1 Basic Principles |
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1 | (4) |
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2 | (1) |
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3 | (2) |
2 Electrodynamic Force |
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5 | (28) |
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2.1 Electric Charges at Rest-Electric Force |
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5 | (2) |
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2.2 Uniform Motion-Magnetic Force |
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7 | (14) |
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7 | (1) |
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2.2.2 Measurement of Parallel Motion |
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8 | (1) |
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2.2.3 Measurement of Perpendicular Motion |
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9 | (2) |
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2.2.4 Magnetic Force for General Uniform Motion |
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11 | (4) |
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2.2.5 Evaluation of the Magnetic Force Formulas |
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15 | (2) |
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2.3 Accelerated Motion-Inductive Force |
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17 | (4) |
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21 | (1) |
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22 | (9) |
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31 | (2) |
3 Electrodynamic Energy |
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33 | (14) |
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34 | (1) |
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35 | (1) |
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36 | (4) |
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3.3.1 Magnetic Force from Magnetic Energy |
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39 | (1) |
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3.4 General Inductance-Interaction Between Two Current Elements |
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40 | (1) |
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3.5 Faraday-Henry's Induction Law |
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41 | (1) |
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3.6 Electrodynamic Force-Updated |
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42 | (1) |
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42 | (1) |
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43 | (3) |
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46 | (1) |
4 Macroscopic Systems of Unbound Charges |
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47 | (32) |
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48 | (11) |
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4.1.1 Electrically Charged Wire and Point Charge |
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48 | (1) |
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4.1.2 Force Between Two Electrically Charged Wires |
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49 | (1) |
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4.1.3 Force Between a Point Charge and an Electrically Charged Plate |
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50 | (2) |
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4.1.4 Electric Force Between a Point Charge and a Charged Sphere |
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52 | (2) |
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4.1.5 Capacitor and Capacitance |
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54 | (2) |
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4.1.6 Electric Energy Stored in a Capacitor |
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56 | (1) |
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4.1.7 Electric Force Between Two Charged Plates |
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57 | (2) |
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59 | (13) |
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4.2.1 Magnetic Force Between a Point Charge and a Long Straight Current |
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59 | (1) |
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4.2.2 Magnetic Force Between Point Charge and Large Current-Carrying Plate |
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60 | (1) |
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4.2.3 Magnetic Force Between a Straight Conductor and a Large Plate |
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61 | (1) |
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4.2.4 Magnetic Force and Energy Between Two Parallel Current-Carrying Plates |
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62 | (1) |
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63 | (8) |
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4.2.6 Induction in a Moving Rod Interacting with Current-Carrying Plate |
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71 | (1) |
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72 | (2) |
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74 | (3) |
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77 | (2) |
5 Conductors and Resistive Effects |
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79 | (14) |
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5.1 The Metal as a Conductor |
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80 | (1) |
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80 | (2) |
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82 | (1) |
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83 | (1) |
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5.5 The Principle of Charge Conservation |
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84 | (1) |
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85 | (1) |
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85 | (6) |
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91 | (2) |
6 Electric Circuits |
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93 | (12) |
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6.1 Measurement of Capacitance Using an RC Circuit |
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93 | (1) |
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6.2 Measurement of Inductance Using an RL Circuit |
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94 | (1) |
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6.3 The Oscillation Circuit |
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95 | (5) |
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6.3.1 The RLC Circuit with Constant Input Voltage |
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95 | (2) |
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6.3.2 Forced Oscillation Circuit |
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97 | (2) |
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99 | (1) |
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100 | (1) |
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101 | (2) |
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103 | (2) |
7 Electric and Magnetic Dipoles |
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105 | (24) |
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105 | (6) |
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7.1.1 Interaction Between Dipole and Point Charge |
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107 | (1) |
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7.1.2 Dipole-Dipole Interaction |
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108 | (1) |
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7.1.3 Interaction Between a Charged Plate and a Dipole |
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109 | (1) |
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7.1.4 Generalized Electric Dipole Moment |
