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Bank kapasitor

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Menerangkan apakah itu bank kapasitor, fungsi dan kaedah mengira C/K setting.

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KAPASITOR BANK
FUNGSI UTAMA KAPASITOR BANK •Memperbaiki faktor kuasa elektrik khususnya pada pemasangan arus AC dengan nilai kuasa besar seperti penggunaan di industri.
FUNGSI KAPASITOR BANK SELAIN DARI MEMPERBAIKI POWER FACTOR (PF); • Membekalkan kuasa reaktif dengan tujuan untuk memaksimakan penggunaan kuasa komplek (kva). • Mengurangi terjadinya Voltage drop atau voltan menurun. • Mencegah overload atau beban lebih pada transformer kerana kapasitor bank boleh berfungsi juga sebagai kuasa tambahan. • Mencegah kenaikan suhu kabel (temperature). • Mengawal Efisiensi /kuasa dengan menurunkan KVA secara total kerana penggunaan KVA lebih efisien dengan nilai Kw yang digunakan. • Meminimakan kerugian pada jaringan elektrik. • Mencegah denda daripada Pembekal Tenaga Seperti Tenaga Nasional Berhad(Semenanjung Malaysia), Sabah Elektricity Sdn. Bhd.(SESB),Sarawak Energy Berhad(SEB) kerana adanya kuasa reaktif.
EXAMPLE: 1 A 3 PHASE, 5 KW INDUCTION MOTOR HAS A P.F (POWER FACTOR) OF 0.75 LAGGING. WHAT SIZE OF CAPACITOR IN KVAR IS REQUIRED TO IMPROVE THE P.F (POWER FACTOR) TO 0.90? Solution #1 (By Simple Table Method) • Motor Input = 5kW • From Table, Multiplier to improve PF from 0.75 to 0.90 is .398 • Required Capacitor kVAR to improve P.F from 0.75 to 0.90 • Required Capacitor kVAR = kW x Table 1 Multiplier of 0.75 and 0.90 = 5kW x .398 = 1.99 kVAR • And Rating of Capacitors connected in each Phase, 1.99/3 = 0.663 kVAR
EXAMPLE: 1 A 3 PHASE, 5 KW INDUCTION MOTOR HAS A P.F (POWER FACTOR) OF 0.75 LAGGING. WHAT SIZE OF CAPACITOR IN KVAR IS REQUIRED TO IMPROVE THE P.F (POWER FACTOR) TO 0.90? Solution # 2 (Classical Calculation Method) • Motor input = P = 5 kW • Original P.F = Cosθ1 = 0.75 • Final P.F = Cosθ2 = 0.90 • θ1 = Cos-1 = (0.75) = 41°.41; Tan θ1 = Tan (41°.41) = 0.8819 • θ2 = Cos-1 = (0.90) = 25°.84; Tan θ2 = Tan (25°.50) = 0.4843 • Required Capacitor kVAR to improve P.F from 0.75 to 0.90 • Required Capacitor kVAR = P (Tan θ1 – Tan θ2) = 5kW (0.8819 – 0.4843) = 1.99 kVAR • And Rating of Capacitors connected in each Phase, 1.99/3 = 0.663 kVAR
EXAMPLE 2: AN ALTERNATOR IS SUPPLYING A LOAD OF 650 KW AT A P.F (POWER FACT OR) OF 0.65. WHAT SIZE OF CAPACITOR IN KVAR IS REQUIRED TO RAISE THE P.F (POWER FACTOR) TO UNITY (1)? AND HOW MANY MORE KW CAN THE ALTERNATOR SUPPLY FOR THE SAME KVA LOADING WHEN P.F IMPROVED. Solution #1 (By Simple Table Method) • Supplying kW = 650 kW • From Table 1, Multiplier to improve PF from 0.65 to unity (1) is 1.169 • Required Capacitor kVAR to improve P.F from 0.65 to unity (1) • Required Capacitor kVAR = kW x Table 1 Multiplier of 65 and 100 = 650kW x 1.169 = 759.85 kVAR • We know that P.F = Cosθ = kW/kVA . . .or • kVA = kW / Cosθ = 650/0.65 = 1000 kVA • When Power Factor is raised to unity (1) • No of kW = kVA x Cosθ = 1000 x 1 = 1000kW • Hence increased Power supplied by Alternator, 1000kW – 650kW = 350kW
