Bryant 580F VIII. Install GAS Piping, Field Control Wiring, Optional Non-Fused Disconnect

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VIII. STEP 8 — INSTALL GAS PIPING

Unit is equipped for use with natural gas. Installation must conform with local building codes or, in the absence of local codes, with the National Fuel Gas Code, ANSI Z223.1.

Install field-supplied manual gas shutoff valve with a 1/8-in. NPT pressure tap for test gage connection at unit. Field gas piping must include sediment trap and union. See Fig. 14.

WARNING: Do not pressure test gas supply while connected to unit. Always disconnect union before servicing.

IMPORTANT: Natural gas pressure at unit gas connection must not be less than 5.5 in. wg or greater than 13.5 in. wg.

Size gas-supply piping for 0.5-in. wg maximum pressure drop. Do not use supply pipe smaller than unit gas connection.

Fig. 14 — Field Gas Piping

IX. STEP 9 — MAKE ELECTRICAL CONNECTIONS A. Field Power Supply

Unit is factory wired for voltage shown on unit nameplate. When installing units, provide a disconnect per NEC (National Electrical Code) requirements of adequate size (Table 5).

All field wiring must comply with NEC and local requirements.

Route power and ground lines through control box end panel or unit basepan (see Fig. 4-6) to connections as shown on unit wiring diagram and Fig. 15.

CAUTION: The correct power phasing is critical in the operation of the scroll compressors. An incorrect phasing will cause the compressor to rotate in the wrong direction. This may lead to premature compres- sor failure.

WARNING: The unit must be electrically grounded in accordance with local codes and NEC ANSI/NFPA 70 (National Fire Protection Association).

Field wiring must conform to temperature limitations for type ‘‘T’’ wire. All field wiring must comply with NEC and local requirements.

Transformer no. 1 is wired for 230-v unit. If 208/230-v unit is to be run with 208-v power supply, the transformer must be rewired as follows:

1.Remove cap from red (208 v) wire.

2.Remove cap from orange (230 v) spliced wire.

3.Replace orange wire with red wire.

4.Recap both wires.

IMPORTANT: BE CERTAIN UNUSED WIRES ARE CAPPED. Failure to do so may damage the transformers.

Operating voltage to compressor must be within voltage range indicated on unit nameplate. On 3-phase units, volt- ages between phases must be balanced within 2%.

Unit failure as a result of operation on improper line voltage or excessive phase imbalance constitutes abuse and may cause damage to electrical components.

B. Field Control Wiring

Install a Bryant-approved accessory thermostat assembly (or light commercial Thermidistat™ device for units equipped with Perfect Humidity™ option) according to the installation instructions included with accessory. Locate thermostat assembly on a solid interior wall in the conditioned space to sense average temperature.

Route thermostat cable or equivalent single leads of colored wire from subbase terminals through conduit in unit to low- voltage connections as shown on unit label wiring diagram and in Fig. 16.

NOTE: For wire runs up to 50 ft, use no. 18 AWG (American Wire Gage) insulated wire (35 C minimum). For 50 to 75 ft, use no. 16 AWG insulated wire (35 C minimum). For over 75 ft, use no. 14 AWG insulated wire (35 C minimum). All wire larger than no. 18 AWG cannot be directly connected at the thermostat and will require a junction box and splice at the thermostat.

Set heat anticipator settings as follows:

VOLTAGE

W1

W2

208/230

0.98

0.44

460

0.80

0.44

Settings may be changed slightly to provide a greater degree of comfort for a particular installation.

C. Optional Non-Fused Disconnect

On units with the optional non-fused disconnect, incoming power will be wired into the disconnect switch. Refer to Fig. 17 for wiring for 100 and 200 amp disconnect switches. Units with an MOCP (maximum overcurrent protection) under 100 will use the 100 amp disconnect switch. Units with an MOCP over 100 will use the 200 amp disconnect switch. Refer to the applicable disconnect wiring diagram.

To prevent breakage during shipping, the disconnect handle and shaft are shipped and packaged inside the unit control box. Install the disconnect handle before unit operation. To install the handle and shaft, perform the following procedure:

1.Open the control box door and remove the handle and shaft from shipping location.

2.Loosen the Allen bolt located on the disconnect switch. The bolt is located on the square hole and is used to hold the shaft in place. The shaft cannot be inserted until the Allen bolt is moved.

3.Insert the disconnect shaft into the square hole on the disconnect switch. The end of the shaft is spe- cially cut and the shaft can only be inserted in the correct orientation.

