Jumat, 08 Agustus 2008

AUTOMATION GLOSSARY

A
A/C – Air Conditioning
ACH – Air Changes Per Hour
Actuator – A device used to operate a damper or control valve.
AE – Architectural and Engineering; or Architect and Engineer
AFD – Adjustable-Frequency Drive
AHU – Air-Handling Unit, It can be a whole unit including the blower, heating and cooling elements, filter racks or chamber, dampers, humidifier, and other central equipment in direct contact with the airflow. This does not include the ductwork through the building.
Algorithm – A calculation method that produces a control output by operating on an error signal or a time series of error signals.
Analog – Continuously variable (e.g., a faucet controlling water from off to full flow).
ASD – Adjustable-Speed Drive
ASHRAE – American Society of Heating, Refrigerating and Air Conditioning Engineers, Inc.
ATC – Automatic Temperature Control
Automatic control system – A system that reacts to a change or imbalance in the variable it controls by adjusting other variables to restore the system to the desired balance.
B
Baffle – An orifice placed inside the duct to adjust the duct size to the damper size.
BAS – Building Automation System
BHP – Boiler Horsepower; also, Brake Horsepower
BMS – Building Management System
C
CAD – Computer-Aided Design
CBAS – Computrols Building Automation System
CFM – Cubic Feet per Minute
CHW – Chilled Water
CMMS – Computerized Maintenance Management System
CO2 – Carbon Dioxide
Compensation control – A process of automatically adjusting the setpoint of a given controller to compensate for changes in a second measured variable (e.g., outdoor air temperature). For example, the hot deck setpoint is normally reset upward as the outdoor air temperature decreases. Also called "reset control".
Controller – A device that senses changes in the controlled variable (or receives input from a remote sensor) and derives the proper correction output. Most controls are automatic but have user-inputs such as temperature set points, e.g., a thermostat. Controls may be analog or digital, or a combination.
Control agent – The medium in which the manipulated variable exists. In a steam heating system, the control agent is the steam and the manipulated variable is the flow of the steam.
Controlled medium – The medium in which the controlled variable exists. In a space temperature control system, the controlled variable is the space temperature and the controlled medium is the air within the space.
Control point – The actual value of the controlled variable (setpoint plus or minus offset).
Controlled Variable – The quantity or condition that is measured and controlled.
COP – Coefficient Of Performance
Corrective action – Control action that results in a change of the manipulated variable. Initiated when the controlled variable deviates from setpoint.
Cycle – One complete execution of a repeatable process. In basic heating operation, a cycle comprises one on period and one off period in a two-position control system.
Cycling – A periodic change in the controlled variable from one value to another. Out-of-control analog cycling is called "hunting". Too frequent on-off cycling is called "short cycling". Short cycling can harm electric motors, fans, and compressors.
Cycling rate – The number of cycles completed per time unit, typically cycles per hour for a heating or cooling system. The inverse of the length of the period of the cycle.
D
D-B – Design-Build
Damper – A hydraulic or mechanical device used to regulate airflow in an HVAC system.
Damper seal – Features used to restrict the leakage of a damper.
Damper system – The damper plus it's related components (e.g., duct work, diffusers, coils, and mixing boxes)
DB – Drybulb
DDC – Direct Digital Controls. See also Digital and Digital control.
Deadband – A range of the controlled variable in which no corrective action is taken by the controlled system and no energy is used. See also "zero energy band".
Deviation – The difference between the setpoint and the value of the controlled variable at any moment. Also called "offset".
Digital – A series of on and off pulses arranged to convey information. Morse code is an early example. Processors (computers) operate using digital language.
Digital control – A control loop in which a microprocessor based controller directly controls equipment based on sensor inputs and setpoint parameters. The programmed control sequence determines the output to the equipment.
DOAS – Dedicated Outdoor Air System
DOE – U.S. Department of Energy
Drive Blade – A damper blade that is driven directly by an actuator, a linkage, an axle, or a jackshaft connected to the drive blade in an adjacent damper section.
Droop – A sustained deviation between the control point and the setpoint in a two-position control system caused by a change in the heating or cooling load.
DX – Direct Expansion
E
Electric control – A control circuit that operates on line or low voltage and uses a mechanical means, such as a temperature-sensitive bimetal or bellows, to perform control functions, such as actuating a switch or positioning a potentiometer. The controller signal usually operates or positions an electric actuator or may switch an electrical load directly or through a relay.
Electronic control – A control circuit that operates on low voltage and uses solid-state components to amplify input signals and perform control functions, such as operating a relay or providing an output signal to position an actuator. The controller usually furnishes fixed control routines based on the logic of the solidstate components.
EMS – Energy Management System
Enhanced proportional-integral-derivative (EPID) control – A control algorithm that enhances the standard PID algorithm by allowing the designer to enter a startup output value and error ramp duration in addition to the gains and setpoints. These additional parameters are configured so that at startup the PID output varies smoothly to the control point with negligible overshoot or undershoot.
EPA – U.S. Environmental Protection Agency
F
Final control element – A device such as a valve or damper that acts to change the value of the manipulated variable. Positioned by an actuator.
Fire Damper – A thermally actuated damper arranged to automatically restrict the passage of fire and/or heat at a point where an opening violates the integrity of a fire partition or floor.
FPM – Feet Per Minute
G
GPM – Gallons Per Minute
H
HEPA – High-Efficiency Particulate Air
HTML – Hypertext Markup Language
HTTP – Hypertext Transfer Protocol
Hunting – See Cycling
HWR – Hot Water Return
HWS – Hot Water Supply
I
IAQ – Indoor Air Quality
