Use the equation 1. Frequency dependence of the electrical conductivity. m(dv/dt +v/t)=-eE for the electrical drift velocity v to show that the conductivity at frequency @ is σ(ω) = σ(0) where o(0) = ne² t/m. 1+i@r (1+(@T)²
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- Equation1: Q(t)=CVcap(t) Equation 2: Qcharging(t)=CV(1−e^(−t/RC)) 1. Combine equations 1 and 2 to create an equation capable of finding the time-dependent voltage across a charging capacitor. Equation 3: I(t)≡(dQ(t))/(dt) 2. Combine equations 2 and 3 to create an equation capable of finding the time-dependent current across a charging capacitor.Consider following circuit with R1 = 60 Ω, R2 = 18 Ω, R3 = 60 / 10 Ω, R4 = 18/10 Ω and and ξ=18 V d. Write Kirchhoff’s potential difference rule for right loop e. Calculate currents i1 , i2 and i3 ? f. Calculate the potential difference of R2 ? g. Calculate the potential difference of R3 ? h. Calculate the heat dissipation of R2 resistor i. Cross sections through two long conductors of the same length and material, with square crosssections of edge lengths are shown below. Conductor Y fits snugly within conductor X, Rank theresistance of X and Y?1. For the circuit to the right, let S Ri be 500 Ohms, R2 = 100 Ohms, and the capacitance of the capacitor equal to 10-6 F + 10.0 V R1 R2 a. Find the current in each branch of the circuit at t = 0 and t = infinity. b. Find the charge on the capacitor at t = infinity.
- K, and a generator of voltage V. Mark as true or false the following statements concerning the stor phase of V, V, V, Vc and VR- 1. V, and VR are in phase. 2. Vị leads Ve by 90°. 3. V is at angle o relative to VR- 4. VL-Vc is in phase with V,. 5. Vc lags VR by 90°. 5 give V. = 10.76 V. V.=5.68 V.T Part A What is the line integral of B between points i and f in (Figure 1)? Assume that I = 1.0 A. Express your answer in tesla-meters. View Available Hint(s) & ja 7 B. ds = Provide Feedback Submit F7 15] ΑΣΦ 8 DII F8 9 F9 0 ? A F10 T.m F11 F12 Review Next > de2 陳 ΔΔΔΔΔΔΔ Δ Δ ΔΔ ΔΔΔΔΔ ΔΔΔ Δ Δ Δ Δ Δ Δ Δ ΔΔΔΔ Consider the circuit diagram below. D 9.0 V Fuse wing if you have the following fuses available, which fuse Dis the smallest sized fused that could allow ▷ this circuit to still operate? Show your and circle your answer. work A) I amp fuse b) 2 amp fuse с 5.0 Ω d) 8.052 4 amp fuse 8 amp fuse A K
- The capacitor in the circuit shown is fully charged by a 24 V battery. The switch is closed at t = 0. At sometime after the switch is closed, the voltage across the capacitor is measured to be 10 V. What is the current in the circuit at this time, in Ampere? C = 3.0 µF, and R = 2.0 02. Your answer needs to have 2 significant figures, including the negative sign in your answer if needed. Do not include the positive sign if the answer is positive. No unit is needed in your answer, it is already given in the question statement. CilQuestion A3 A large capacitor of 3000 µF is charged by a constant current. After 1 minute it reaches a voltage of 100 V. At that voltage, the charging circuit is disconnected. a) Calculate the charging current. b) A second identical capacitor is connected across the capacitor, using wires with 1 kN re- sistance. Sketch a graph of the voltages on the two capacitors as a function of time, with appropriate numbers and units marked on the axes.1.a. An unintentional electrical path that's conducting current from an ungrounded conductor to a normallynoncurrent-carrying metal raceway would be defined as a groundA. conductor.B. fault.C. electrode.D. interrupter. 1.b. It's important for designers and installers to ensure that equipment ground-fault current paths have________, which will facilitate the tripping of the overcurrent protective device.A. low impedanceB. proper labelingC. high impedanceD. an equilibrium