EXAMPLE 2: AN ALTERNATOR IS SUPPLYING A LOAD OF 650 KW AT A P.F (POWER FACT OR) OF 0.65. WHAT SIZE OF CAPACITOR IN KVAR IS REQUIRED TO RAISE THE P.F (POWER FACTOR) TO UNITY (1)? AND HOW MANY MORE KW CAN THE ALTERNATOR SUPPLY FOR THE SAME KVA LOADING WHEN P.F IMPROVED. Solution # 2 (Classical Calculation Method) • Supplying kW = 650 kW • Original P.F = Cosθ1 = 0.65 • Final P.F = Cosθ2 = 1 • θ1 = Cos-1 = (0.65) = 49°.45; Tan θ1 = Tan (41°.24) = 1.169 • θ2 = Cos-1 = (1) = 0°; Tan θ2 = Tan (0°) = 0 • Required Capacitor kVAR to improve P.F from 0.75 to 0.90 • Required Capacitor kVAR = P (Tan θ1 – Tan θ2) = 650kW (1.169– 0) = 759.85 kVAR
HOW TO CALCULATE THE REQUIRED CAPACITOR BANK VALUE IN BOTH KVAR AND FARADS? (HOW TO CONVERT FARADS INTO KVAR AND VICE VERSA)
EXAMPLE: 3 A single phase 400V, 50hz, motor takes a supply current of 50A at a P.F (power factor) of 0.6. The motor power factor has to be improved to 0.9 by connecting a capacitor in parallel with it. Calculate the required capacity of capacitor in both kvar and farads. Solution #1 (by simple table method) • Motor input = p = v x i x cosθ = 400V x 50A x 0.6 = 12kw • From table, multiplier to improve pf from 0.60 to 0.90 is 0.849 • Required capacitor kvar to improve P.F from 0.60 to 0.90 • Required capacitor kvar = kw x table multiplier of 0.60 and 0.90 = 12kw x 0.849 = 10.188 kvar
EXAMPLE: 3 A SINGLE PHASE 400V, 50HZ, MOTOR TAKES A SUPPLY CURRENT OF 50A AT A P.F (POWER FACTOR) OF 0.6. THE MOTOR POWER FACTOR HAS TO BE IMPROVED TO 0.9 BY CONNECTING A CAPACITOR IN PARALLEL WITH IT. CALCULATE THE REQUIRED CAPACITY OF CAPACITOR IN BOTH KVAR AND FARADS. Solution # 2 (Classical Calculation Method) • Motor Input = P = V x I x Cosθ = 400V x 50A x 0.6 = 12kW • Actual P.F = Cosθ1 = 0.6 • Required P.F = Cosθ2 = 0.90 • θ1 = Cos-1 = (0.60) = 53°.13; Tan θ1 = Tan (53°.13) = 1.3333 • θ2 = Cos-1 = (0.90) = 25°.84; Tan θ2 = Tan (25°.50) = 0.4843 • Required Capacitor kVAR to improve P.F from 0.60 to 0.90 = P (Tan θ1 – Tan θ2) = 5kW (1.3333– 0.4843) =10.188 kVAR
EXAMPLE: 3 A SINGLE PHASE 400V, 50HZ, MOTOR TAKES A SUPPLY CURRENT OF 50A AT A P.F (POWER FACTOR) OF 0.6. THE MOTOR POWER FACTOR HAS TO BE IMPROVED TO 0.9 BY CONNECTING A CAPACITOR IN PARALLEL WITH IT. CALCULATE THE REQUIRED CAPACITY OF CAPACITOR IN BOTH KVAR AND FARADS. Solution #1 (Using a Simple Formula) We have already calculated the required Capacity of Capacitor in kVAR, we can easily convert it into Farads by using this simple formula • Required Capacity of Capacitor in Farads/Microfarads = C = kVAR / (2 f V2) in microfarad • Putting the Values in the above formula = (10.188kVAR) / (2 x π x 50 x 4002) = 2.0268 x 10-4 = 202.7 x 10-6 = 202.7μF
Example: 3 A single phase 400V, 50hz, motor takes A supply current of 50A at A P.F (power factor) of 0.6. The motor power factor has to be improved to 0.9 by connecting A capacitor in parallel with it. Calculate the required capacity of capacitor in both kvar and farads. Solution # 2 (Simple Calculation Method) • kVAR = 10.188 … (i) • We know that; IC = V/ XC , Whereas XC = 1 / 2 π F C • IC = V / (1 / 2 π F C) = V 2 F C = (400) x 2π x (50) x C = 125663.7 x C And, • kVAR = (V x IC) / 1000 … [kVAR =( V x I)/ 1000 ] = 400 x 125663.7 x C • IC = 50265.48 x C … (ii)
