(II) In Example 24–12 what percent of the stored energy is stored in the electric field in the dielectric? EXAMPLE 24–12 Dielectric partially fills capacitor. A parallel-plate capacitor has plates of area A = 250 cm 2 and separation d = 2.00 mm. The capacitor is charged to a potential difference V 0 = 150 V. Then the battery is disconnected (the charge Q on the plates then won’t change), and a dielectric sheet ( K = 3.50) of the same area A but thickness ℓ = 1.00 mm is placed between the plates as shown in Fig. 24–18. Determine ( a ) the initial capacitance of the air-filled capacitor, ( b ) the charge on each plate before the dielectric is inserted, ( c ) the charge induced on each face of the dielectric after it is inserted, ( d ) the electric field in the space between each plate and the dielectric, ( e ) the electric field in the dielectric, ( f ) the potential difference between the plates after the dielectric is added, and ( g ) the capacitance after the dielectric is in place.
(II) In Example 24–12 what percent of the stored energy is stored in the electric field in the dielectric? EXAMPLE 24–12 Dielectric partially fills capacitor. A parallel-plate capacitor has plates of area A = 250 cm 2 and separation d = 2.00 mm. The capacitor is charged to a potential difference V 0 = 150 V. Then the battery is disconnected (the charge Q on the plates then won’t change), and a dielectric sheet ( K = 3.50) of the same area A but thickness ℓ = 1.00 mm is placed between the plates as shown in Fig. 24–18. Determine ( a ) the initial capacitance of the air-filled capacitor, ( b ) the charge on each plate before the dielectric is inserted, ( c ) the charge induced on each face of the dielectric after it is inserted, ( d ) the electric field in the space between each plate and the dielectric, ( e ) the electric field in the dielectric, ( f ) the potential difference between the plates after the dielectric is added, and ( g ) the capacitance after the dielectric is in place.
(II) In Example 24–12 what percent of the stored energy is stored in the electric field in the dielectric?
EXAMPLE 24–12 Dielectric partially fills capacitor. A parallel-plate capacitor has plates of area A = 250 cm2 and separation d = 2.00 mm. The capacitor is charged to a potential difference V0 = 150 V. Then the battery is disconnected (the charge Q on the plates then won’t change), and a dielectric sheet (K = 3.50) of the same area A but thickness ℓ = 1.00 mm is placed between the plates as shown in Fig. 24–18. Determine (a) the initial capacitance of the air-filled capacitor, (b) the charge on each plate before the dielectric is inserted, (c) the charge induced on each face of the dielectric after it is inserted, (d) the electric field in the space between each plate and the dielectric, (e) the electric field in the dielectric, (f) the potential difference between the plates after the dielectric is added, and (g) the capacitance after the dielectric is in place.
What is the resistance (in (2) of a 27.5 m long piece of 17 gauge copper wire having a 1.150 mm diameter?
0.445
ΧΩ
Find the ratio of the diameter of silver to iron wire, if they have the same resistance per unit length (as they might in household wiring).
d.
Ag
dFe
= 2.47
×
Chemistry: An Introduction to General, Organic, and Biological Chemistry (13th Edition)
Knowledge Booster
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, physics and related others by exploring similar questions and additional content below.