GO In Fig. 31-33, a generator with an adjustable frequency of oscillation is connected to resistance R = 100 Ω, inductances L 1 = 1.70 mH and L 2 = 2.30 mH, and capacitances C 1 = 4.00 µ F, C 2 = 2.50 µ F, and C 3 = 3.50 µ f. (a) What is the resonant frequency of the circuit? ( Hint: See Problem 47 in Chapter 30.) What happens to the resonant frequency if (b) R is increased, (c) L 1 is increased, and (d) C 3 is removed from the circuit? Figure 31-33 Problem 49.
GO In Fig. 31-33, a generator with an adjustable frequency of oscillation is connected to resistance R = 100 Ω, inductances L 1 = 1.70 mH and L 2 = 2.30 mH, and capacitances C 1 = 4.00 µ F, C 2 = 2.50 µ F, and C 3 = 3.50 µ f. (a) What is the resonant frequency of the circuit? ( Hint: See Problem 47 in Chapter 30.) What happens to the resonant frequency if (b) R is increased, (c) L 1 is increased, and (d) C 3 is removed from the circuit? Figure 31-33 Problem 49.
GO In Fig. 31-33, a generator with an adjustable frequency of oscillation is connected to resistance R = 100 Ω, inductances L1= 1.70 mH and L2 = 2.30 mH, and capacitances C1 = 4.00 µF, C2 = 2.50 µF, and C3 = 3.50 µ
f.
(a) What is the resonant frequency of the circuit? (Hint: See Problem 47 in Chapter 30.) What happens to the resonant frequency if (b) R is increased, (c) L1 is increased, and (d) C3 is removed from the circuit?
The force of the quadriceps (Fq) and force of the patellar tendon (Fp) is identical (i.e., 1000 N each). In the figure below angle in blue is Θ and the in green is half Θ (i.e., Θ/2). A) Calculate the patellar reaction force (i.e., R resultant vector is the sum of the horizontal component of the quadriceps and patellar tendon force) at the following joint angles: you need to provide a diagram showing the vector and its components for each part. a1) Θ = 160 degrees, a2) Θ = 90 degrees. NOTE: USE ONLY TRIGNOMETRIC FUNCTIONS (SIN/TAN/COS, NO LAW OF COSINES, NO COMPLICATED ALGEBRAIC EQUATIONS OR ANYTHING ELSE, ETC. Question A has 2 parts!
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