What is the width when Zo is 125 ohms?

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I assume you meant "dielectric constant = 3.48, thickness = 0.76 -diaelectric thickness". To solve for the width, we need to rearrange the first equation to isolate the width: W = -2d e We can use the second equation to find the effective dielectric constant, which we will substitute into the first equation to solve for the characteristic impedance, z0: |5eff = £0+² < ft(1 + 12d right)¹] 2 W Substituting the given values, we get: < ft (1+ Eeff = 8d zo(√ff60 Zo - 1+3.48 2 Solving for zo using the first equation: 60 Zo = √6 In<ft (+right) = 0 In<ft (+right) √Eff √3.48 Substituting the expressions for w and 20 into the equation for the characteristic impedance of a transmission line: Zo We get: = 12d right)¹ = 2.24 ≤ ft(1 + W 120T √ Eeff 120T √2.24 12d right)¹] W +1.393+0.667ln ≤ft(+1.444right) 20√ Eff ZO√/Eff 60 2+1.393+0.667ln <fte 60 2 +1.444right /e V Substituting the given values into the second equation, we get: Eeff 1+3.48 < ft (1 + 12×0.76 right) ¹ = 2.24 < ft (1 + 9,12 right)¹] 2 W W Substituting this into the first equation, we get: 60 In ≤ft (8 + right) ≈ 93.93ln <ft (8 + right) 8d √3.48 W W ZO = Using the equation for w that we derived earlier and solving numerically, we get: [w≈ 0.74, mm] Therefore, the width of the transmission line is approximately 0.74 mm.