Ideal Damper System – A system with a linear relationship between the percent open damper position and the percent of full airflow
IS – Information Systems
IT – Information Technology
L
Lag – A delay in the effect of a changed condition at one point in the system, or some other condition to which it is related. Also, the delay in response of the sensing element of a control due to the time required for the sensing element to sense a change in the sensed variable.
Leakage – The amount of air passing through a damper with a given pressure drop and a given torque holding the damper closed.
LEED™ – Leadership in Energy and Environmental Design, a designation by the U.S. Green Building Council
Load – In a heating or cooling system, the heat transfer that the system will be called upon to provide. Also, the work that the system must perform.
M
Manipulated variable – The quantity or condition regulated by the automatic control system to cause the desired change in the controlled variable.
MEC – Mechanical, Electrical, Communication
MEP – Mechanical, Electrical, Plumbing
Measured variable – A variable that is measured and may be controlled (e.g., discharge air is measured and controlled, outdoor air is only measured).
Microprocessor-based control – A control circuit that operates on low voltage and uses a microprocessor to perform logic and control functions, such as operating a relay or providing an output signal to position an actuator. Electronic devices are primarily used as sensors. The controller often furnishes flexible DDC and energy management control routines.
Modulating – An action that adjusts by minute increments and decrements.
O
O&M – Operations and Maintenance
OA – Outside Air
OEM – Original Equipment Manufacturer
Offset – A sustained deviation between the control point and the setpoint of a proportional control system under stable operating conditions.
On/off control – A simple two-position control system in which the device being controlled is either full on or full off with no intermediate operating positions available. Also called "two-position control".
Opposed Blade Damper – A damper constructed so adjacent blades rotate opposite to each other.
P
Parallel Blade Damper – A damper constructed so each blade rotates in the same direction.
PID – Proportional, Integral, Derivative
PM – Preventive Maintenance
Pneumatic control – A control circuit that operates on air pressure and uses a mechanical means, such as a temperature-sensitive bimetal or bellows, to perform control functions, such as actuating a nozzle and flapper or a switching relay. The controller output usually operates or positions a pneumatic actuator, although relays and switches are often in the circuit.
PPM – Parts Per Million
Process – A general term that describes a change in a measurable variable (e.g., the mixing of return and outdoor air streams in a mixed-air control loop and heat transfer between cold water and hot air in a cooling coil). Usually considered separately from the sensing element, control element, and controller.
Proportional band – In a proportional controller, the control point range through which the controlled variable must pass to move the final control element through its full operating range. Expressed in percent of primary sensor span. Commonly used equivalents are "throttling range" and "modulating range", usually expressed in a quantity of engineering units (degrees of temperature).
Proportional control – A control algorithm or method in which the final control element moves to a position proportional to the deviation of the value of the controlled variable from the setpoint.
Proportional-Integral (PI) control – A control algorithm that combines the proportional (proportional response) and integral (reset response) control algorithms. Reset response tends to correct the offset resulting from proportional control. Also called "proportional-plus reset" or "two-mode" control.
Proportional-Integral-Derivative (PID) control – A control algorithm that enhances the PI control algorithm by adding a component that is proportional to the rate of change (derivative) of the deviation of the controlled variable. Compensates for system dynamics and allows faster control response. Also called "threemode" or "rate-reset" control.
R
RFP – Request For Proposal
RFS – Request For Submittal
RH – Relative Humidity
RO – Reverse Osmosis
ROI – Return On Investment
Reset Control – See Compensation control.
RTD – Resistance Temperature Detector
S
SCFM – Standard Cubic Feet per Minute
Sensing element – A device or component that measures the value of a variable.
Setpoint – The value at which the controller is set (e.g., the desired room temperature set on a thermostat). The desired control point.
Short cycling – See Cycling.
Smoke Damper – A damper arranged to control passage of smoke through an opening or a duct.
Step control – Control method in which a multiple-switch assembly sequentially switches equipment (e.g., electric heat, multiple chillers) as the controller input varies through the proportional band. Step controllers may be actuator driven, electronic, or directly activated by the sensed medium (e.g., pressure, temperature).
T
TAB – Testing And Balancing
TES – Thermal Energy Storage
Throttling range – In a proportional controller, the control point range through which the controlled variable must pass to move the final control element through its full operating range. Expressed in values of the controlled variable (e.g., degrees Fahrenheit, percent relative humidity, pounds per square inch). Also called "proportional band". In a proportional room thermostat, the temperature change required to drive the manipulated variable from full off to full on.
Time constant – The time required for a dynamic component, such as a sensor, or a control system to reach 63.2 percent of the total response to an instantaneous (or "step") change to its input. Typically used to judge the responsiveness of the component or system.
Two-position control – See on/off control.
U
UL – Underwriter’s Laboratory
UV – Ultraviolet
V
VAV – Variable-Air Volume
VFD – Variable-Frequency Drive
VSD – Variable-Speed Drive
X
XML – Extensible Markup Language
W
WAN – Wide Area Network
WB – Wetbulb
WC – Water Column
WG – Water Gauge
Z
Zero energy band – An energy conservation technique that allows temperatures to float between selected settings, thereby preventing the consumption of heating or cooling energy while the temperature is in this range.
Zoning – The practice of dividing a building into sections for heating and cooling control so that one controller is sufficient to determine the heating and cooling

