Q.Write the definitions of electrical conductivity and specific conductivity.
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At a fixed temperature, a conductor's resistance is found to depend on three things: the material it is made of, its length l, and its cross-sectional area A -- specifically, R∝l and R∝1/A, combined as R=ρl/A, where ρ (rho), the RESISTIVITY (or specific resistance), is the material-dependent constant of proportionality, with SI unit the ohm-metre (Ωm). Numerically, resistivity is the resistance of a sample that has BOTH unit length and unit cross-sectional area at once. Resistivity is a property of the material itself, unlike resistance, which refers to one particular object of a given shape; conductors have resistivity of order 10−8Ωm, insulators as high as 1016Ωm, and semiconductors span the wide middle ground -- a span of some 24 orders of magnitude across ordinary materials. …
Electrical conductivity (conductance) G=R1 — reciprocal of resistance; unit siemens (S) or mho. Specific conductivity (conductivity) σ=ρ1 — reciprocal of resistivity; unit S m …
Conductance is the reciprocal of resistance (G=1/R); specific conductivity is the reciprocal of resistivity (σ=1/ρ).
Electrical conductivity (conductance). The conductance of a conductor is the reciprocal of its resistance and measures how easily current flows through it:
G=R1.
Its SI unit is the siemens (S) or mho (Ω−1).
Specific conductivity (conductivity). The conductivity of a material is the reciprocal of its specific resistance (resistivity):
σ=ρ1. …
Showing the 12 most recent of 36 on this concept.
- CBSE 2026Set DS1 markQ.Write the definitions of electrical conductivity and specific conductivity.
›Reveal solutionSolution
Conductance is the reciprocal of resistance (G=1/R); specific conductivity is the reciprocal of resistivity (σ=1/ρ).
Electrical conductivity (conductance). The conductance of a conductor is the reciprocal of its resistance and measures how easily current flows through it:
G=R1.
Its SI unit is the siemens (S) or mho (Ω−1).
Specific conductivity (conductivity). The conductivity of a material is the reciprocal of its specific resistance (resistivity):
σ=ρ1. …
- CBSE 2026Set A1 markMCQQ.Which factor of the following does not affect resistance of a conducting wire? (A) Length (B) Temperature (C) Material (D) Voltage applied
›Reveal solutionSolution
R = ρL/A; ρ depends on material and temperature. Applied voltage does not change R (for an ohmic conductor).
The resistance of a wire is
R=ρAL,
where ρ is the resistivity (a property of the material, which also varies with temperature), L is the length, and A is the cross-sectional area.
…
- CBSE 2026Set ANNUAL1 markMCQQ.Two wires that are made up of two different materials have specific resistances in the ratio 2:3, lengths 3:4 and areas 4:5. The ratio of their resistances is(a) 6:5(b) 6:8(c) 5:8(d) 1:2
›Reveal solutionSolution
Combining the given ratios of resistivity, length and area through R=ρL/A gives R1:R2=5:8.
Resistance of a wire is R=ρAL, where ρ is resistivity, L is length and A is area of cross-section.
Given: ρ1:ρ2=2:3, L1:L2=3:4, A1:A2=4:5.
…
- CBSE 2026Set ANNUAL1 markQ.Fill in the blank: The reciprocal of resistivity is .............
›Reveal solutionSolution
Resistivity ρ and conductivity σ are reciprocals of each other: σ=1/ρ.
Resistivity (ρ) measures how strongly a material opposes current flow. Its reciprocal, σ=ρ1, measures how easily a material conducts current, and is called conductivity …
- CBSE 2026Set ANNUAL1 markMCQQ.The resistance of a wire is 'R' ohm. If it is melted and stretched to 5 times its original length, its new resistances will be(a) 5 R(b) R/5(c) 25 R(d) R/25
›Reveal solutionSolution
Stretching a wire to 5 times its length (with volume conserved) shrinks its area by 5 times too, so resistance scales up by 52=25.
Original: R=ρAL.
