Using the circuit shown in Figure, solve for the following: The total equivalent resistance of the circuit. The current going through resistors A and C. The voltage drop across each resistor. please give me the correct answers G C +6V B C 12 Ω 25 Ω 18 Ω D 4.5 Ω www
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- 2. A three-point loading scheme for measuring the stress-strain behavior and flexural strength, σF, (stress at fracture) of brittle ceramics for rectangular and circular cross sections materials are shown below. 3FfL = πR³ 2bd2 (depending on the FfL The flexural strength σF, can be calculated as: σFƒ cross section shape). = Calculate the ceramic flexural strength when Fƒ=1030 N, L=3.5 cm and 2R=b=d=1 cm and define which structure is stronger. Show your work. Note when you calculate, don't forget to unit conversion! Ff R Compression TensionFor this simulation set the current in the left wire to 2 A. By adjusting the current in the right wire only, what is the largest ma magnetic field you can obtain at the following locations? Assume all numbers stated in this problem are accurate to three sign figures. Try to solve the problems using principles of physics, and then use the simulation to check your answers. Under these conditions, the largest magnitude magnetic field obtainable using the simulation at each point below. (a)x 0.24 m, Y=0m Number i Units (b)X Om, Y=0.82 m Number (c)X Om. Y= 0.22 m UnitsThe donor level associated with the nitrogen lies about 1.7 eV below the conduction band. How does this donor level arise? Why do natural diamonds do not behave as semi-conductors?
- Si sample of unknown doping, Hall measurement has been made and thefollowing information obtained: W = 0.05 cm, A = 1.6 x 10-3 cm2, I = 2.5 mA, and the magnetic field is 30 nT (1T = 10^-4 Wb/cm2). If a Hall voltage of +10 mV is measured, find the Hall coefficient, conductivity type, majority carrier concentration, resistivity, and mobility of the semiconductor sample. Plz, don't answer who don't know exactly.Which of the following statements results in an increased magnetic field strength inside a coil with N turns, radius R, and current I? Reduce the number of turns of wire in the coil. All of the above. Insert an iron rod into the middle of the coil. Reduce the current in the coil.Q1) Plot the conductance • on y-axis and time on x-axis. Q2) How to determine initial conductance (Go) and final conductance (Goo). Time Conductance (10-³s) 1.92 1.9 1.88 1 23456 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 1.87 1.85 1.8 1.73 1.63 1.62 1.59 1.58 1.56 1.54 1.51 1.48 1.47 1.45 1.43 1.40 1.39
- In an x-ray diffraction measurement of BCC Nb, the observed angle (2Θ) for the (211) set of planes occurs at 75.90 degrees (1st order) and a monochromatic x-ray source at λ = 0.1659 nm is used. Compute:a) the interplanar spacing of the (211) set of planes,b) the atomic radius of Nb,c) the anticipated 1st order observed angle (2Θ) for the (111) lattice planes in Nb.d) Estimate the relative intensities observed for the (211) and the (111) diffraction peaks in Nb. Describe your reasoning.FIGURE 24-8 2µF 4µF HH 3µF HH 6µF 90V A system of capacitors is connected across a 90 V DC voltage source as shown in Fig. 24-8. What is the equivalent capacitance of this system?Using a simple infinite barrier approximation, calculate the “effective bandgap” of a 10 nm GaAs/AlGaAs quantum well grown along [001] direction. If there is a one-monolayer fluctuation in the well size, how much will the effective bandgap change? This example gives an idea of how stringent the control has to be in order to exploit heterostructures.
- Figure 1 shows the stress-number cycles to failure (S-N) curve for a cylindrical acetal polymer bar. The cylindrical bar is 200 mm long and 15 mm in diameter is subjected to a vibrational load at one end of the bar at a frequency of 500 vibrations per minute with a load of 50 N. 60 50 8 Stress amplitude (MPa) 30 20 10 105 106 107 108 Cycles to failure Figure 1: The S-N fatigue curve for an acetal polymer. 104 (i) Evaluate the duration (in hours) the part will survive before breaking? (ii) Suppose the cylindrical bar is to survive for one million cycles under conditions that provide for equal compressive and tensile stresses. Evaluate the maximum stress, the minimum stress, and the mean stress on the part during its use. Explain the effect of frequency on the stress application would have on your answers.write a summary of each of the techniques for measuring vacancyconcentrations, noted therein. (1) Measurements of the quenched-in residual electricalresistivity of aluminium rapidly cooled from temperatures be-low about 800 K with initial quenching rates of 2 × 106 K s−1give the enthalpy of formation of monovacancies H F1V =(0.65 ± 0.01) eV.(2) Comparison of the quenching data with high-temperature differential-dilatometry data gives the monova-cancy formation entropy SF1V = (0.76 ± 0.4)kB (kB =Boltzmann’s constant) and the low-temperature resistivity perunit concentration of vacancies ρ1V = (1.9 ± 0.1) μm.(3) The binding enthalpy of divacancies in Al is H B2V =(0.17 5 ± 0.02 5) eV. This is in agreement with earlier ex-perimental determinations by Doyama and Koehler 48) and byLevy et al. 49, 50) but in marked contrast to the claim of Carlinget al., 23) based on computations with the generalized gradi-ent approximation, that in Al H B2V is zero or even negativeand therefore the…Suppose that a beam of light with a wavelength of 450 nm illuminates a reflection grating at an angle of20 degrees with respect to the normal of the grating, as shown in the diagram below. The grating has1200 lines (or grooves) per mm. How many different rays of light will emerge from this grating?