Senin, 07 Juli 2008

Detections Sensor

JENIS - JENIS DETEKTOR    
Secara umum detektor dibagi menjadi 2 jenis :
  • Deteksi dengan kontak langsung (bersentuhan dengan benda benda yang akan dideteksi)
  • Deteksi dengan tidak kontak langsung (tidak bersentuhan dengan benda yang akan dideteksi)
Detektor yang termasuk dalam jenis DETEKSI DENGAN KONTAK LANGSUNG :
  1. Limit Switch
  2. Pressure Switch
Detektor yang termasuk dalam jenis DETEKSI DENGAN TIDAK KONTAK LANGSUNG :
  1. Photoelectric
  2. Proximity
  3. Ultrasonic
Limit Switch
Bekerja berdasarkan perubahan posisi dari actuator (Bagian yang bersentuhan dengan objek yang dideteksi) yang menggerakkan kontak blok yang berada di dalam limit switch tersebut.
Pemilihan dari jenis actuator ini disesuaikan dengan aplikasi, ukuran, jenis dan bentuk obyek yang akan dideteksi.
Pressure Switch
Adalah alat untuk mempertahankan tekanan pada batasan tertentu (diantara batas PH, dengan batas bawah PB). Apabila tekanan mencapai nilai PH (maka switch akan berubah kondisi dari On ke Off) dan apabila tekanan berkurang dan mencapai nilai PB (maka switch akan berubah kondisi dari Off ke On).
Selisih antara nilai PH dan PB disebut Differensial.