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110 | (1) |
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111 | (7) |
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7.2.1 Interaction Between a Magnetic Dipole and a Large Current-Carrying Plate |
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113 | (2) |
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7.2.2 Induced Voltage in a Rotating Loop Interacting with a Current-Carrying Plate |
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115 | (1) |
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7.2.3 Generalized Magnetic Dipole Moment-Interaction Between Rotating Cylinders |
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116 | (2) |
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118 | (1) |
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119 | (9) |
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128 | (1) |
8 Material Properties |
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129 | (44) |
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8.1 Electric Response Forces |
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129 | (13) |
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8.1.1 Electric Force Between a Charged Capacitor and a Material |
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131 | (3) |
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8.1.2 The Dielectric Constant-Not a Constant |
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134 | (1) |
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135 | (3) |
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8.1.4 Three Examples of Polarisation |
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138 | (4) |
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8.2 Magnetic Response Forces |
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142 | (15) |
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8.2.1 Magnetization Currents |
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144 | (3) |
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8.2.2 Magnetization from a Magnetic Influence |
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147 | (10) |
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8.3 General Multipole Interactions |
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157 | (1) |
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8.4 Measurement of Electric and Magnetic Material Properties |
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157 | (4) |
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8.4.1 Measurements on Solids |
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158 | (1) |
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8.4.2 Measurements on Liquids |
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158 | (3) |
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161 | (2) |
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163 | (9) |
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172 | (1) |
9 Motional Consequences |
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173 | (22) |
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9.1 Modelling the Electrodynamic Interaction |
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174 | (1) |
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9.2 Magnetism as a Motional Consequence |
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174 | (2) |
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9.3 Induction as a Motional Consequence |
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176 | (1) |
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9.4 Special Theory of Relativity |
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177 | (6) |
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177 | (2) |
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179 | (1) |
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9.4.3 Relativistic Momentum |
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180 | (1) |
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9.4.4 Relativistic Energy |
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181 | (2) |
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183 | (1) |
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184 | (9) |
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193 | (2) |
10 Field Theory |
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195 | (24) |
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10.1 The Concept of a Field |
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195 | (1) |
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10.2 The Electric and the Magnetic Fields |
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196 | (1) |
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197 | (1) |
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198 | (2) |
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200 | (7) |
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10.5.1 General Vector Field |
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200 | (3) |
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10.5.2 Divergence and Curl for Static Electric and Magnetic Fields |
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203 | (3) |
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10.5.3 Boundary Conditions for Static Electric and Magnetic Fields |
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206 | (1) |
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207 | (3) |
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10.6.1 Accelerating Charges-The Time Variation of the Magnetic Field |
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207 | (2) |
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10.6.2 The Continuity Equation-Time Variation of Electric Field |
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209 | (1) |
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210 | (1) |
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10.8 Power Transportation-The Poynting Vector |
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210 | (2) |
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212 | (2) |
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214 | (3) |
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217 | (2) |
11 Antenna Theory-The Loop and the Dipole |
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219 | (20) |
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220 | (2) |
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222 | (6) |
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11.2.1 The Oscillating Electric Dipole |
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223 | (4) |
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11.2.2 The Inductive Force |
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227 | (1) |
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227 | (1) |
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228 | (1) |
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229 | (3) |
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11.4.1 The Dipole Antenna |
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230 | (1) |
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231 | (1) |
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232 | (1) |
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232 | (1) |
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233 | (5) |
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238 | (1) |
Appendix A: Electric Multipoles |
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239 | (8) |
Appendix B: Magnetic Multipoles |
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247 | (6) |
Appendix C: Magnetic Energy in the Presence of a Material |
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253 | (2) |
Appendix D: Solutions to Exercises |
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255 | (98) |
Appendix E: General Magnetic Force Formula |
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353 | (4) |
Index |
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357 | |