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All In ONe DESICCANT DRYER SPECS.
MODEL#

 HEATER kW

DRY AIR (CFM) HOPPER CAPACITY (ILBS)
SCD-80U/40H-D 3.9 23.5 117
SCD-160U/80H-D 6 47 235
SCD-230U/120H-D 6 70 340
SCD-450U/200H-D 7.2 130 668
description

The Shini USA Auxiliaries SCD all-in-one honeycomb desiccant wheel compact dryer is a complete system. The all-in-one honeycomb dryer incorporates drying and dehumidifying along with a portable two-stage conveying package for mobile drying on demand.

Ideal for the plastics industry, these dryers have many day-to-day applications that may be a practical solution for your company’s needs. 

 

DESICCANT CABINET DRYER SPECS
MODEL#

 DRYER CAPACITY (Ibs/hr)

PIPE DIAMETER (in)

DIM. (LxWxH)

 

SD-40H-PHC-D-UL 30 2 30x19x50
SD-80H-PHC-D-UL 70 2 32x21x54
SD-120H-PHC-D-UL 100 2 32x21x54
SD-200H-PHC-D-UL 7.2 130 41x26x61
Description

The Shini USA silica gel honeycomb desiccant wheel dryers feature the latest in rotary wheel drying technology which allows dehumidifying, regenerating and cooling cycles to occur at the same time while delivering a dew point of -40°F with an option of -50°F.

DESICCANT wheel DRYing Cart SPECS.
MODEL#

 Hopper Capcity (Ibs)

Dry Air Capcity (CFM)

Process blower/heater (HP)/(kW)

 

SDD-80U-40H-D 117 23 .12/4
SDD-23OU/120H-D 340 70 .75/6
SDD-300U/200H-D 445 100 2.4/7.2
description

The Shini USA portable desiccant wheel dryer SDD series with a built-in dew point monitor features a silica gel honeycomb desiccant wheel dryer with a dual wall stainless steel insulated drying hopper mounted on a portable cart.

The portable desiccant wheel drying cart with the rotary wheel drying technology allows dehumidifying, regenerating and cooling cycles to occur at the same time while still delivering a dew point of -40°C.

 

hot air hopper dryers specs.
MODEL#

 Hopper Capcity (Cu/Ft)

Hooper Capcity (14.7)

Blower                 (HP)

 

SHD-12 0.42 14.7 0.1
SHD-25 0.88 30.8 0.2
SHD-50 1.76 61.6 0.2
SHD-150 5.29 247.1 0.3
SHD-300 10.59 370.6 0.5
description

The Hot Air Drying hopper works by drawing ambient air through a filter in to a heater/blower unit and is heated.  The hot air is circulated up through the material in the hopper and the moisture is carried up and out of the hopper.

Calculators

Power Flow Rate Temp Calculator

Calculate the electrical power, flow rate or temperature requirement.
airflow in standard cubic feet per minute
temperature rise in degrees F from the inlet to the exhaust
Watts = SCFM x ΔT/2.5

Temperature Conversion Calculator

Calculate the electrical power, flow rate or temperature requirement.
°F = ((( °C * 9) / 5 ) + 32)
°C = ((( °F - 32) * 5 ) / 9)

Three-Phase Unit Calculator

Fill in two values to find the 3rd.
W = LC * (V * √2)
V = (W / LC) / √2
LC = W / (V * √2)

Single Phase Unit Calculator

Fill in two values to find the 3rd.
W = LC * V
V = LC * W
LC = W / V

Ohms Law Calculator

Fill in two values to find the other two.