Ada 2 tipe Pressure Switch: Fixed Differential dan Adjustable Differential
  1. Diferensial tetap (Fixed differential): Nilai diferensial tetap (tertentu), hanya nilai PH yang dapat diatur. Nilai PB didapat dari nilai PH dikurangi dengan nilai diferensialnya.
  2. Diferensial tidak tetap (Adjustable differential): Nilai diferensialnya dapat diatur, karena baik nilai PH maupun PB nya masing-masing dapat diatur.

Pressure Switch dibagi menjadi 2 jenis: Elektromekanik dan Elektronik    
  1. Elektromekanik: Bekerja dengan menggunakan komponen mekanik seperti pegas untuk mengukur tekanannya.
  2. Elektronik: Bekerja dengan menggunakan komponen elektronik (lebih presisi).

Pressure Transmitter atau Pressure Sensor alat pengukur tekanan dengan output berupa output analog (dapat berupa tegangan 0-10VDC atau berupa arus 4..20 mA), perubahan nilai output tersebut sebanding dengan perubahan tekanan yang dirasakan.

Proximity   
Ada dua tipe proximity: Inductive Proximity dan Capacitive Proximity.
- Inductive Proximity:

  • Bekerja berdasarkan perubahan induktansi apabila ada obyek metal yang berada dalam daerah kerjanya. Hanya dapat mendeteksi benda yang terbuat dari metal, dengan jarak deteksi maksimum 6cm. Jarak deteksi dipengaruhi dari jenis metal obyeknya (misal: jarak deteksi untuk besi berbeda dengan tembaga, dll).

- Capacitive Proximity:

  • Bekerja berdasarkan perubahan kapasitas apabila ada obyek yang berada dalam daerah deteksinya.


  • Dapat mendeteksi semua jenis benda dalam jarak deteksi maksimum 2 cm.


  • Berdasarkan tipe pemasangan / mounting-nya, proximity ada 2 macam: Flush dan Non Flush.


  • Flush maksudnya dalam pemasangannya dapat dibenamkan dalam metal.


  • Non Flush maksudnya dalam pemasangannya harus diberi jarak antara proximity dengan benda-benda metal disekitarnya.


Ultrasonic
Bekerja dengan mendeteksi pantulan gelombang suara ultra oleh obyek yang berada dalam daerah deteksinya.
Dapat mendeteksi segala jenis benda dalam jarak deteksi maksimum 1 M.
Photoelectric   
  • Terdiri dari bagian transmitter (pemancar cahaya) dan bagian receiver (penerima cahaya).
  • Photoelectric bekerja berdasarkan ada tidaknya cahaya (berasal dari transmitter) yang diterima oleh bagian reciever.
  • Ada dua jenis switching dari sensor ini, yaitu Dark On dan Light On.
- Dark On: Sensor akan On jika tidak ada cahaya yang diterima oleh receiver.
- Light On: Sensor akan On jika ada cahaya yang diterima oleh receiver.    

