Al-Firasah

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    Before installs of capacitor
    kVAri = kW*tan(thetai) ……… (1)

    After installs of p.f.correction
    kVArf = kW*tan(thetaf) …….. (2)

    The value of capacitor, kVAr = kVAri – kVArf

    equation (1) – (2)
    kVAri – KVArf = kW*tan(thetai) – kW*tan(thetaf)
    kVAr = kW*(tan(thetai) – tan(thetaf)) …… (3)

    i = initial
    f = final
    theta = angle of power factor
    kVAr = reactive power = 117.6
    kW = real power = 100

    assume that,
    cos(thetai) = 0.85, therefore tan(thetai) = 0.6197
    cos(thetaf) = 1, therefore tan(thetaf) = 0.0000

    where
    thetai = initial angle
    thetaf = final angle
    kVAri = initial reactive power
    kVArf – final reactive power
    kW = real power of electrical load

    The reduction in current after installs of capacitor, Ir is:

    Ir = [kVAi – kW*cos(thetai)]/(sqrt(3)*V) ……. (4)

    where V in kV = nominal voltage supply from supply authority = 0.415kV

    The reduction of power in cable = Ir^2*resistance of cable ………… (5)
    assume that resistance of cable 0.005 ohm

    From equation (3): kVAr = 100*(0.6197 – 0)
    = 61.97

    From equation (4): Ir = [117.6 – 100*0.85]/(1.732*0.415)
    = 32.6/0.7188
    = 45.4 Amperes

    From equation (5): The reduction in power = 45.5^2*0.005
    = 10.4 Watts

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