O = V / A

O = V² / W

O = W / A²

V = A * O = A * (V/A)

V = √(W * O)

V = W / A

A = V / O

A = W/ V

A = √(W / O)

W = A * V

W = V² / O

W = A² * O

Heat Transfer Through Convection Calculator

ρ = density (lb/ft3)

V = volume flow rate (ft3/hour)

Cp = specific heat (Btu/lb°F)

Ta-Tb = temperature differential (°F)

Q = ρ x V x Cp x (Ta-Tb)


Fill in four values

ρ = density (lb/ft3)
V = volume flow rate (ft3/hour)
Cp = specific heat (Btu/lb°F)
Ta-Tb = TD (°F)
Q = ρ x V x Cp x (Ta-Tb)

ACFM to SCFM

ACFM = airflow in actual cubic feet per minute

P = gage pressure (psi)

T = gas temperature °R = 460 + °F

SCFM = airflow in standard cubic feet per minute


Find Standard Cubic Feet per Minute based on data from your Actual Cubic Feet per Minute Rotameter

airflow in actual cubic feet per minute
gage pressure (psi)
gas temperature °R = 460 + °F
airflow in standard cubic feet per minute

Standard Flow Rate (SCFM) Calculator

Calculate the SCFM.
Actual cubic feet per minute
Actual pounds per square inch at Gauge
Actual temperature in °F. °R = 460 + °F
CFM * (PSI actual / 14.7psi)*(528°R / T actual)

Pressure Conversion

Fill in one value to calculate the other.
PSI = Bar * 14.504
Bar = PSI / 14.504

Mass Flow to volume Metric Flow

Fill in one value to calculate the other two
kg/h = Kilogram Per Hour (lb/min multiply by 27.216)
Lbs/min = Pounds per minute (kg/h divide by 27.216)
SCFM = Standard cubic feet per minute

Power Flow Rate Temp Calculator

Calculate the electrical power, flow rate or temperature requirement.
airflow in standard cubic feet per minute
temperature rise in degrees F from the inlet to the exhaust
Watts = SCFM x ΔT/2.5

Temperature Conversion Calculator

Calculate the electrical power, flow rate or temperature requirement.
°C = ((( °F - 32) * 5 ) / 9)
°F = ((( °C * 9) / 5 ) + 32)

Three-Phase Unit Calculator

Fill in two values to find the 3rd.
W = LC * (V * √2)
V = (W / LC) / √2
LC = W / (V * √2)

Single Phase Unit Calculator

Fill in two values to find the 3rd.
W = LC * V
V = LC * W
LC = W / V

Ohms Law Calculator

Fill in two values to find the other two.

O = V / A

O = V² / W

O = W / A²

V = A * O = A * (V/A)

V = √(W * O)

V = W / A

A = V / O

A = W/ V

A = √(W / O)

W = A * V

W = V² / O

W = A² * O

Heat Transfer Through Convection Calculator

ρ = density (lb/ft3)

V = volume flow rate (ft3/hour)

Cp = specific heat (Btu/lb°F)

Ta-Tb = temperature differential (°F)

Q = ρ x V x Cp x (Ta-Tb)


Fill in four values

ρ = density (lb/ft3)
V = volume flow rate (ft3/hour)
Cp = specific heat (Btu/lb°F)
Ta-Tb = TD (°F)
Q = ρ x V x Cp x (Ta-Tb)

ACFM to SCFM

ACFM = airflow in actual cubic feet per minute

P = gage pressure (psi)

T = gas temperature °R = 460 + °F

SCFM = airflow in standard cubic feet per minute


Find Standard Cubic Feet per Minute based on data from your Actual Cubic Feet per Minute Rotameter

airflow in actual cubic feet per minute
gage pressure (psi)
gas temperature °R = 460 + °F
airflow in standard cubic feet per minute

Standard Flow Rate (SCFM) Calculator

Calculate the SCFM.
Actual cubic feet per minute
Actual pounds per square inch at Gauge
Actual temperature in °F. °R = 460 + °F
CFM * (PSI actual / 14.7psi)*(528°R / T actual)

Pressure Conversion

Fill in one value to calculate the other.
PSI = Bar * 14.504
Bar = PSI / 14.504

Mass Flow to volume Metric Flow

Fill in one value to calculate the other two
Kg/h = Kilogram Per Hour (lb/min multiply by 27.216)
Lbs/min = Pounds per minute (kg/h divide by 27.216)
SCFM = Standard cubic feet per minute