{"id":3024,"date":"2018-06-03T22:59:21","date_gmt":"2018-06-04T05:59:21","guid":{"rendered":"https:\/\/gurumuda.net\/physics\/?p=3024"},"modified":"2023-08-06T14:21:23","modified_gmt":"2023-08-06T14:21:23","slug":"electrical-energy-in-capacitor-circuits-problems-and-solutions","status":"publish","type":"post","link":"https:\/\/gurumuda.net\/physics\/electrical-energy-in-capacitor-circuits-problems-and-solutions.htm","title":{"rendered":"Electrical energy in capacitor circuits \u2013 problems and solutions","gt_translate_keys":[{"key":"rendered","format":"text"}]},"content":{"rendered":"<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">Electrical energy in capacitor circuits \u2013 problems and solutions<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">1. <span lang=\"en-US\">Determine the <a href=\"https:\/\/gurumuda.net\/physics\/electric-energy-problems-and-solutions.htm\" target=\"_blank\" rel=\"noopener\">electrical energy<\/a> in the circuit shown in the figure below<\/span> (1 \u00b5F = 10<sup>-6<\/sup> F)<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>Known :<\/u><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><a href=\"https:\/\/gurumuda.net\/physics\/series-and-parallel-capacitors-circuits-problems-and-solutions.htm\" target=\"_blank\" rel=\"noopener\">Capacitor<\/a> 1 (C<sub>1<\/sub>) = 3 \u00b5F <img loading=\"lazy\" decoding=\"async\" class=\"alignright size-full wp-image-3025\" src=\"https:\/\/gurumuda.net\/physics\/wp-content\/uploads\/2018\/06\/Electric-energy-in-capacitor-circuits-\u2013-problems-and-solutions-1.png\" alt=\"Electric energy in capacitor circuits \u2013 problems and solutions 1\" width=\"172\" height=\"169\" \/><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 2 (C<sub>2<\/sub>) = 1 \u00b5F <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 3 (C<sub>3<\/sub>) = 2 \u00b5F <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 4 (C<sub>4<\/sub>) = 6 \u00b5F <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 5 (C<sub>5<\/sub>) = 4 \u00b5F <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><a href=\"https:\/\/gurumuda.net\/physics\/electric-voltage-problems-and-solutions.htm\" target=\"_blank\" rel=\"noopener\">Electric voltage<\/a> (V) = 5 volts<!--more--><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>Wanted :<\/u> Electrical energy in circuits<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>Solution :<\/u><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>The equivalent capacitor :<\/u><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><a href=\"https:\/\/gurumuda.net\/physics\/capacitors-in-parallel-problems-and-solutions.htm\" target=\"_blank\" rel=\"noopener\">Capacitor 2 and capacitor 3 are connected in parallel<\/a>. The equivalent capacitor :<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">C<sub>A <\/sub>= C<sub>2 <\/sub>+ C<sub>3<\/sub> = 1 + 2 = 3 \u00b5F<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><a href=\"https:\/\/gurumuda.net\/physics\/capacitors-in-series-problems-and-solutions.htm\" target=\"_blank\" rel=\"noopener\">Capacitor 1, capacitor A and capacitor 4 are connected in series<\/a>. The equivalent capacitor :<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">1\/C<sub>B<\/sub> = 1\/C<sub>1<\/sub> + 1\/C<sub>A<\/sub> + 1\/C<sub>4<\/sub> = 1\/3 + 1\/3 + 1\/6 = 2\/6 + 2\/6 + 1\/6 = 5\/6 <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">C<sub>B<\/sub> = 6\/5 \u00b5F <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor B and capacitor 5 are connected in parallel. The equivalent capacitor :<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">C = C<sub>B<\/sub> + C<sub>5<\/sub> = 6\/5 + 4 = 6\/5 + 16\/4 = 24\/20 + 80\/20 = 104\/20 = 5.2 \u00b5F<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">C = 5.2 x 10<sup>-6<\/sup> Farad <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>Electrical energy in circuit :<\/u><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">E = \u00bd C V<sup>2<\/sup> = \u00bd (5.2 x 10<sup>-6<\/sup>)(5<sup>2<\/sup>) = (2.6 x 10<sup>-6<\/sup>)(25) <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">E = 65 x 10<sup>-6<\/sup> Joule <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">2. Determine the <a href=\"https:\/\/gurumuda.net\/physics\/electrical-energy-in-capacitor-circuits-problems-and-solutions.htm\" target=\"_blank\" rel=\"noopener\">electrical energy in capacitor circuits<\/a> shown in figure below (1 \u00b5F = 10<sup>-6<\/sup> F)<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>Known :<\/u><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 