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9.1. INSTANTANEOUS AND AVERAGE POWER ο The instantaneous power is the power at any instant of time. It is the rate at which an element absorbs energy. ο Let the voltage and current at the terminals of the circuit be; 9.1. INSTANTANEOUS AND AVERAGE POWER ο ππ πππ πΌπ are the amplitudes (or peak) values, ππ£ and ππ are the phase angles of the voltage and current. ο The instantantaneous power absorbed by the circuit is; 9.1. INSTANTANEOUS AND AVERAGE POWER ο This shows us that the instantaneous power has two parts. ο The first part is constant or time independent. Δ°ts value depends on the phase on difference between the voltage and the current. ο The second part is a sinusoidal function whose frequency is 2Ο, which is twice the angular frequency of the voltage or current. 9.1. INSTANTANEOUS AND AVERAGE POWER ο In figure; π = 2π/π is the period of voltage or current. ο p(t) is periodic. π π‘ = π(π‘ + π0 ) and has a period of π0 = π 2 ο We also observe that p(t) is positive for some part of each cycle and negative for the rest of cycle ο When p(t) is positive, power is absorbed by the circuit. ο When p(t) is negative power is absorbed by the source; thar is power is transferred from the circuit to the source. This is possible because of the storage elements in the circuit. 9.1. INSTANTANEOUS AND AVERAGE POWER 9.1. INSTANTANEOUS AND AVERAGE POWER 0 9.1. INSTANTANEOUS AND AVERAGE POWER 9.1. INSTANTANEOUS AND AVERAGE POWER Example 9.1: For given voltage and current, find the intantaneous power and the average power absorbed by the passive linear network. Solution: Example 9.1: Example 9.2: Solution: Example 9.3: For the circuit in Figure find the average power supplied by the source and the average power absorbed by the resistor. Solution: Example 9.3: Example 9.4: Determine the power generated by each source and the average power absorbed by each passive element in the circuit of figure. Solution: Example 9.4: This average power absorbed by the source, in view of the direction πΌ2 and the polarity of the voltage source. That is the circuit delivering average power to the voltage source. Example 9.4: Example 9.4: 9.2. Maximum Average Power Transfer 9.2. Maximum Average Power Transfer Our objective is to adjust the load parameters π πΏ and ππΏ so that P is maximum. For maximum average power transfer, ππΏ must be selected so that ππΏ = βππβ and π πΏ = π πβ 9.2. Maximum Average Power Transfer In a situation in whcih the load is purely real, the condition for the maximum power transfer is obtained by setting, ππΏ = 0. Example 9.5: Determine the load impedance ππΏ that maximizes the average power drawn from the circuit of Figure. What is the maximum average power? Solution: Example 9.5: Example 9.6: Solution: Example 9.6:
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