EXAMPLE: 3 A SINGLE PHASE 400V, 50HZ, MOTOR TAKES A SUPPLY CURRENT OF 50A AT A P.F (POWER FACTOR) OF 0.6. THE MOTOR POWER FACTOR HAS TO BE IMPROVED TO 0.9 BY CONNECTING A CAPACITOR IN PARALLEL WITH IT. CALCULATE THE REQUIRED CAPACITY OF CAPACITOR IN BOTH KVAR AND FARADS. • Solution # 2 (Simple Calculation Method) Equating Equation (i) & (ii), we get, • 50265.48 x C = 10.188C = 10.188 / 50265.48 = 2.0268 x 10-4 = 202.7 x 10-6 = 202.7μF
EXAMPLE 4 WHAT VALUE OF CAPACITANCE MUST BE CONNECTED IN PARALLEL WITH A LOAD DRAWING 1KW AT 70% LAGGING POWER FACTOR FROM A 208V, 60HZ SOURCE IN ORDER TO RAISE THE OVERALL POWER FACTOR TO 91%. • Solution: • You can use either Table method or Simple Calculation method to find the required value of Capacitance in Farads or to improve Power factor from 0.71 to 0.97. So I used table method in this case. • P = 1000W • Actual Power factor = Cosθ1 = 0.71 • Desired Power factor = Cosθ2 = 0.97 • From Table, Multiplier to improve PF from 0.71 to 0.97 is 0.783 • Required Capacitor kVAR to improve P.F from 0.71 to 0.97 • Required Capacitor kVAR = kW x Table Multiplier of 0.71 and 0.97 • = 1kW x 0.783 • =783 VAR (required Capacitance Value in kVAR)
EXAMPLE 4 WHAT VALUE OF CAPACITANCE MUST BE CONNECTED IN PARALLEL WITH A LOAD DRAWING 1KW AT 70% LAGGING POWER FACTOR FROM A 208V, 60HZ SOURCE IN ORDER TO RAISE THE OVERALL POWER FACTOR TO 91%. Solution: • Current in the Capacitor = IC = QC / V = 783 / 208 = 3.76A • And • XC = V / IC = 208 / 3.76 = 55.25Ω • C = 1/ (2 π f XC) = 1 (2 π x 60 x 55.25) = 48 μF (required Capacitance Value in Farads)
IMPORTANT FORMULAS WHICH IS USED FOR POWER FACTOR IMPROVEMENT CALCULATION AS WELL AS USED IN THE ABOVE CALCULATION Power in Watts • kW = kVA x Cosθ • kW = HP x 0.746 or (HP x 0.746) / Efficiency … (HP = Motor Power) • kW = √ ( kVA2– kVAR2) • kW = P = VI Cosθ … (Single Phase) • kW = P =√3x V x I Cosθ … (Three Phase)
IMPORTANT FORMULAS WHICH IS USED FOR POWER FACTOR IMPROVEMENT CALCULATION AS WELL AS USED IN THE ABOVE CALCULATION Apparent Power in VA • kVA= √(kW2+ kVAR2) • kVA = kW/ Cosθ Reactive Power in VA • kVAR= √(kVA2– kW2) • kVAR = C x (2 π f V2)
IMPORTANT FORMULAS WHICH IS USED FOR POWER FACTOR IMPROVEMENT CALCULATION AS WELL AS USED IN THE ABOVE CALCULATION Power factor (from 0.1 to 1) • Power Factor = Cosθ = P / V I … (Single Phase) • Power Factor = Cosθ = P / (√3x V x I) … (Three Phase) • Power Factor = Cosθ = kW / kVA … (Both Single Phase & Three Phase) • Power Factor = Cosθ = R/Z … (Resistance / Impedance) XC = 1/ (2 π f C) … (XC = Capacitive reactance) • IC = V/ XC … (I = V / R) Required Capacity of Capacitor in Farads/Microfarads • C = kVAR / (2 π f V2) in microfarad Required Capacity of Capacitor in kVAR • kVAR = C x (2 π f V2)

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Bank kapasitor

  • 2. FUNGSI UTAMA KAPASITOR BANK •Memperbaiki faktor kuasa elektrik khususnya pada pemasangan arus AC dengan nilai kuasa besar seperti penggunaan di industri.
