0.05 M NaOH solution offered resistance of 31.6 ohms in a conductivity cell at 298 K. If the cell constant of the cell is 0.367 cm−1, calculate the molar conductivity of the NaOH solution. - Chemistry (Theory)

प्रश्न

0.05 M NaOH solution offered resistance of 31.6 ohms in a conductivity cell at 298 K. If the cell constant of the cell is 0.367 cm⁻¹, calculate the molar conductivity of the NaOH solution.

संख्यात्मक

उत्तर

Given: Molarity of NaOH solution = 0.05 M

Resistance = 31.6 ohm

Cell constant = 0.367 cm⁻¹

Now,

Molar conductivity = `"Specific conductivity × 1000"/"Molarity"`

= `"cell constant"/"Resistance" xx 1000/"Molarity"`

= `(0.367 xx 1000)/(31.6 xx 0.05)`

= 232.3 ohm⁻¹cm²mol⁻¹

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Electrolytic Conductance - Relationship Between Conductance and Resistance

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Q 21. (b)Q 21. (a)Q 22.

पाठ 3: Electrochemistry - QUESTIONS FROM ISC EXAMINATION PAPERS [पृष्ठ २१४]

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नूतन Chemistry Part 1 and 2 [English] Class 12 ISC

पाठ 3 Electrochemistry
QUESTIONS FROM ISC EXAMINATION PAPERS | Q 21. (b) | पृष्ठ २१४

2013-2014 (March) Set 1 (with solutions)

Q 3.c.ii | 3 marks

0.05 M NaOH solution offered resistance of 31.6 ohms in a conductivity cell at 298 K. If the cell constant of the cell is 0.367 cm−1, calculate the molar conductivity of the NaOH solution. - Chemistry (Theory)

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0.05 M NaOH solution offered resistance of 31.6 ohms in a conductivity cell at 298 K. If the cell constant of the cell is 0.367 cm−1, calculate the molar conductivity of the NaOH solution. - Chemistry (Theory)

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