An experiment is
(a)
Answer to Problem 38AP
Explanation of Solution
Given information: Area of cross section of gauge wire is
Explanation:
Formula to calculate the resistance of wire 1.
Here,
Substitute
Thus, the resistance of wire 1 is
Formula to calculate the resistivity of wire 1.
Here,
Substitute
Thus, the resistivity of wire 1 is
Formula to calculate the resistance of wire 2.
Here,
Substitute
Thus, the resistance of wire 2 is
Formula to calculate the resistivity of wire 2.
Here,
Substitute
Thus, the resistivity of wire 2 is
Formula to calculate the resistance of wire 3.
Here,
Substitute
Thus, the resistance of wire 3 is
Formula to calculate the resistivity of wire 3.
Here,
Substitute
Thus, the resistivity of wire 3 is
Conclusion:
Therefore, the resistance of wire 1 is
(b)
Answer to Problem 38AP
Explanation of Solution
Given information: Area of cross section of gauge wire is
Explanation:
Formula to calculate the average value of resistivity.
Here,
Substitute
Thus, the average value of resistivity is
Conclusion:
Therefore, the average value of resistivity is
(c)
Answer to Problem 38AP
Explanation of Solution
Given information: Area of cross section of gauge wire is
Explanation:
The average value of resistivity is
The value of resistivity of Nichrome is ranging from
It is observed that the average value of the resistivity is equal to the resistivity of the nichrome. So, a experiment is done by the student to measure the electrical resistance of Nichrome in the form of wires of different lengths and cross sectional areas is correct.
Thus, this average value of resistivity compares with the value given in the table 26.2. It is observed that the average value of the resistivity is equal to the resistivity of the nichrome. So, a experiment is done by the student to measure the electrical resistance of Nichrome in the form of wires of different lengths and cross sectional areas is correct.
Conclusion:
Therefore, this average value of resistivity compares with the value given in the table 26.2. It is observed that the average value of the resistivity is equal to the resistivity of the nichrome. So, a experiment is done by the student to measure the electrical resistance of Nichrome in the form of wires of different lengths and cross sectional areas is correct.
Want to see more full solutions like this?
Chapter 26 Solutions
Physics for Scientists and Engineers
- An aluminum wire 1.628 mm in diameter (14-gauge) carries a current of 3.00 amps, (a) What is the absolute value of the charge density in the wire? (b) What is the drift velocity of the electrons? (c) What would be the drift velocity if the same gauge copper were used instead of aluminum? The density of copper is 8.96 g/cm3 and thedensity of aluminum is 2.70 g/cm3. The molar mass ofaluminum is 26.98 g/mol and the molar mass of copper is 63.5 g/mol. Assume each atom of metal contributes one free electron.arrow_forwardThe specific resistivity of copper is 1.724 micro-ohm-cm. Compare the resistance of a copper rod A and rod B, if rod A is 1 meter long and has an area of 2 sq. cm, and rod B is 1/ 2 meter long and has an area of 4 sq. cm. Please answer with a complete solution.arrow_forwardA copper wire with 4mm diameter, 2.0m length carries 6.0 ampere of current. Free electron density of copper is 8.5x10^28(1/m^3), resistivity of copper is ρ=1.6x10^-6 Ωcm. Find followings, A- Current density, B- Electrical field, C- Free electron drift velocity, D- Wasted energy as heat.arrow_forward
- Asaparrow_forwardA current of 0.228 A flows through a(n) 8.22 Q resister. Calculate the voltage drop across the resister. Express your answer to three significant figures. The voltage drop is Volts.arrow_forwardTwo copper wires A and B have the same length and are connected across the same battery. If Rg = 9R4, determine the following. HINT Apply Ohm's law and the relationship between resistivity and resistance. Click the hint button agai (a) the ratio of their cross-sectional areas Ag AA (b) the ratio of their resistivities PB = РА (c) the ratio of the currents in each wire IA .........:arrow_forward
- There is a potential difference of 1 V between the ends of a 10 cm long graphite rod that has a cross-sectional area of 1 mm2. The resistivity of graphite is 7.5E-6 Ω-m. Let's trace some intermediate quantities before finding the electric field inside the rod. Resistance is .75 ohms and Current is 1.3 Amps Electric field inside the rod is Group of answer choices 100 V/m 10 V/m 0.1 V/m 1 V/marrow_forwardIn the circuit shown in the diagram below, two thick wires connect a 1.7 volt battery to a Nichrome (NiCr) wire. Each thick connecting wire is 17 cm long, and has a radius of 11 mm. The thick wires are made of copper, which has 8.36e+28 mobile electrons per cubic meter, and an electron mobility of 0.00434 (m/s)/(V/m). The Nichrome wire is 8 cm long, and has a radius of 2 mm. Nichrome has 9e+28 mobile electrons per cubic meter, and an electron mobility of 7e-05 (m/s)/(V/m). [Copper What is the magnitude of the electric field in the thick copper wire? ]V/m What is the magnitude of the electric field in the thin Nichrome wire? v/m Nichrome Copperarrow_forwardA wire 2.3m long has a diameter of 0.38mm. When connected to a 1.5V battery, there is a current of 0.60A through the wire. What is the resistivity of the wire? (include units) tip: p=RA/Larrow_forward
- Fill in the blank with the correct answer. Sami suggested replacing the copper wire used in the socket with an aluminum wire. He first wants to find the drift speed of the electrons inside the aluminum wire. The wire is connected to a socket where the current flows through it has a magnitude of 12 A. The wire has a radius of 4.0 mm and a density of 3 2.7 g/cm The drift speed of an electron inside the aluminum wire is 8.1 m/s if each atom is given only one conduction electron. The molar mass of the aluminum is 27 g/mol. Avogadro's number is equal to 6.0 × 10 23 mol-1 Xarrow_forwardTwo copper wires A and B have the same length and are connected across the same battery. If RB = 8RA, determine the following. HINT (a) the ratio of their cross-sectional areas AB AA = (b) the ratio of their resistivities ?B ?A = (c) the ratio of the currents in each wire IB IA =arrow_forwardPlease type instead of hand writtingarrow_forward
- Principles of Physics: A Calculus-Based TextPhysicsISBN:9781133104261Author:Raymond A. Serway, John W. JewettPublisher:Cengage LearningCollege PhysicsPhysicsISBN:9781305952300Author:Raymond A. Serway, Chris VuillePublisher:Cengage Learning
- College PhysicsPhysicsISBN:9781285737027Author:Raymond A. Serway, Chris VuillePublisher:Cengage Learning