With flux and time fixed, turns scale voltage. Exact arithmetic here means exact results for the stated model inputs; measured inputs still carry uncertainty and significant-figure limits.

highlighted = computed this step

The same flux rate can feed many secondary turn counts

Primary turns, flux change, and interval stay fixed. The secondary winding is the changing part.

Vs=NsΔΦΔtV_s=N_s{\Delta\Phi\over\Delta t}
Secondary turns setupThe secondary voltage is generated from the larger turn count.Np 2Ns 8dPhi 1/2 Wbdt 1 sVp 1 VVs 4 Vmode aiding

Secondary voltage scales with secondary turns

The rows hold the flux-rate value fixed.

ΔΦΔtNsVs12 Wb1 s21 V12 Wb1 s42 V12 Wb1 s84 V\begin{array}{c|c|c|c}\Delta\Phi&\Delta t&N_s&V_s\\\tfrac{1}{2}\ \text{Wb}&1\ \text{s}&2&1\ \text{V}\\\tfrac{1}{2}\ \text{Wb}&1\ \text{s}&4&2\ \text{V}\\\tfrac{1}{2}\ \text{Wb}&1\ \text{s}&8&4\ \text{V}\\\end{array}

More secondary turns raises the induced voltage

Flux change and interval stay fixed, so the turns count alone changes the voltage labels.

12 Wb/1 s84 V\tfrac{1}{2}\ \text{Wb}/1\ \text{s}\quad8\rightarrow4\ \text{V}
More turns, more voltageThe secondary voltage is generated from the larger turn count.Np 2Ns 8dPhi 1/2 Wbdt 1 sVp 1 VVs 4 Vmode aiding