1 (C<sub>1<\/sub>) = 4 \u00b5F <img loading=\"lazy\" decoding=\"async\" class=\"alignright size-full wp-image-3026\" src=\"https:\/\/gurumuda.net\/physics\/wp-content\/uploads\/2018\/06\/Electric-energy-in-capacitor-circuits-\u2013-problems-and-solutions-2.png\" alt=\"Electric energy in capacitor circuits \u2013 problems and solutions 2\" width=\"253\" height=\"144\" \/><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 2 (C<sub>2<\/sub>) = 6 \u00b5F <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 3 (C<sub>3<\/sub>) = 12 \u00b5F <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 4 (C<sub>4<\/sub>) = 2 \u00b5F <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 5 (C<sub>5<\/sub>) = 2 \u00b5F <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Electric voltage (V) = 40 volts<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>Wanted :<\/u> Electrical energy in circuits<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>Solution :<\/u><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>The equivalent capacitor :<\/u><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 1, capacitor 2 and capacitor 3 are connected in series. The equivalent capacitor :<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">1\/C<sub>A<\/sub> = 1\/C<sub>1<\/sub> + 1\/C<sub>2<\/sub> + 1\/C<sub>3<\/sub> = 1\/4 + 1\/6 + 1\/12 = 3\/12 + 2\/12 + 1\/12 = 6\/12 <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">C<sub>A<\/sub> = 12\/6 = 2 \u00b5F <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 4 and capacitor 5 are connected in series. The equivalent capacitor :<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">1\/C<sub>B<\/sub> = 1\/C<sub>4 <\/sub>+ 1\/C<sub>5 <\/sub>= 1\/2 + 1\/2 = 2\/2 <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">C<sub>B <\/sub>= 2\/2 = 1 \u00b5F <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor A and capacitor B in parallel. The equivalent capacitor :<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">C = C<sub>A<\/sub> + C<sub>B<\/sub> = 2 + 1 = 3 \u00b5F<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">C = 3 x 10<sup>-6<\/sup> Farad <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>Electrical energy in circuits :<\/u><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">E = \u00bd C V<sup>2<\/sup> = \u00bd (3 x 10<sup>-6<\/sup>)(40<sup>2<\/sup>) = (1.5 x 10<sup>-6<\/sup>)(1600) <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">E = 2400 x 10<sup>-6<\/sup> = 2.4 x 10<sup>-3<\/sup> Joule <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">3. Determine t<span lang=\"en-US\">he energy stored in the electrical circuit shown in the figure belo<\/span><span lang=\"en-US\">w.<\/span><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>Known :<\/u><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 1 (C<sub>1<\/sub>) = 4 F <img loading=\"lazy\" decoding=\"async\" class=\"alignright size-medium wp-image-3027\" src=\"https:\/\/gurumuda.net\/physics\/wp-content\/uploads\/2018\/06\/Electric-energy-in-capacitor-circuits-\u2013-problems-and-solutions-3-300x166.png\" alt=\"Electric energy in capacitor circuits \u2013 problems and solutions 3\" width=\"300\" height=\"166\" srcset=\"https:\/\/gurumuda.net\/physics\/wp-content\/uploads\/sites\/28\/2018\/06\/Electric-energy-in-capacitor-circuits-\u2013-problems-and-solutions-3-300x166.png 300w, https:\/\/gurumuda.net\/physics\/wp-content\/uploads\/sites\/28\/2018\/06\/Electric-energy-in-capacitor-circuits-\u2013-problems-and-solutions-3.png 305w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\" \/><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 2 (C<sub>2<\/sub>) = 4 F <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 3 (C<sub>3<\/sub>) = 4 F <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 4 (C<sub>4<\/sub>) = 4 F <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 5 (C<sub>5<\/sub>) = 2 F <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Electric voltage (V) = 12 volts<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>Wanted :<\/u> Electrical energy in circuits<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>Solution :<\/u><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>The equivalent capacitor :<\/u><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 1, capacitor 2 and capacitor 3 are connected in parallel. The equivalent capacitor :<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">C<sub>A<\/sub> = C<sub>1 <\/sub>+ C<sub>2 <\/sub>+ C<sub>3<\/sub> = 4 + 4 + 4 = 12 F <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor 