Bryant 355CAV installation instructions Combustion-Air and Vent Pipe Diameter

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Table 5 – Approved Combustion-Air and Vent Pipe, Fitting and Cement Materials

ASTM

 

 

 

SOLVENT

 

SPECIFICATION

 

 

 

 

MATERIAL

PIPE

FITTINGS

CEMENT

DESCRIPTION

(MARKED ON

 

 

 

AND PRIMERS

 

MATERIAL)

 

 

 

 

 

 

 

 

 

D1527

ABS

Pipe

Schedule40

D1785

PVC

Pipe

Schedule40

D2235

For ABS

Solvent

For ABS

Cement

 

 

 

 

 

D2241

PVC

Pipe

SDR21 & SDR26

D2466

PVC

Fittings

Schedule40

D2468

ABS

Fittings

Schedule40

D2564

For PVC

Solvent

For PVC

Cement

 

 

 

 

 

D2661

ABS

Pipe

Fittings

DWV at Schedule40 IPS sizes

D2665

PVC

Pipe

Fittings

DWV

F438

CPVC

Fittings

Schedule40

F441

CPVC

Pipe

Schedule40

F442

CPVC

Pipe

SDR

F493

For CPVC

Solvent

For CPVC

Cement

 

 

 

 

 

F628

ABS

Pipe

Cellular Core DWV at Schedule40

IPS sizes

 

 

 

 

 

F656

For PVC

Primer

For PVC

F891

PVC

Pipe

Cellular Core Schedule 40 & DWV

355CAV

Installation Guidelines for Combustion Air Pipe and Vent Pipe

It is recommended that all pipes be cut, prepared, and preassembled before permanently cementing any joint.

1.Attach combustion air pipe and vent pipe per instructions in sections “Combustion Air Pipe” and “Vent Pipe.”

2.Working from furnace to outside, cut pipe to required length(s).

3.Deburr inside and outside of pipe.

4.Chamfer outside edge of pipe for better distribution of primer and cement.

5.Clean and dry all surfaces to be joined.

6.Check dry fit of pipe and mark insertion depth on pipe.

7.After pipes have been cut and preassembled, apply gener- ous layer of cement primer to pipe fitting socket and end of pipe to insertion mark. Quickly apply approved cement to end of pipe and fitting socket (over primer). Apply ce- ment in a light, uniform coat on inside of socket to prevent buildup of excess cement. Apply second coat.

8.While cement is still wet, twist pipe into socket with 1/4 turn. Be sure pipe is fully inserted into fitting socket.

9.Wipe excess cement from joint. A continuous bead of ce- ment will be visible around perimeter of a properly made joint.

10.Handle pipe joints carefully until cement sets.

11.Horizontal portions of the venting system shall be suppor- ted to prevent sagging. Support combustion air piping and vent piping a minimum of every 5 ft. (1.5M)(3 ft. (.91M) for SDR-21 or -26 PVC) using perforated metal hanging strap.

12.Slope combustion air piping and vent piping downward towards furnace a minimum of 1/4-in. per linear ft. with no sags between hangers.

13.Horizontal portions of the venting system shall be installed so as to prevent the accumulation of condensate.

14.Use appropriate methods to seal openings where combus- tion air pipe and vent pipe pass through roof or sidewall.

Combustion-Air and Vent Pipe Diameter

Determine combustion-air and vent pipe diameter.

1.Using Table 7, individually determine the diameter of the combustion-air and vent pipe allowed. If different, pick the larger of these two diameters and use this diameter for both combustion-air and vent pipes.

2.When installing vent systems of short pipe length, use the smallest allowable pipe diameter. Do not use pipe size greater than required or incomplete combustion, flame dis- turbance, or flame sense lockout may occur.

NOTE: Do not count elbows or pipe sections in terminations or within furnace.

NOTE: A 2-in. diameter pipe must be used within furnace casing. Make all pipe diameter transitions outside furnace casing.

