In Thevenin analysis with V_th = 18 V and R_th = 9 Ω, what is the short-circuit current I_sc?

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Multiple Choice

In Thevenin analysis with V_th = 18 V and R_th = 9 Ω, what is the short-circuit current I_sc?

Explanation:
Short-circuit current is determined by the Thevenin voltage divided by the Thevenin resistance when the output is shorted. With V_th = 18 V and R_th = 9 Ω, the short sits across just the 9 Ω, so I_sc = 18 V / 9 Ω = 2 A. The current flows from the positive terminal through the short toward the negative terminal.

Short-circuit current is determined by the Thevenin voltage divided by the Thevenin resistance when the output is shorted. With V_th = 18 V and R_th = 9 Ω, the short sits across just the 9 Ω, so I_sc = 18 V / 9 Ω = 2 A. The current flows from the positive terminal through the short toward the negative terminal.

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