  • 3. FUNGSI KAPASITOR BANK SELAIN DARI MEMPERBAIKI POWER FACTOR (PF); • Membekalkan kuasa reaktif dengan tujuan untuk memaksimakan penggunaan kuasa komplek (kva). • Mengurangi terjadinya Voltage drop atau voltan menurun. • Mencegah overload atau beban lebih pada transformer kerana kapasitor bank boleh berfungsi juga sebagai kuasa tambahan. • Mencegah kenaikan suhu kabel (temperature). • Mengawal Efisiensi /kuasa dengan menurunkan KVA secara total kerana penggunaan KVA lebih efisien dengan nilai Kw yang digunakan. • Meminimakan kerugian pada jaringan elektrik. • Mencegah denda daripada Pembekal Tenaga Seperti Tenaga Nasional Berhad(Semenanjung Malaysia), Sabah Elektricity Sdn. Bhd.(SESB),Sarawak Energy Berhad(SEB) kerana adanya kuasa reaktif.
  • 4. EXAMPLE: 1 A 3 PHASE, 5 KW INDUCTION MOTOR HAS A P.F (POWER FACTOR) OF 0.75 LAGGING. WHAT SIZE OF CAPACITOR IN KVAR IS REQUIRED TO IMPROVE THE P.F (POWER FACTOR) TO 0.90? Solution #1 (By Simple Table Method) • Motor Input = 5kW • From Table, Multiplier to improve PF from 0.75 to 0.90 is .398 • Required Capacitor kVAR to improve P.F from 0.75 to 0.90 • Required Capacitor kVAR = kW x Table 1 Multiplier of 0.75 and 0.90 = 5kW x .398 = 1.99 kVAR • And Rating of Capacitors connected in each Phase, 1.99/3 = 0.663 kVAR
  • 5. EXAMPLE: 1 A 3 PHASE, 5 KW INDUCTION MOTOR HAS A P.F (POWER FACTOR) OF 0.75 LAGGING. WHAT SIZE OF CAPACITOR IN KVAR IS REQUIRED TO IMPROVE THE P.F (POWER FACTOR) TO 0.90? Solution # 2 (Classical Calculation Method) • Motor input = P = 5 kW • Original P.F = Cosθ1 = 0.75 • Final P.F = Cosθ2 = 0.90 • θ1 = Cos-1 = (0.75) = 41°.41; Tan θ1 = Tan (41°.41) = 0.8819 • θ2 = Cos-1 = (0.90) = 25°.84; Tan θ2 = Tan (25°.50) = 0.4843 • Required Capacitor kVAR to improve P.F from 0.75 to 0.90 • Required Capacitor kVAR = P (Tan θ1 – Tan θ2) = 5kW (0.8819 – 0.4843) = 1.99 kVAR • And Rating of Capacitors connected in each Phase, 1.99/3 = 0.663 kVAR
  • 6. EXAMPLE 2: AN ALTERNATOR IS SUPPLYING A LOAD OF 650 KW AT A P.F (POWER FACT OR) OF 0.65. WHAT SIZE OF CAPACITOR IN KVAR IS REQUIRED TO RAISE THE P.F (POWER FACTOR) TO UNITY (1)? AND HOW MANY MORE KW CAN THE ALTERNATOR SUPPLY FOR THE SAME KVA LOADING WHEN P.F IMPROVED. Solution #1 (By Simple Table Method) • Supplying kW = 650 kW • From Table 1, Multiplier to improve PF from 0.65 to unity (1) is 1.169 • Required Capacitor kVAR to improve P.F from 0.65 to unity (1) • Required Capacitor kVAR = kW x Table 1 Multiplier of 65 and 100 = 650kW x 1.169 = 759.85 kVAR • We know that P.F = Cosθ = kW/kVA . . .or • kVA = kW / Cosθ = 650/0.65 = 1000 kVA • When Power Factor is raised to unity (1) • No of kW = kVA x Cosθ = 1000 x 1 = 1000kW • Hence increased Power supplied by Alternator, 1000kW – 650kW = 350kW