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Contents Installation Instructions Required Notice for Massachusetts Installations Safety Considerations Table of ContentsEnvironmental Hazard Dimensions In. / mm355CAV Clearances to Combustibles Codes and Standards Electrostatic Discharge ESD PrecautionsIntroduction Unit Damage HazardProperty Damage Hazard ApplicationsUpflow Application Condensate Trap Tubing Alternate Upflow Orientation Condensate Trap Alternate Upflow OrientationCarbon Monoxide Poisoning Hazard Condensate Trap Freeze Protection Upper Inducer Housing Drain ConnectionCondensate Trap Field Drain Attachment Condensate Trap Location Downflow ApplicationsHorizontal Left SUPPLY-AIR Discharge Applications Horizontal Left Tube ConfigurationCombustion AIR Intake Vent Unit Operation Hazard Property DamageConstruct a Working Platform Condenste Trap Field Drain Attachment Horizontal Right SUPPLY-AIR Discharge ApplicationsLocation Prohibit Installation on BackFIRE, EXPLOSION, Injury or Death Hazard Fire or Death HazardHazardous Locations Installation in Upflow or Downflow Applications InstallationInstallation in Horizontal Applications Leveling Legs If DesiredFurnace, Plenum, and Subbase Installed on a Angle AIR Ducts Unit MAY not Operate Fire HazardFIRE, Carbon Monoxide and Poisoning Hazard Fire or Explosion Hazard Gas PipingRemoving Bottom Closure Panel Electrical Shock Hazard WiringElectrical Shock and Fire Hazard Disconnect Switch and FurnaceRemoval of Existing Furnaces from Common Vent Systems AccessoriesFire or Electrical Shock Hazard Fire and Explosion Hazard AIR for Combustion and VentilationPipe Fittings Cement Description Marked on Primers Combustion-Air and Vent Pipe DiameterFurnace Control Direct Vent Termination Clearance Ventilated Combustion Air Vent Termination Clearance Vent Pipe Termination for Ventilated Combustion Air System Unit Corrosion Hazard Combustion AIR PipeCombustion Air Termination Ventilated Combustion Air Option Attachment of Combustion Air Intake Housing Plug FittingCombustion Air Termination-Direct Vent / 2-Pipe System Vent PipeCarbon Monoxide Poisoning Property Damage Hazard Attachment of Vent Pipe304.8mm minimum 76.2mm minimum Extended Exposed Sidewall Pipes Vent TerminationVent Termination Kit Direct Vent / 2-Pipe System Only Two-Pipe Termination Kit Direct Vent / 2-Pipe System OnlyWinter Design Number of 90 Elbows Btuh Maximum Allowable Pipe Length Ft MDirect Vent 2-Pipe Only Multi-venting and Vent Terminations Condensate DrainApplication Personal Injury HazardAir Conditioning A/C Setup Switches START-UP, Adjustment and Safety CheckContinuous Fan CF Setup Switches Additional Setup Switches SW4Prime Condensate Trap with Water Example of Setup Switch in Off PositionWiring Diagram Furnace Setup Switch Description Inducer Housing Drain TubePurge Gas Lines Sequence of OperationTwo-Stage Thermostat and Two-Stage Medium/High Heating Two-Stage Thermostat and Two-Stage Low / High HeatingThermidistat Mode Continuous Blower Mode Super Dehumidify ModeContinuous Blower Speed Selection from Thermostat Heat PumpStep-Modulating Furnace with Single-Speed Air Conditioning Furnace and Two-Speed Heat Pump Pump Furnace and Two-Speed Air ConditionerRedundant Automatic Gas Valve Set Gas Input RateBurner Orifice Altitude AVG. GAS 675 Burner Flame Altitude Derate Multiplier for USASet Thermostat Heat Anticipator Set Temperature RiseGas Rate cu Ft/Hr Check Safety Controls ChecklistCheck Pressure Switches Check Primary Limit ControlCombustion and Vent Piping Checklist InstallationCatalog No. II355CAV---060---4
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355CAV specifications

The Bryant 355CAV is a state-of-the-art automated vertical machining center designed to enhance precision and efficiency in the manufacturing sector. Renowned for its robust construction, this machine is engineered to handle a broad spectrum of machining tasks, making it suitable for both small and large-scale production environments.

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In summary, the Bryant 355CAV is a versatile, high-performance machining center that showcases cutting-edge features and technologies. Its combination of user-friendly controls, sturdy construction, energy efficiency, and advanced monitoring positions it as a vital asset for manufacturers aiming to elevate their productivity and precision in an increasingly competitive landscape.