Consider the following figure. (a) Find the equivalent capacitance between points a for the group of capacitors connected as shown in the figure it C, 3.00 , C₂-15.00, and C₂ -1.00 (b) If the potential between points a and bis 60.0 V, what charge is stored on C₂
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- Let C, = Cs = 8.4 uF, C2 = C3 = CA= 4.2 µF, and the applied potential Vab = 220 V. (a) What is the equivalent capacitance of the network? (b) What is the charge at capacitor C2? C at C2 Cs C4 be Select one: O a (a) Cag = 53 UF, (b) Q2= 210 µc O b. (a) Cag = 2.5 UF, (b) Q2 = 370 pc O cla) Caq = 5.3 UF, (b) Q2 = 540 µC O d. (a) Cag = 9.5 UF, (b) Q2= 250 pc e. None of these is correctSee the diagram below. (a) Find the total capacitance of the 5 capacitors where Ci = { 3pf if i is an even number 4pf if i is an odd number (b) If the capacitors are connected across a 30V – battery, find the charge on each plate of C4.c) Figure 2 shows the arrangement of 3 capacitors which are connected to 12 Vbattery. Rajah 2 menunjuukkan susunan 3 kapasitor yang disambungakn dengan bateri 12 V. 12 V C,=6µF C-4µF C,=3µF Figure 3 / Rajah 3 Calculate the effective capacitance
- Two capacitors, C, = 5.27 µF and C, = 11.7 µF, are connected in parallel, and the resulting combination is connected to a 9.00-V battery. (a) Find the equivalent capacitance of the combination. µF (b) Find the potential difference across each capacitor. V, = V V, = (c) Find the charge stored on each capacitor. Q1 = µC Q2 μCQ A solid cylindrical conductor of radius a and charge Q is coaxial with a cylindrical shell of negligible thickness, radius b> a, and charge - Q (Fig.1). Find the capacitance per unit length of two coaxial metal cylindrical tubes of radii a and b, and length L shown in the figure below. (1) 2.776, In (b) 2πε 278 (ii) Inb a (iii) 2776, In (%) απερ (iv) None of the above a L Fig. 1Find the following. (In the figure use C, = 25.80 µF and C2 = 19.80 pF.) 6.00 µF C,uF 9.00 V (a) the equivalent capacitance of the capacitors in the figure above µF (b) the charge on each capacitor on the right 25.80 uF capacitor on the left 25.80 uF capacitor HC on the 19.80 µF capacitor on the 6.00 µF capacitor (c) the potential difference across each capacitor on the right 25.80 uF capacitor V. on the left 25.80 uF capacitor on the 19.80 uF capacitor on the 6.00 UF capacitor p15 45.gif e Type here to search (62 立
- ertices of a fig a express it in vects Q. 3: (a) Given Ci=2.0µF, C2=4.0µF, C3=6.0µF and C4-8.0µF (i) Find equivalent capacitance. (ii) How much energy is stored in capacitor C2? C1 H C3 12.0 V wiw ndTwo equal air-filled capacitors of Co= 15 µF are connected in series. A dielectric slab of constant K is inserted inside one of them to fully occupy the space between the conductors. The equivalent capacitance of the combination becomes Ceg 13.84 µF. Find the value of K.Figure 2 shows four capacitors connected in the combination between point A and point B. Given C1 = 12 µF, C2 = 8 µF, C3 =4 µF and C4 = 6 µF. C2 Ci C3 A в Figure 2 If a potential difference of 20.0 V is connected through point A and point B, compute the (i) equivalent capacitance. (ii) total charge stored in the equivalent capacitor.
- An air filled parallel plate capacitor of C-21.7 nF is connected across a battery of AV-160 V. Find the energy U stored in the capacitor (in uJ).Six Q.4: Eour capacitors are arranged in the following configuration: the capacitances of capacitors are C1= 1.5µF, C2= 3.5µF, C3= 2.0µF, C4= 2.5µF, Cs= 3.0µF and C6=4.0µF. The voltage V of the battery is 12.0V. (a) Calculate the capacitance of the configuration. (b) How much energy is stored in the configuration? (c) How much energy is stored in capacitor C1? C2 C3 C1(a) How much charge is on each plate of a 6.00-μF capacitor when it is connected to a 11.0-V battery? με (b) If this same capacitor is connected to a 1.00-V battery, what charge is stored? μC