4 and capacitor 5 are connected in parallel. The equivalent capacitor :<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">C<sub>B<\/sub> = C<sub>4 <\/sub>+ C<sub>5<\/sub> = 4 + 2 = 6 F <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Capacitor A and capacitor B are connected in series. The equivalent capacitor :<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">1\/C = 1\/C<sub>A<\/sub> + 1\/C<sub>B<\/sub> = 1\/12 + 1\/6 = 1\/12 + 2\/12 = 3\/12<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">C = 12\/3 = 4 Farad <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>Electrical energy in circuits :<\/u><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">E = \u00bd C V<sup>2<\/sup> = \u00bd (4)(12<sup>2<\/sup>) = (2)(144) <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">E = 288 Joule<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>1. Question:<\/strong> How is energy stored in a capacitor?<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>Answer:<\/strong> Energy in a capacitor is stored in the electric field between its plates. When a voltage is applied across a capacitor, positive charges accumulate on one plate and negative charges on the opposite plate, creating an electric field.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>2. Question:<\/strong> What is the formula for the energy stored in a capacitor?<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>Answer:<\/strong> The energy (U) stored in a capacitor is given by <span class=\"math math-inline\"><span class=\"katex\"><span class=\"katex-mathml\">\ufffd=12\ufffd\ufffd2<\/span><span class=\"katex-html\" aria-hidden=\"true\"><span class=\"base\"><span class=\"mord mathnormal\">U<\/span><span class=\"mrel\">=<\/span><\/span><span class=\"base\"><span class=\"mord\"><span class=\"mfrac\"><span class=\"vlist-t vlist-t2\"><span class=\"vlist-r\"><span class=\"vlist\"><span class=\"sizing reset-size6 size3 mtight\"><span class=\"mord mtight\">2<\/span><\/span><span class=\"sizing reset-size6 size3 mtight\"><span class=\"mord mtight\">1<\/span><\/span><\/span><span class=\"vlist-s\">\u200b<\/span><\/span><\/span><\/span><\/span><span class=\"mord mathnormal\">C<\/span><span class=\"mord\"><span class=\"mord mathnormal\">V<\/span><span class=\"msupsub\"><span class=\"vlist-t\"><span class=\"vlist-r\"><span class=\"vlist\"><span class=\"sizing reset-size6 size3 mtight\"><span class=\"mord mtight\">2<\/span><\/span><\/span><\/span><\/span><\/span><\/span><\/span><\/span><\/span><\/span> where C is the capacitance and V is the voltage across the capacitor.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>3. Question:<\/strong> What happens to the energy stored in a capacitor when the voltage is doubled?<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>Answer:<\/strong> Since the energy is proportional to the square of the voltage (V^2), when the voltage is doubled, the energy increases by a factor of four.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>4. Question:<\/strong> Why can a charged capacitor be dangerous even if it&#8217;s disconnected from its voltage source?<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>Answer:<\/strong> A charged capacitor can retain its stored energy even when disconnected from its voltage source. If a conductor (or a person) comes into contact with the terminals, the stored energy can be rapidly released, potentially causing harm or damage.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>5. Question:<\/strong> How does the energy stored in a capacitor change if the capacitance is halved while keeping the voltage constant?<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>Answer:<\/strong> If the capacitance is halved and voltage remains constant, the energy stored will also be halved, as the energy is directly proportional to the capacitance.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>6. Question:<\/strong> What role does the dielectric material play in a capacitor?<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>Answer:<\/strong> The dielectric material increases the capacitance of the capacitor by reducing the effective electric field between the plates and also prevents charge conduction between the plates.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>7. Question:<\/strong> In a series capacitor circuit, how does the total capacitance compare to the individual capacitances?