184_notes:examples:week14_step_down_transformer

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184_notes:examples:week14_step_down_transformer [2021/07/13 13:32] schram45184_notes:examples:week14_step_down_transformer [2021/07/22 13:56] (current) – [Solution] schram45
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 ===Approximations & Assumptions=== ===Approximations & Assumptions===
-  * We have access to the same materials as we did for the step-up transformer.+  * We have access to the same materials as we did for the step-up transformer: This allows us to use some of the same relationships from the step-up transformer solution.
   * The step-down transformer we are building will have a similar design to the step-up transformer.   * The step-down transformer we are building will have a similar design to the step-up transformer.
  
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 VS=VPNSNP VS=VPNSNP
  
-Remember, we need to step down from the 240 kV power line to a 120 V line. This is a factor of 2000. One way to achieve this would be to set $N_P = 10,andN_S = 20000.Duetothehugestepdown,itmaybeeveneasiertodesignaseriesofstepdowntransformers,sothatwedonthavetohavesuchalargenumberofturnsforthesecondarysolenoid.MaybeapplyafactorofN_S/N_P=40foronetransformer,andthenN_S/N_P=50forasecondtransformer.YoushouldbeabletoconvinceyourselfthatthiswouldbephysicallyequivalenttojustonestepdowntransformerwithN_S/N_P=2000$.+Remember, we need to step down from the 240 kV power line to a 120 V line. This is a factor of 2000. One way to achieve this would be to set $N_P = 20000,andN_S = 10.Duetothehugestepdown,itmaybeeveneasiertodesignaseriesofstepdowntransformers,sothatwedonthavetohavesuchalargenumberofturnsforthesecondarysolenoid.MaybeapplyafactorofN_S/N_P=1/40foronetransformer,andthenN_S/N_P=1/50forasecondtransformer.YoushouldbeabletoconvinceyourselfthatthiswouldbephysicallyequivalenttojustonestepdowntransformerwithN_S/N_P=1/2000$.
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