116
Table 97 — Cooling Information Display Table
Next Stage EDT Decrease (ADD.R)
This variable represents (if adding a stage of cooling) how much
the temperature should drop in degrees depending on the
R.PCT
calculation and how much additional capacity is to be added.
ADD.R
=
R.PCT
*
(
C.CAP
– capacity after adding a cooling stage)
For example: If
R.PCT
= 0.2 and the control would be adding
20% cooling capacity by taking the next step up, 0.2 times 20 =
4°F
ADD.R
Next Stage EDT Increase (SUB.R)
This variable represents (if subtracting a stage of cooling) how
much the temperature should rise in degrees depending on the
R.PCT
calculation and how much capacity is to be subtracted.
SUB.R
=
R.PCT
* (
C.CAP
– capacity after subtracting a cool-
ing stage)
For example: If
R.PCT
= 0.2 and the control would be subtract-
ing 30% capacity by taking the next step down, 0.2 times –30 =
–6°F
SUB.R
.
Rise Per Percent Capacity (R.PCT)
This is a real time calculation that represents the amount of de-
grees of drop/rise across the evaporator coil versus percent of
current running capacity.
R.PCT
= (
MAT
–
EDT
)/
C.CAP
Cap Deadband Subtracting (Y.MIN)
This is a control variable used for Low Temp Override
(
L.TMP
) and Slow Change Override (
SLOW
).
Y.MIN
= –
SUB.R
*0.4375
Cap Deadband Adding (Y.PLU)
This is a control variable used for High Temp Override
(
H.TMP
) and Slow Change Override (
SLOW
).
Y.PLU
= –
ADD.R
*0.4375
Cap Threshold Subtracting (Z.MIN)
This parameter is used in the calculation of
SMZ
and is calcu-
lated as follows:
Z.MIN
=
Configuration
COOL
Z.GN
* (–10 + (4*
(
–
SUB.R
))) * 0.6
Cap Threshold Adding (Z.PLU)
This parameter is used in the calculation of SMZ and is calcu-
lated as follows:
Z.PLU
=
Configuration
COOL
Z.GN
* (10 + (4*
(–
ADD.R
))) * 0.6
High Temp Cap Override (H.TMP)
If stages of mechanical cooling are on and the error is greater
than twice
Y.PLU
, and the rate of change of error is greater
than 0.5
F, then a stage of mechanical cooling will be added
every 30 seconds. This override is intended to react to situa-
tions where the load rapidly increases.
Low Temp Cap Override (L.TMP)
If the error is less than twice
Y.MIN
, and the rate of change of
error is less than –0.5
F, then a mechanical stage will be re-
moved every 30 seconds. This override is intended to quickly
react to situations where the load is rapidly reduced.
Pull Down Cap Override (PULL)
If the error from set point is above 4
F, and the rate of change
is less than –1
F per minute, then pulldown is in effect, and
“SUM” is set to 0. This keeps mechanical cooling stages from
being added when the error is very large, but there is no load in
the space. Pulldown for units is expected to rarely occur, but is
included for the rare situation when it is needed. Most likely
pulldown will occur when mechanical cooling first becomes
available shortly after the control goes into an occupied mode
(after a warm unoccupied mode).
ITEM
EXPANSION
RANGE
UNITS
CCN POINT
WRITE STATUS
COOL
COOLING INFORMATION
C.CAP
Current Running Capacity
%
CAPTOTAL
CUR.S
Current Cool Stage
COOL_STG
REQ.S
Requested Cool Stage
CL_STAGE
MAX.S
Maximum Cool Stages
CLMAXSTG
DEM.L
Active Demand Limit
%
DEM_LIM
forcible
SUMZ
COOL CAP. STAGE CONTROL
SMZ
Capacity Load Factor
–100 to +100
SMZ
ADD.R
Next Stage EDT Decrease
^F
ADDRISE
SUB.R
Next Stage EDT Increase
^F
SUBRISE
R.PCT
Rise Per Percent Capacity
RISE_PCT
Y.MIN
Cap Deadband Subtracting
Y_MINUS
Y.PLU
Cap Deadband Adding
Y_PLUS
Z.MIN
Cap Threshold Subtracting
Z_MINUS
Z.PLU
Cap Threshold Adding
Z_PLUS
H.TMP
High Temp Cap Override
HI_TEMP
L.TMP
Low Temp Cap Override
LOW_TEMP
PULL
Pull Down Cap Override
PULLDOWN
SLOW
Slow Change Cap Override
SLO_CHNG
HMZR
HUMIDIMIZER
CAPC
Humidimizer Capacity
HMZRCAPC
C.EXV
Condenser EXV Position
COND_EXV
B.EXV
Bypass EXV Position
BYP_EXV
RHV
Humidimizer 3-Way Valve
HUM3WVAL
C.CPT
Cooling Control Point
COOLCPNT
EDT
Evaporator Discharge Tmp
EDT
H.CPT
Heating Control Point
HEATCPNT
LAT
Leaving Air Temperature
LAT
Содержание Weathermaster 48P2030-100
Страница 130: ...130 Fig 19 Typical Power Schematic Sizes 040 075 Shown ...
Страница 131: ...131 Fig 20 Main Base Board Input Output Connections ...
Страница 132: ...132 Fig 21 RXB EXB CEM SCB Input Output Connections ...
Страница 133: ...133 Fig 22 Typical Gas Heat Unit Control Wiring 48P030 100 Units Shown ...
Страница 134: ...134 Fig 23 Typical Electric Heat Wiring 50P030 100 Units Shown ...
Страница 135: ...135 Fig 24 Typical Power Wiring 115 V ...
Страница 136: ...136 Fig 25 Typical Gas Heat Section Size 030 050 Units Shown ...
Страница 138: ...138 Fig 27 Component Arrangement Size 030 035 Units ...
Страница 139: ...139 Fig 28 Component Arrangement Size 040 075 Units ...
Страница 140: ...140 Fig 29 Component Arrangement Size 090 100 Units ...