Re: Air condition load

#12317
Spir Georges GHALI
Participant

Dear ;

 

As there's no answer till now, please find bellow the calculation of the Cables' Sections.

Assume that :

  • ” Ku ≈ 70 % ” that means  50  of  70 AC  are working in tha same time.
  • The Methods of Installation :

               – ” Horizontaly Perforated Cable Tray “

               – ” Touching – Flat “

  • ” Only 1 Cable Tray “
  • The kind of Cable : ” Single Core Cable – Copper – PVC “

The total load current :  Ib = 50 x 23.5 = 1175 A

The Reduction Factors will be defined accordingly to the following points :

  • 3  or  4  cables per Phase  →  The Reduction Factor : 0.87
  • The Ambiant Temperature is ” 55 °C ” in the air  →  The Reduction Factor : 0.61

So, the total Reduction Factors is : 0.87 x 0.61 = 0.5307

And the nominal current for needed cables is : 1175 / 0.5307 = 2214 A

 

Suppose that we will use ” Single Core Cable – 300 mm2 “, and from table ” A.52-10 ” of ” IEC 364-5-52 “, we find that the Current Carrying Capcity for ” 300mm2 ” for ” Touching – Flat / Methode F ” is ” 587 A “, the number of cable per phase is : 2214 / 587 = 3.77 

So, we will use :

  • For each Phase        : ” 4 Single Core Cables of 300 mm2
  • For Neutral              : ” 2 Single Core Cables of 300 mm2

Noting that :

  • For Neutral : as all loads are ” 3 phases “, and we haven't the 3rd Harmonic.
  • If ” Ku ” is different, the calculation should be re-done.

 

After that, you should calculate the ” Drop Voltage “ to know if these cables are suitable or not.

 

Regards.