  • 7. EXAMPLE 2: AN ALTERNATOR IS SUPPLYING A LOAD OF 650 KW AT A P.F (POWER FACT OR) OF 0.65. WHAT SIZE OF CAPACITOR IN KVAR IS REQUIRED TO RAISE THE P.F (POWER FACTOR) TO UNITY (1)? AND HOW MANY MORE KW CAN THE ALTERNATOR SUPPLY FOR THE SAME KVA LOADING WHEN P.F IMPROVED. Solution # 2 (Classical Calculation Method) • Supplying kW = 650 kW • Original P.F = Cosθ1 = 0.65 • Final P.F = Cosθ2 = 1 • θ1 = Cos-1 = (0.65) = 49°.45; Tan θ1 = Tan (41°.24) = 1.169 • θ2 = Cos-1 = (1) = 0°; Tan θ2 = Tan (0°) = 0 • Required Capacitor kVAR to improve P.F from 0.75 to 0.90 • Required Capacitor kVAR = P (Tan θ1 – Tan θ2) = 650kW (1.169– 0) = 759.85 kVAR
  • 8. HOW TO CALCULATE THE REQUIRED CAPACITOR BANK VALUE IN BOTH KVAR AND FARADS? (HOW TO CONVERT FARADS INTO KVAR AND VICE VERSA)
  • 9. EXAMPLE: 3 A single phase 400V, 50hz, motor takes a supply current of 50A at a P.F (power factor) of 0.6. The motor power factor has to be improved to 0.9 by connecting a capacitor in parallel with it. Calculate the required capacity of capacitor in both kvar and farads. Solution #1 (by simple table method) • Motor input = p = v x i x cosθ = 400V x 50A x 0.6 = 12kw • From table, multiplier to improve pf from 0.60 to 0.90 is 0.849 • Required capacitor kvar to improve P.F from 0.60 to 0.90 • Required capacitor kvar = kw x table multiplier of 0.60 and 0.90 = 12kw x 0.849 = 10.188 kvar
  • 10. EXAMPLE: 3 A SINGLE PHASE 400V, 50HZ, MOTOR TAKES A SUPPLY CURRENT OF 50A AT A P.F (POWER FACTOR) OF 0.6. THE MOTOR POWER FACTOR HAS TO BE IMPROVED TO 0.9 BY CONNECTING A CAPACITOR IN PARALLEL WITH IT. CALCULATE THE REQUIRED CAPACITY OF CAPACITOR IN BOTH KVAR AND FARADS. Solution # 2 (Classical Calculation Method) • Motor Input = P = V x I x Cosθ = 400V x 50A x 0.6 = 12kW • Actual P.F = Cosθ1 = 0.6 • Required P.F = Cosθ2 = 0.90 • θ1 = Cos-1 = (0.60) = 53°.13; Tan θ1 = Tan (53°.13) = 1.3333 • θ2 = Cos-1 = (0.90) = 25°.84; Tan θ2 = Tan (25°.50) = 0.4843 • Required Capacitor kVAR to improve P.F from 0.60 to 0.90 = P (Tan θ1 – Tan θ2) = 5kW (1.3333– 0.4843) =10.188 kVAR
  • 11. EXAMPLE: 3 A SINGLE PHASE 400V, 50HZ, MOTOR TAKES A SUPPLY CURRENT OF 50A AT A P.F (POWER FACTOR) OF 0.6. THE MOTOR POWER FACTOR HAS TO BE IMPROVED TO 0.9 BY CONNECTING A CAPACITOR IN PARALLEL WITH IT. CALCULATE THE REQUIRED CAPACITY OF CAPACITOR IN BOTH KVAR AND FARADS. Solution #1 (Using a Simple Formula) We have already calculated the required Capacity of Capacitor in kVAR, we can easily convert it into Farads by using this simple formula • Required Capacity of Capacitor in Farads/Microfarads = C = kVAR / (2 f V2) in microfarad • Putting the Values in the above formula = (10.188kVAR) / (2 x π x 50 x 4002) = 2.0268 x 10-4 = 202.7 x 10-6 = 202.7μF
  • 12. Example: 3 A single phase 400V, 50hz, motor takes A supply current of 50A at A P.F (power factor) of 0.6. The motor power factor has to be improved to 0.9 by connecting A capacitor in parallel with it. Calculate the required capacity of capacitor in both kvar and farads. Solution # 2 (Simple Calculation Method) • kVAR = 10.188 … (i) • We know that; IC = V/ XC , Whereas XC = 1 / 2 π F C • IC = V / (1 / 2 π F C) = V 2 F C = (400) x 2π x (50) x C = 125663.7 x C And, • kVAR = (V x IC) / 1000 … [kVAR =( V x I)/ 1000 ] = 400 x 125663.7 x C • IC = 50265.48 x C … (ii)