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Contents Safety Considerations ContentsInstallation Provide Unit Support Roof Curb Details 580F180-240 Roof Curb Details 580F300 II. RIG and Place Unit Alternate Unit SupportPositioning Roof Mount580F Ft-in 180 Unit Maximum Dimensions Shipping Weight210 240Base Unit Dimensions 580F180 Base Unit Dimensions 580F240 Base Unit Dimensions 580F300 Physical Data Furnace Section Power ExhaustFreeze Protection Thermostat F OUTDOOR-AIR Inlet ScreensIII. Field Fabricate Ductwork Install Flue Hood and Wind BaffleIV. Make Unit Duct Connections VI. Trap Condensate DrainVII. Orifice Change Field Control Wiring VIII. Install GAS PipingOptional Non-Fused Disconnect Optional Convenience Outlet Field Power Wiring ConnectionsXI. Install OUTDOOR-AIR Hood Make OUTDOOR-AIR Inlet Adjust MentsElectrical Data Manual Outdoor-Air DamperOutdoor-Air Hood Component Location XII. Install ALL AccessoriesMotormaster V Control Package Usage Motormaster V Control Installation 580F240Applicable Voltages and Motors Return Air Pressure Drop in. wg Outdoor Air Damper LeakageEconoMi$erIV Standard Sensors CFMEconoMi$erIV Control Modes Temperature FEconoMi$erIV Controller Potentiometer LED Locations EconoMi$erIV Sensor UsageEnthalpy Changeover Set Points EconoMi$erIV Controller CO2 Sensor Standard Settings LPS LlsvTran Page VI. Internal Wiring IV. Refrigerant Service PortsSTART-UP Unit PreparationAirflow Fan Performance 580F180275 Low Heat Units7200 7500 Fan Performance 580F180360 High Heat UnitsFan Performance 580F210360 High Heat Units Fan Performance 580F210275 Low Heat UnitsRpm Bhp Watts 500 Rpm Watts Bhp 000 Fan Performance 580F240275 Low Heat Units500 000 10,000 000 500 10,000 Fan Performance 580F240360 High Heat UnitsFan Performance 580F300360 High Heat Units Fan Performance 580F300275 Low Heat UnitsGeneral Notes for FAN Performance Data Tables Fan Rpm at Motor Pulley Settings Accessory/FIOP Static Pressure in. wg 580F180-300Air Quantity Limits Evaporator-Fan Motor DataXIII. Operating Sequence Service CleaningII. Lubrication IV. Evaporator FAN Service and ReplacementVI. CONDENSER-FAN Adjustment Belt Tension AdjustmentVII. Power Failure VIII. Refrigerant ChargePerfect Humidity System Charging IX. GAS Valve AdjustmentNatural Gas Main BurnersXVII. Optional Hinged Access Doors XV. Replacement PartsXI. Filter Drier XII. Protective DevicesSpark Gap Adjustment Typical Wiring Schematic 580F240, 208/230 V Shown Typical Component Arrangement 580F240 Shown CLO AHAComp EquipII. ECONOMI$ERIV Troublshooting Troubleshooting Unit TroubleshootingHeating Service Analysis EconoMi$erIV Troubleshooting CompletionProblem Cause Remedy Cooling Service Analysis IGC Control Heating and Cooling Inputs Outputs EconoMi$erIV Input/Output LogicDemand Control Enthalpy Terminal†Index HumidistatCall for Free Catalog Service TrainingCopyright 2006 Bryant Heating & Cooling Systems Catalog no Page Temperatures START-UP ChecklistPRE-START-UP II. START-UP Electrical
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580F specifications

The Bryant 580F is a highly regarded gas furnace known for its exceptional heating performance and advanced technology. Designed for residential use, this model stands out for its reliability, efficiency, and user-friendly features that cater to modern heating demands.

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Safety is also a primary concern with the Bryant 580F. It includes robust safety features such as a hot surface ignition system that eliminates the need for a standing pilot light, reducing the risk of gas leaks. Additionally, advanced diagnostics help in troubleshooting and maintenance, ensuring that potential issues can be identified and resolved quickly.

In conclusion, the Bryant 580F gas furnace is a remarkable choice for those seeking a blend of efficiency, comfort, and advanced technology. Its high AFUE rating, multi-speed blower, smart control compatibility, and safety features make it a reliable option for homeowners looking to invest in a dependable heating solution. As the demand for energy-efficient heating continues to grow, the Bryant 580F stands out as a model that meets and exceeds expectations in the modern heating landscape.