Photoelectric dapat mendeteksi segala jenis benda dengan jarak deteksi maksimum 100 M.
Sistem kerja photoelectric dibagi menjadi lima, yaitu: Thru-beam, Reflex, Polarized Reflex, Diffuse dan Diffuse with Background Suppression.
  • Thru-beam: Pada tipe ini Transmitter dan Receiver terpisah dalam 2 unit, bila obyek menghalangi cahaya dari transmitter ke receiver maka keluaran dari sensor ini akan berubah sesuai dengan jenis switching dari sensor tersebut.
  • Reflex: Pada tipe ini Transmitter dan Receiver berada dalam 1 unit, dan dibutuhkan sebuah reflektor untuk memantulkan cahaya dari transmitter ke receivernya. Bila obyek menghalangi cahaya yang diterima receiver, maka keluaran dari sensor akan berubah sesuai dengan jenis switching-nya. Tipe ini tidak bisa digunakan untuk mendeteksi obyek yang mengkilap, karena pantulan cahaya dari trans mitter oleh obyek yg mengkilap dapat mengacaukan kerja sensor tersebut.
  • Polarized Reflex: Merupakan pengembangan dari tipe refleks, sehingga tipe ini bisa digunakan untuk mendeteksi obyek yang mengkilap.
  • Diffuse: Pada tipe ini Transmitter dan Receiver berada dalam 1 unit. Apabila receiver menerima cahaya dari transmitter yang dipantulkan oleh obyek, maka keluaran dari sensor akan berubah sesuai dengan jenis switching-nya .
  • Diffuse With Background Suppression: Tipe ini merupakan pengembangan dari tipe diffuse, sensor ini dapat digunakan untuk mendeteksi obyek dengan latar belakang. Jarak deteksi pada sistem ini dapat diatur sehingga hanya pantulan dari obyeknya yang mengubah keluaran dari sensor, sedangkan pantulan dari latar belakang tidak akan mengubah keluaran dari sensor.

Osiconcept (Offering Simplicity through Innovation) merupakan konsep baru dari Schneider Electric di bidang Sensor (Photoelectric, Proximity, Limit Switch, Pressure Switch). Dengan konsep ini memudahkan Anda dalam memilih sensor yang tepat sesuai dengan kebutuhan aplikasi Anda:
  1. Photoelectric dengan Osiconcept menggabungkan ke 5 tipe (thru-beam, reflex, polarized reflex, diffuse dan diffuse with background suppression) include productnya.
  2. Proximity dengan Osiconsept menggabungkan tipe Flush dan Non Flush , include product.
  3. Limit Switch dengan Osiconcept menawarkan limit switch modular yaitu: baik kepala, body, dan kontak blok dapat saling dipertukarkan, sehingga menghemat waktu dan biaya pemeliharaan
  4. Pressure Switch dengan Osiconcept menawarkan kemudahan dalam hal pengaturan parameter tekanan (PH, PB, dll.)

Keuntungan dengan Osiconcept:
  • Bagi pembuat mesin / OEM: Membuat desain mesin menjadi lebih mudah; dengan Osiconcept sensor dapat diadaptasikan dengan berbagai keadaan / kondisi sesuai dengan keinginan Anda. Osiconcept membuat mesin Anda lebih fleksibel untuk berbagai aplikasi.
  • Bagi Penjual / Toko: Memudahkan Anda dalam memilih sensor yang cocok dengan kebutuhan pelanggan; Osiconcept menggabungkan beberapa jenis sensor ke dalam satu produk sehingga mengurangi jumlah pilihan sensor. Sensor dengan Osiconcept fleksibel untuk berbagai aplikasi pelanggan Anda.
  • Bagi Pengguna / end user: Mempersingkat waktu berhenti mesin Anda pada waktu pemeliharaan; Osiconcept menawarkan produk sensor yang fleksibel, mudah dalam instalasi dan pengaturannya.

Schneider Electric dengan product Telemecanique menyediakan 3 pilihan untuk sensor:
  • Tipe Universal: Dilengkapi dengan Osiconcept, cocok untuk berbagai kebutuhan Anda.
  • Tipe Optimum: Sensor tipe ekonomis dengan berbagai pilihan jenis yang dapat disesuaikan dengan kebutuhan Anda.
  • Tipe Aplikasi: Untuk aplikasi khusus yang membutuhkan sensor dengan spesifikasi tertentu.

Tipe koneksi:
  • Kabel: sensor telah dilengkapi dengan kabel, sehingga cocok untuk pemasangan di daerah lembab (IP lebih tinggi).
  • Konektor: sensor dilengkapi dengan konektor, memudahkan dalam pemeliharaan (penggantian).
  • Screw clamp terminals: cocok apabila sensor dipasang cukup jauh dari interfacenya (PLC, Pilot Light dll.) dan dibutuhkan panjang kabel yang fleksibel.




