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  • https://eng.libretexts.org/Courses/Canada_College/Circuits_and_Devices/04%3A_Analysis_Theorems_and_Techniques/4.09%3A_Exercises
    Determine the Thévenin equivalent circuit driving the 12 k\(\Omega\) resistor for the circuit shown in Figure \(\PageIndex{25}\). For the circuit shown in Figure \(\PageIndex{26}\), determine the Nort...Determine the Thévenin equivalent circuit driving the 12 k\(\Omega\) resistor for the circuit shown in Figure \(\PageIndex{25}\). For the circuit shown in Figure \(\PageIndex{26}\), determine the Norton equivalent circuit driving the 4 k\(\Omega\) resistor. Given the circuit of Figure \(\PageIndex{26}\), determine if the 4 k\(\Omega\) resistor is the optimal value to achieve maximum power dissipation in that resistor.
  • https://eng.libretexts.org/Workbench/Introduction_to_Circuit_Analysis/04%3A_Analysis_Theorems_and_Techniques/4.08%3A_Exercises
    Consider the 4 k\(\Omega\) resistor to be the load in Figure 6.9.24 . Determine a new value for the load in order to achieve maximum load power. Consider the 12 k\(\Omega\) resistor to be the load in ...Consider the 4 k\(\Omega\) resistor to be the load in Figure 6.9.24 . Determine a new value for the load in order to achieve maximum load power. Consider the 12 k\(\Omega\) resistor to be the load in Figure 6.9.25 . Determine a new value for the load in order to achieve maximum load power. Consider the 6 k\(\Omega\) resistor to be the load in Figure 6.9.28 . Determine a new value for the load in order to achieve maximum load power.

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