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10
DISCHARGE PIPING WITH AFTERCOOLER
ROTARY-RECIP IN PARALLEL
Do not use the compressor
to support the discharge pipe.
Careful review of piping size from the compressor
connection point is essential. Length of pipe, size of pipe,
number and type of fittings and valves must be
considered for optimum efficiency of your compressor.
It is essential when installing a new compressor to review
the total plant air system. This is to ensure a safe and
effective total system.
Liquid water occurs naturally in air lines as a result of
compression. Moisture vapor in ambient air is
concentrated when pressurized and condenses when
cooled in downstream air piping.
Moisture in compressed air is responsible for costly
problems in almost every application that relies on
compressed air. Some common problems caused by
moisture are rusting and scaling in pipelines, clogging of
instruments, sticking of control valves, and freezing of
outdoor compressed air lines. Any of these could result in
partial or total plant shutdown.
Compressed air dryers reduce the water vapor con-
centration and prevent liquid water formation in
compressed air lines. Dryers are a necessary companion
to filters, aftercoolers, and automatic drains for improving
the productivity of compressed air systems.
NOTICE
2.3 PIPING (Continued)
A dripleg assembly and isolation valve should be
mounted near the compressor discharge. A drain line
should be connected to the condensate drain in the
base.
IMPORTANT: The drain line must slope downward from
the base to work properly.
NOTE: For ease of inspection of the automatic drain trap
operation, the drain piping should include an open funnel.
It is possible that additional condensation can occur if the
downstream piping cools the air even further and low
points in the piping systems should be provided with
driplegs and traps.
IMPORTANT: Discharge piping should be at least as
large as the discharge connection at the compressor
enclosure. All piping and fittings must be suitable for the
maximum operating temperature of the unit and, at a
minimum, rated for the same pressure as the compressor
sump tank.
MOISTURE CONTENT OF COMPRESSED AIR
200
160
120
80
40
0
DEW POINT
without
Aftercooling
100°F/38°C
(with
Aftercooler)
35°F /1.7°C
(Refrigerated
Dryer)
-40°F/-40°C
(Desiccant
Dryer)
Gallons of
W
ater/24
hour
s/1000 acfm
Содержание 100-200
Страница 17: ...FIGURE 2 5 1 TYPICAL OUTDOOR SHELTERED INSTALLATION 15...
Страница 18: ...16 3 0 INTELLISYS INTELLISYS CONTROLLER INGERSOLLrAND INTELLISYS...
Страница 52: ...50 54418074 REV B 8 0 REFERENCE DRAWINGS 8 1 ELECTRICAL SCHEMATIC STAR DELTA...
Страница 53: ...51...
Страница 54: ...52 54622865 REV B 8 2 FOUNDATION PLAN 125 150 HP 90 110KW AIRCOOLED SINGLE STAGE CONTINUED...
Страница 55: ...53 54622865 REV B 8 2 FOUNDATION PLAN 125 150 HP 90 110 KW AIRCOOLED SINGLE STAGE...
Страница 56: ...8 3 FOUNDATION PLAN 200 HP 132 160 KW AIRCOOLED SINGLE STAGE CONTINUED 54622931 REV B 54...
Страница 57: ...8 3 FOUNDATION PLAN 200 HP 132 160 KW AIRCOOLED SINGLE STAGE 54622931 REV B 55...
Страница 58: ...56 8 4 FOUNDATION PLAN 125 150 HP 90 110 KW WATERCOOLED SINGLE STAGE CONTINUED 39925300 REV C...
Страница 59: ...57 8 4 FOUNDATION PLAN 125 150 HP 90 110 KW WATERCOOLED SINGLE STAGE 39925300 REV C...
Страница 60: ...58 8 5 FOUNDATION PLAN 200 HP 132 160 KW WATERCOOLED SINGLE STAGE CONTINUED 39926191 REV C...
Страница 61: ...59 8 5 FOUNDATION PLAN 200 HP 132 160 KW WATERCOOLED SINGLE STAGE 39926191 REV C...
Страница 62: ...60 8 6 FOUNDATION PLAN AIRCOOLED CONTINUED 100 150 HP 75 110 KW TWO STAGE 54622980 REV B...
Страница 63: ...61 54622980 REV B 8 6 FOUNDATION PLAN AIRCOOLED 100 150 HP 75 110 KW TWO STAGE...
Страница 64: ...62 8 7 FOUNDATION PLAN AIRCOOLED CONTINUED 200 HP 132 160 KW TWO STAGE 54623053 REV B...
Страница 65: ...63 54623053 REV B 8 7 FOUNDATION PLAN AIRCOOLED 200 HP 132 160 KW TWO STAGE...
Страница 66: ...64 8 8 FOUNDATION PLAN WATERCOOLED CONTINUED 100 150 HP 75 110 KW TWO STAGE 39925326 REV C...
Страница 67: ...65 8 8 FOUNDATION PLAN WATERCOOLED 100 150 HP 75 110 KW TWO STAGE 39925326 REV C...
Страница 68: ...66 8 9 FOUNDATION PLAN WATERCOOLED CONTINUED 200 HP 132 160 KW TWO STAGE 39926340 REV C...
Страница 69: ...67 8 9 FOUNDATION PLAN WATERCOOLED 200 HP 132 160 KW TWO STAGE 39926340 REV C...
Страница 70: ...68 8 10 FLOW SCHEMATIC AIRCOOLED SINGLE STAGE 54579081 REV A...
Страница 71: ...69...
Страница 72: ...70 8 11 FLOW SCHEMATIC WATERCOOLED 90 F 32 C SINGLE STAGE 54579503 REV A...
Страница 73: ...71...
Страница 74: ...72 8 12 FLOW SCHEMATIC WATERCOOLED 115 F 46 SINGLE STAGE 54579511 REV A...
Страница 75: ...73...
Страница 76: ...74 8 13 FLOW SCHEMATIC AIR COOLED TWO STAGE 54579644 REV A...
Страница 77: ...75...
Страница 78: ...76 8 14 FLOW SCHEMATIC WATERCOOLED 90 F 32 C TWO STAGE 54579693 REV A...
Страница 79: ...77...
Страница 80: ...78 8 15 FLOW SCHEMATIC WATERCOOLED 115 F 46 C TWO STAGE 54579727 REV A...
Страница 81: ...79...
Страница 82: ...80 8 16 TYPICAL SYSTEM FLOW DIAGRAMS TYPICAL SYSTEM FLOW DIAGRAM...
Страница 83: ...81 8 16 TYPICAL SYSTEM FLOW DIAGRAMS...
Страница 84: ...82 8 16 TYPICAL SYSTEM FLOW DIAGRAMS...
Страница 85: ...83 8 16 TYPICAL SYSTEM FLOW DIAGRAMS...
Страница 86: ...84 8 16 TYPICAL SYSTEM FLOW DIAGRAMS...
Страница 90: ...88 DATE RUN TIME WORK DONE QTY UNIT WORK HOURS MEASURE BY 10 0 MAINTENANCE RECORD...
Страница 91: ...89 DATE RUN TIME WORK DONE QTY UNIT WORK HOURS MEASURE BY MAINTENANCE RECORD...
Страница 92: ...90 DATE RUN TIME WORK DONE QTY UNIT WORK HOURS MEASURE BY MAINTENANCE RECORD...
Страница 93: ...91 DATE RUN TIME WORK DONE QTY UNIT WORK HOURS MEASURE BY MAINTENANCE RECORD...