Sabtu, 07 Juni 2008

HVAC FORMULA

Useful Formulas
 
-        Total Heat (BTU/hr) = 4.5 x cfm x  ∆h (std. air)
-        Sensible Heat (BTU/hr) = 1.1 x cfm x  ∆t   (std. air) -        Latent Heat (BTU/hr) = 0.69 x cfm x ∆gr. (std. air)
    NOTE: For conditions other than standard air please see this page.

-        Total Heat (BTU/hr) = 500 x gpm x  ∆t (water)
-        TONS = 24 x gpm x ∆t (water)
-        GPM cooler = (24 x TONS) / ∆t (water)
   
-        Fluid Mixture   Tm = (Xt1 + Yt2) / X + Y     (this works for air or water)
-        BTU/hr = 3.413 x watts = HP x 2546 = Kg Cal x 3.97
-        Lb. = 453.6 grams = 7000 grains
-        psi = ft. water/2.31 = in. hg/2.03 = in. water/27.7 = 0.145 x kPa
-        Ton = 12,000 BTU/hr = 0.2843 x KW
-        HP (air) = cfm x   ∆p (in.H2O)/6350 x Eff.
-        HP (water) = gpm x  ∆p (ft.)/3960 x Eff.
-        Gal. = FT3/7.48 = 3.785 Liters = 8.33 lb. (water) = 231 in. 3
-        gpm = 15.85 x L/S                                                                         
-        cfm = 2.119 x L/S                                          
-        Liter  = 3.785 x  gal = 0.946 x quart = 28.32 x ft3
-        Therm = 100,000 BTU = MJ/105.5
-        Watt/sq. ft. = 0.0926 x W/M2
-        yd. = 1.094 x M
-        ft. = 3.281 x M
-        ft2 = 10.76 x M2
-        ft3 = 35.31 x M3
-        ft/min = 196.9 x M/S
-        PPM (by mass) = mg/kg


NOTE:         Liter/sec is the proper SI term for liquid flow.  M3/sec is the proper SI term for airflow. Due to the awkward nature of using M3/S at low air flow rates (lots of decimal points), L/S is commonly used to express air flow for HVAC applications.

Jumat, 09 Mei 2008

HVAC FORMULAS

Dewpoint and Wetbulb Temperature
The following equations are used to calculate the wetbulb temperature of air given the drybulb temperature and relative humidity %. The equation assumes that the ambient barometric pressure is constant at a value of 29.15 "Hg since the change in wetbulb temperature is very insignificant with changes in the ambient barometric pressure.
Input VariablesSystem VariablesOutput Variables
RHRelative Humidity %
e
Ambient vapor pressure in kPa
Td
Dewpoint temperature in degrees C
TDrybulb temperature in degrees C
GAMMA
Constant based upon ambient barometric pressure
Tw
Wetbulb temperature
    
DELTA
Constant
  
  
Equations
e(RH / 100) * 0.611*EXP(17.27*T/(T+237.3))
Td[116.9 + 237.3 ln(e)] / [16.78 – ln(e)]
GAMMA0.00066*P (Use P = 98.642 kPa. This is equal to 29.15 "Hg… about the pressure we normally experience.)
DELTA4098*(e / Td + 237.3)^2
Wetbulb Temperature in Degrees F Equals:
Tw1.8 * [[(GAMMA*T) + (DELTA*Td)] / (GAMMA + DELTA)] + 32
Dewpoint Temperature in Degrees F Equals:
Td1.8 * [[116.9 + 237.3 ln(e)] / [16.78 – ln(e)]] + 32

Air Handling Unit Tonnage Output
The following equation calculates the refrigeration output in Tonns of a coil.
Input VariablesOutput Variables
T1
Entering air temperature of the coil in degrees F
TONNS
Dewpoint temperature in degrees F
T2
Leaving air temperature of the coil in degrees F
  
