Chapter 27: Q50P (page 796)
Question: In Fig. 27-57,, the ammeter resistance is zero, and the battery is ideal. What multiple ofgives the current in the ammeter?

Short Answer
Answer:
The multiple of that gives the current in the ammeter is 0.143.
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Chapter 27: Q50P (page 796)
Question: In Fig. 27-57,, the ammeter resistance is zero, and the battery is ideal. What multiple ofgives the current in the ammeter?

Answer:
The multiple of that gives the current in the ammeter is 0.143.
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In Figure, the ideal batteries have emfsand , and the resistances are each .
(a) What is the current in resistance 2?
(b) What is the current in resistance 3?

(a), both batteries have emf1.20 V and the external resistance Ris a variable resistor. Figure
(b)gives the electric potentials Vbetween the terminals of each battery as functions of R: Curve 1 corresponds to battery 1, and curve 2 corresponds to battery 2.The horizontal scale is set by0.20 Ω. What is the internal resistance of (a) Battery 1 and
(b) Battery 2?

Figure shows a resistor of resistance R= 6.00 Ω connected to an ideal battery of emf12.0 V by means of two copper wires. Each wire has length 20.0 cm and radius 1.00 mm. In dealing with such circuits in this chapter, we generally neglect the potential differences along the wires and the transfer of energy to thermal energy in them. Check the validity of this neglect for the circuit of Figure: What is the potential difference across (a) The resistor and (b) Each of the two sections of wire? At what rate is energy lost to thermal energy in (c) The resistor And (d) Each section of wire?

In Figure,, , , and . (a) What is the potential difference (b) What is the potential difference (c) What is the potential difference(d) What is the potential difference
In Fig. 27-25, the ideal batteries have emfs and . What are (a) the current, the dissipation rate in (b) resistor 1?And (c) resistor 2 , and the energy transfer rate in (d) battery 1 and (e) battery 2? Is energy being supplied or absorbed by (f) battery 1 and (g) battery 2?

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