4 A Earth ground AC input (neutral) 240 VAC, 50/60 Hz 1.4 A I/O 6 Flexput Circuit 24 VDC 3.0 A Notification Circuits...
Before You Begin Installing Earth Fault Resistance 2.4 Earth Fault Resistance Table 2.2 lists the earth fault resistance detection, in ohms, for each applicable terminal on the FACP. Low Biased High Biased Terminal Function Terminal Label Number High Trip High Restore Low Trip Low Restore Flexput...
Calculating Current Draw and Standby Battery Before You Begin Installing Maximum Battery Standby Load Table 2.3 shows the maximum battery standby load for the TR-RPS1 based on 24 and 60 hours of standby. The numbers below have a built in 20% derating factor for the battery amp-hour capacity. The standby load calculations of line G in the Current Draw Calculation Worksheet must be less than the number shown in Table 2.3 for the battery size used and standby hours required.
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Before You Begin Installing Calculating Current Draw and Standby Battery Standby Device # of Devices Current per Device Alarm Current Current TR-CONTROL Standby 0.375 mA Alarm: 0.375 mA Aux Pwr Standby 1.7 mA Alarm: 6.5mA TR-CONTROL-6 Standby 2.65 mA Alarm: 35 mA Aux Pwr Standby...
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Calculating Current Draw and Standby Battery Before You Begin Installing Standby Device # of Devices Current per Device Alarm Current Current TR-RD1G/R Remote LCD Standby: 58 mA Annunciator Alarm: 68 mA TR-5824 Serial/Parallel Module Standby/Alarm: 45 mA TR-RPS1 Power Supply Standby/Alarm (SBUS): 10 mA TR-5865-4 LED Annunciator...
Before You Begin Installing Wiring Specifications Standby Device # of Devices Current per Device Alarm Current Current Alarm: Notification Appliances Current Total current ratings of all devices in system (line A + line B + C) Total current ratings converted to amperes (line D x 0.001): Number of standby hours Multiply lines E and F.
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Wiring Specifications Before You Begin Installing These cases are marked in the chart with an asterisk (*). Maximum length can never be more than 6,000 feet, regardless of gauge used. (The formula used to generate this chart is shown in the chart below). Wiring Distance: SBUS Modules to Panel Total Worst Case 22 Gauge...
Before You Begin Installing Wiring Specifications Wiring Distance Calculation Example Suppose a system is configured with the following SBUS modules: 2 - TR-RD1G/R Fire Annunciators 1 - TR-RPS1 Intelligent Power Expander 1 - TR-5865 LED Fire Annunciator 1 - TR-5824 Parallel/Serial Interface The total worst case current is calculated as follows: TR-RD1G/R Current Draw = 2 x 0.100 amps...
Section 3: Installation TR-RPS1 installation involves the following steps. Mount cabinet to wall (Section 3.1). Connect AC power (Section 3.4) and backup battery (Section 3.5). Wire the FACP to the controlling TR-RPS1 (Section 3.6). Set an ID for the TR-RPS1 (Section 3.6.1). Install and wire SBUS modules that will be powered by this TR-RPS1 (Section 3.7).
Installation Wire Routing 3.3 Wire Routing Follow power-limited wiring techniques. Maintain 0.25” spacing between power-limited and non-power-limited circuits and separate high and low voltage circuits. AC Power Note: Board assembly shown without Formex cover for illustration purposes only. Formex cover must be used in all installations.
Battery Connection Installation 3.5 Battery Connection The TR-RPS1 battery charge capacity is 7 to 33 AH. Use 12V batteries of the same AH rating. Determine the correct AH rating as per the current load calculation (see Table 2.4). NOTE: If the backup battery requirements indicate the use of batteries that are too large to fit into the TR-RPS1 cabinet, use the RBB Remote Battery Box cabinet.
Installation Connecting the TR-RPS1 to the FACP FACP SBUS TR-RPS1 Board N.0. N.C. N.0. N.C. N.0. N.C. TROUBLE RELAY 1 RELAY 2 SBUS IN SBUS OUT I / 0 1 (TR-RPS1-1) N .O . N .C . N .O . N .C .
Connecting SBUS Modules to the TR-RPS1 Installation 3.7 Connecting SBUS Modules to the TR-RPS1 Connect SBUS modules to the TR-RPS1 as shown in Figure 3.8 or Figure 3.9. All SBUS modules must have an ID. Use the DIP switches on the module board to assign an ID number (1-31) to the module. This number identifies the module to the TR-RPS1 and must be unique.
Installation Flexput I/O Circuits 3.8.1 Releasing Operations Approved releasing solenoids are list in the Device Compatibility Document. Do not mix cross alarming zones with smoke verification zones. There must be at least two automatic detection devices in each protected space. Spacing must be reduced to 0.7 times the linear spac- ing in accordance with NFPA 72.
Flexput I/O Circuits Installation 3.8.3 Conventional Initiation Circuits This Section of the manual explains how to install the conventional initiating devices for Class A or Class B configurations. Class B Inputs Connect conventional Class B switches, such as waterflow switches and pull stations, directly to the I/O circuits of the TR-RPS1 panel. To install a Class B switch, wire the switch as shown in Figure 3.12 and configure the circuit through FACP programming.
Installation Flexput I/O Circuits 3.8.4 Installing 2-Wire Smoke Detectors Any compatible UL listed two-wire smoke detector can be used with the TR-RPS1 panel. Refer to the Device Compatibility Document for a list of compatible devices. Figure 3.14 and Figure 3.15 illustrate how to connect a UL listed 2-wire detector to the TR-RPS1 panel. Class B Installation To install a Class B two-wire smoke detector, wire as shown in Figure 3.14.
Flexput I/O Circuits Installation 3.8.5 Installing 4-Wire Smoke Detectors Any compatible UL listed two-wire smoke detector can be used with the TR-RPS1 panel. Refer to the Device Compatibility Document for a list of compatible devices. Figure 3.16 and Figure 3.17 illustrate how to connect a UL listed four-wire detector to the TR-RPS1 panel. Installing Class B 4-Wire Smoke Detectors Figure 3.16 illustrates how to install Class B 4-wire smoke detectors.
Installation Conventional Relay Installation 3.8.6 Auxiliary Power Configuration Flexput circuits 1-6 on the control panel can be used as auxiliary power circuits. The four types of auxiliary power available are as follows: • Door Holder • Constant • Resettable • Sounder Sync Power Auxiliary power must be wired in Class A configuration per UL864 10th Edition.
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