<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>Answer:<\/strong> In a series arrangement, the inverse of the total capacitance (1\/C_total) is the sum of the inverses of the individual capacitances. This means the total capacitance in a series configuration is always less than the smallest capacitance in the series.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>8. Question:<\/strong> How is the total capacitance calculated for capacitors connected in parallel?<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>Answer:<\/strong> For capacitors in parallel, the total capacitance is the sum of the individual capacitances.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>9. Question:<\/strong> Why does a capacitor block direct current (DC) but allow alternating current (AC) to pass through?<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>Answer:<\/strong> A capacitor blocks DC because once it&#8217;s fully charged, no further current can flow. However, with AC, the voltage is continuously changing, causing the capacitor to charge and discharge, allowing an effective current to flow.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>10. Question:<\/strong> What happens to a capacitor&#8217;s voltage if it is connected to a battery and then disconnected before reaching full charge?<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>Answer:<\/strong> The capacitor will retain the voltage it had at the moment of disconnection and won&#8217;t charge further unless connected back to a power source.<\/span><\/p>\n","protected":false,"gt_translate_keys":[{"key":"rendered","format":"html"}]},"excerpt":{"rendered":"<p>Electrical energy in capacitor circuits \u2013 problems and solutions 1. Determine the electrical energy in the circuit shown in the figure below (1 \u00b5F = 10-6 F) Known : Capacitor 1 (C1) = 3 \u00b5F Capacitor 2 (C2) = 1 \u00b5F Capacitor 3 (C3) = 2 \u00b5F Capacitor 4 (C4) = 6 \u00b5F Capacitor 5 &#8230; <a title=\"Electrical energy in capacitor circuits \u2013 problems and solutions\" class=\"read-more\" href=\"https:\/\/gurumuda.net\/physics\/electrical-energy-in-capacitor-circuits-problems-and-solutions.htm\" aria-label=\"Read more about Electrical energy in capacitor circuits \u2013 problems and solutions\">Read more<\/a><\/p>\n","protected":false,"gt_translate_keys":[{"key":"rendered","format":"html"}]},"author":1,"featured_media":0,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"_seopress_titles_title":"","_seopress_titles_desc":"","_seopress_robots_index":"","_seopress_robots_follow":"","_seopress_robots_imageindex":"","_seopress_robots_snippet":"","_seopress_robots_primary_cat":"","_seopress_robots_breadcrumbs":"","_seopress_robots_freeze_modified_date":"","_seopress_robots_custom_modified_date":"","_seopress_robots_canonical":"","_seopress_social_fb_title":"","_seopress_social_fb_desc":"","_seopress_social_fb_img":"","_seopress_social_fb_img_attachment_id":0,"_seopress_social_fb_img_width":0,"_seopress_social_fb_img_height":0,"_seopress_social_twitter_title":"","_seopress_social_twitter_desc":"","_seopress_social_twitter_img":"","_seopress_social_twitter_img_attachment_id":0,"_seopress_social_twitter_img_width":0,"_seopress_social_twitter_img_height":0,"_seopress_redirections_value":"","_seopress_redirections_enabled":"","_seopress_redirections_enabled_regex":"","_seopress_redirections_logged_status":"","_seopress_redirections_param":"","_seopress_redirections_type":0,"_seopress_analysis_target_kw":"Electrical energy in capacitor circuits \u2013 problems and solutions","_seopress_news_disabled":"","_seopress_video_disabled":"","_seopress_video":[],"_seopress_pro_schemas_manual":[],"_seopress_pro_rich_snippets_disable_all":"","_seopress_pro_rich_snippets_disable":[],"_seopress_pro_schemas":[],"footnotes":""},"categories":[3],"tags":[],"class_list":["post-3024","post","type-post","status-publish","format-standard","hentry","category-solved-problems-in-basic-physics"],"gt_translate_keys":[{"key":"link","format":"url"}],"_links":{"self":[{"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/posts\/3024","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/comments?post=3024"}],"version-history":[{"count":2,"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/posts\/3024\/revisions"}],"predecessor-version":[{"id":8530,"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/posts\/3024\/revisions\/8530"}],"wp:attachment":[{"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/media?parent=3024"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/categories?post=3024"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/tags?post=3024"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}