  • 13. EXAMPLE: 3 A SINGLE PHASE 400V, 50HZ, MOTOR TAKES A SUPPLY CURRENT OF 50A AT A P.F (POWER FACTOR) OF 0.6. THE MOTOR POWER FACTOR HAS TO BE IMPROVED TO 0.9 BY CONNECTING A CAPACITOR IN PARALLEL WITH IT. CALCULATE THE REQUIRED CAPACITY OF CAPACITOR IN BOTH KVAR AND FARADS. • Solution # 2 (Simple Calculation Method) Equating Equation (i) & (ii), we get, • 50265.48 x C = 10.188C = 10.188 / 50265.48 = 2.0268 x 10-4 = 202.7 x 10-6 = 202.7μF
  • 14. EXAMPLE 4 WHAT VALUE OF CAPACITANCE MUST BE CONNECTED IN PARALLEL WITH A LOAD DRAWING 1KW AT 70% LAGGING POWER FACTOR FROM A 208V, 60HZ SOURCE IN ORDER TO RAISE THE OVERALL POWER FACTOR TO 91%. • Solution: • You can use either Table method or Simple Calculation method to find the required value of Capacitance in Farads or to improve Power factor from 0.71 to 0.97. So I used table method in this case. • P = 1000W • Actual Power factor = Cosθ1 = 0.71 • Desired Power factor = Cosθ2 = 0.97 • From Table, Multiplier to improve PF from 0.71 to 0.97 is 0.783 • Required Capacitor kVAR to improve P.F from 0.71 to 0.97 • Required Capacitor kVAR = kW x Table Multiplier of 0.71 and 0.97 • = 1kW x 0.783 • =783 VAR (required Capacitance Value in kVAR)
  • 15. EXAMPLE 4 WHAT VALUE OF CAPACITANCE MUST BE CONNECTED IN PARALLEL WITH A LOAD DRAWING 1KW AT 70% LAGGING POWER FACTOR FROM A 208V, 60HZ SOURCE IN ORDER TO RAISE THE OVERALL POWER FACTOR TO 91%. Solution: • Current in the Capacitor = IC = QC / V = 783 / 208 = 3.76A • And • XC = V / IC = 208 / 3.76 = 55.25Ω • C = 1/ (2 π f XC) = 1 (2 π x 60 x 55.25) = 48 μF (required Capacitance Value in Farads)
  • 16. IMPORTANT FORMULAS WHICH IS USED FOR POWER FACTOR IMPROVEMENT CALCULATION AS WELL AS USED IN THE ABOVE CALCULATION Power in Watts • kW = kVA x Cosθ • kW = HP x 0.746 or (HP x 0.746) / Efficiency … (HP = Motor Power) • kW = √ ( kVA2– kVAR2) • kW = P = VI Cosθ … (Single Phase) • kW = P =√3x V x I Cosθ … (Three Phase)
  • 17. IMPORTANT FORMULAS WHICH IS USED FOR POWER FACTOR IMPROVEMENT CALCULATION AS WELL AS USED IN THE ABOVE CALCULATION Apparent Power in VA • kVA= √(kW2+ kVAR2) • kVA = kW/ Cosθ Reactive Power in VA • kVAR= √(kVA2– kW2) • kVAR = C x (2 π f V2)
  • 18. IMPORTANT FORMULAS WHICH IS USED FOR POWER FACTOR IMPROVEMENT CALCULATION AS WELL AS USED IN THE ABOVE CALCULATION Power factor (from 0.1 to 1) • Power Factor = Cosθ = P / V I … (Single Phase) • Power Factor = Cosθ = P / (√3x V x I) … (Three Phase) • Power Factor = Cosθ = kW / kVA … (Both Single Phase & Three Phase) • Power Factor = Cosθ = R/Z … (Resistance / Impedance) XC = 1/ (2 π f C) … (XC = Capacitive reactance) • IC = V/ XC … (I = V / R) Required Capacity of Capacitor in Farads/Microfarads • C = kVAR / (2 π f V2) in microfarad Required Capacity of Capacitor in kVAR • kVAR = C x (2 π f V2)