If I place a random arrangement of dielectrics like this in my capacitor, how do I find my new capacitance?

C = \frac{k_{1} k_{2} k_{3} k_{4} ε_{0} A_{2} A_{4}}{k_{2} d_{1} + k_{1} d_{2} + k_{4} d_{1} + k_{3} d_{2}}

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C = \frac{k_{1} k_{2} ε_{0} A_{2}}{k_{2} d_{1} + k_{1} d_{2}} + \frac{k_{1} k_{4} ε_{0} (A_{1} - A_{2})}{k_{4} d_{1} + k_{1} d_{2}} + \frac{k_{4} k_{3} ε_{0} A_{3}}{k_{4} d_{1} + k_{3} d_{2}}

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C = \frac{ε_{0} (k_{1} k_{2} + k_{3} k_{4}) (A_{2} + A_{4} + A_{1} + A_{3})}{k_{2} d_{1} + k_{1} d_{2} + k_{4} d_{1} + k_{3} d_{2}}

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None of these

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Solution

The correct option is B $C = \frac{k_{1} k_{2} ε_{0} A_{2}}{k_{2} d_{1} + k_{1} d_{2}} + \frac{k_{1} k_{4} ε_{0} (A_{1} - A_{2})}{k_{4} d_{1} + k_{1} d_{2}} + \frac{k_{4} k_{3} ε_{0} A_{3}}{k_{4} d_{1} + k_{3} d_{2}}$
It will be easier and you will never go wrong if you split this into a set of parallel dielectric combinations, each having 2 series dielectrics.

So we have split it into 3 parallel capacitors as shown,
$C = C_{1} + C_{2} + C_{3}$
Now each of these is a series combination,
$c_{1} = \frac{1}{\frac{1}{\frac{k_{1} ε_{0} A_{2}}{d_{1}}} + \frac{1}{\frac{k_{2} ε_{0} A_{2}}{d_{2}}}}$
Similarly, if you calculate $C_{2}$ and $C_{3}$ and sum them up, you get
$C = \frac{k_{1} k_{2} ε_{0} A_{2}}{k_{2} d_{1} + k_{1} d_{2}} + \frac{k_{1} k_{4} ε_{0} (A_{1} - A_{2})}{k_{4} d_{1} + k_{1} d_{2}} + \frac{k_{4} k_{3} ε_{0} A_{3}}{k_{4} d_{1} + k_{3} d_{2}}$

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