On melting and stretching, the volume of the metal is conserved: AL=A′L′. With L′=5L:
A′=L′AL=5LAL=5A
New resistance:
R′=ρA′L′=ρA/55L=25(ρAL)=25R
…
- CBSE 2025Set X11 markMCQQ.Resistivity of a metal wire depends on its :(a) area of cross-section(b) length(c) material(d) volume
›Reveal solutionSolution
(c) material. Resistivity ρ is an intrinsic property of the substance (and its temperature); it does not depend on the wire's dimensions. Resistance R=ρL/A depends on length and area, …
- CBSE 2025Set ANNUAL1 markQ.Resistivity of material of a conducting wire of length ℓ is ρ. If length of this wire is increased to 2ℓ then what will be resistivity of material of this wire?
›Reveal solutionSolution
Resistivity is an intrinsic material property; it does not depend on the wire's length.
Resistivity ρ is a property of the material of the conductor (it depends on the nature of the material and on temperature), not on the conductor's dimensions. The resistance R=ρL/A does depend on length L and area A — doubling the length to 2ℓ would double the resistance (if the area stays the same) — but the resistivity ρ itself stays exactly the same, since the …
- CBSE 2025Set D1 markMCQQ.Which of the following represents resistance R? ( ρ = resistivity, l = length of a material, A = cross-sectional area ) (A) ρ.(l/A) (B) ρ.(A/l) (C) l/ρA (D) lA/ρ
›Reveal solutionSolution
Resistance of a uniform conductor is R = ρl/A.
The resistance of a conductor is directly proportional to its length l and inversely proportional to its cross-sectional area A, with the resistivity ρ as the constant of proportionality:
R=ρAl
…
- CBSE 2025Set ANNUAL1 markMCQQ.When the length of a copper wire is doubled keeping its area of cross-section same its resistance is :(a) doubled(b) half(c) no change(d) four times
›Reveal solutionSolution
Resistance is directly proportional to length, so doubling the length doubles the resistance.
Resistance of a wire is given by
R=ρAL
where ρ is resistivity (a material constant, unchanged), L is length, and A is the cross-sectional area (kept the same here).
…
- CBSE 2025Set ANNUAL1 markQ.The specific resistances of copper, silver and constantan are 1.78×10−6Ω-cm, 1×10−6Ω-cm and 4.8×10−6Ω-cm respectively. Which is the best conductor and why? OR In which way should the cells be combined to get maximum current, when the external resistance is very high compared to the total internal resistance of the cells?
›Reveal solutionSolution
Comparing resistivities shows silver has the lowest value, making it the best conductor; for the alternative, cells in series maximize current when external resistance dominates.
Which is the best conductor?
The specific resistance (resistivity) ρ measures how strongly a material opposes the flow of current -- the lower the resistivity, the better the conductor (since resistance R=ρl/A is directly proportional to ρ).
Given:
ρCu=1.78×10−6Ω-cm,ρAg=1×10−6Ω-cm,ρconstantan=4.8×10−6Ω-cm
Silver has the smallest resistivity of the three, so silver is the best conductor.
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- CBSE 2024Set FS1 markQ.Write the definition and dimensional formula of electrical conductivity.
›Reveal solutionSolution
Conductivity is the reciprocal of resistivity, σ=1/ρ, with dimensions [M−1L−3T3A2].
Definition. Electrical conductivity σ of a material is the reciprocal of its resistivity, σ=ρ1. Equivalently, in the microscopic form of Ohm's law J=σE, it is the current density produced per unit electric field. Its SI unit is siemens per metre (Ω−1m−1).
Dimensional formula. Resistivity ρ=LRA with [R]=[ML2T−3A−2] gives …
- CBSE 2024Set A1 markMCQQ.The resistance of any wire is 500 Ω. Its electrical conductivity will be (A) 0.002 ohm^-1 (B) 0.02 ohm^-1 (C) 50 ohm^-1 (D) 500 ohm^-1
›Reveal solutionSolution
Conductance is the reciprocal of resistance: G = 1/R = 1/500 = 0.002 Ω⁻¹.
The electrical conductance (reciprocal of resistance) is
G=R1=5001=0.002 Ω−1 (siemens)
…
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