  
CFM
Volume of air passing through the coil
  
  
Equation
TONNS
1.08*(T1 – T2)*CFM
Chiller Tonnage Output
The following equation calculates the refrigeration output in Tonns of a chiller.
Input VariablesOutput Variables
T1
Chilled water return temperature in degrees F
TONNS
Energy output of the chiller
T2
Chilled water supply temperature in degrees F
  
  
GPM
Volume of water passing through the chiller
  
  
Equation
TONNS
GPM*(T1 – T2) / 24
Chiller Coefficient of Performance
The following equation calculates the ratio of energy used to the energy output of a chiller.
Input Variables
T1Chilled water return temperature in degrees F
T2Chilled water supply temperature in degrees F
GPMVolume of water passing through the chiller
KWKilowatts

Output Variables
COPEnergy output of the chiller

Equation
COP(T1 – T2) * GPM * 0.0417 / (0.28433 * KW)
VAV Box Air Flow Rate (CFM)
Input Variables
ADuct area in sq. ft
PvPressure in inches of H2O from PV3

Output Variables
VVelocity of the air
CFMCubic feet of air per minute

Equation
QAV
0.0763 is the density of dry air at 60o F
The duct diameter units are in ft.
CFM1096(Duct Diameter/2)2(√(Pv/.0763))
Heat Index Calculation
The following equation calculates the heat index of the outside air.
Input Variables
TfOutside air temperature in degrees F
RHOutside air relative humidity % (enter 50 for 50%, etc.)

Output Variables
HIHeat index

Equation
HI HI = -42.379 + 2.04901523T + 10.14333127R - 0.22475541TR - 6.83783x10-3T2 - 5.481717x10-2R2 + 1.22874x10-3T2R + 8.5282x10-4TR2 - 1.99x10-6T2R2

where T = ambient dry bulb temperature (°F)
R = relative humidity (integer percentage).
Because this equation is obtained by multiple regression analysis, the heat index value (HI) has an error of ±1.3°F. Even though temperature and relative humidity are the only two variables in the equation, all the variables on the lists above are implied.

Wind Chill Temperature Calculation
The following equation calculates the wind chill temperature of the outside air.
Input Variables
VOutside air velocity in Miles per Hour
TOutside air temperature in degrees F

Output Variables
WCWind chill temperature

Equation
WC0.0817(3.71(V)^0.5 + 5.81 - 0.25V)(T - 91.4) + 91.4
Pressure Measurement
Velocity Pressure

Where V = Air Velocity (FPM)
Pv = Velocity Pressure (in. w.g.)

Equivalent Measures of Pressure
1lb. per square inch= 144lbs. per sq. ft.
= 2.036in. Mercury at 32°F
= 2.311ft. Water at 70°F
= 27.74in. Water at 70°F
1 inch Water at 70°F= .03609lb. per sq. in.
= .5774oz. per sq. in.
= 5774oz. per sq. in.
= 5.196lbs. per sq. ft.
1 ounce per sq. in.= 1272in. Mercury at 32°F
= 1.733in. Water at 70°F
1ft. Water at 70°F= .433lbs. per sq. in.
= 62.31lbs. sq. ft.
1 Atmosphere= 14.696lbs. per sq. in.
= 2116.3lbs. per sq. ft.
= 33.96ft. Water at 70°F
= 29.92in. Mercury at 32°F
1in. Mercury at 32°F= .491lbs. per sq. in.
= 7.86oz. per sq. in.
= 1.136ft. Water at 70°F
= 13.63in. Water at 70°F

Compression Ratio
Compression Ratio= Absolute Discharge Pressure / Absolute Suction Pressure
Absolute Discharge Pressure= gauge reading + 15psi
Absolute Suction Pressure= gauge reading + 15psi

Refrigerant Mass Flow Rate
Mass Flow Rate
(Pounds/Minute)
= Piston Displacement X Refrigerant Density
= (Cubic Feet/Minute) X (Pounds/Cubic Feet)