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Current Question (ID: 10355)

Question:
The stress-strain graphs for materials $A$ and $B$ are shown in the figure. Young's modulus of material $A$ is: (the graphs are drawn to the same scale)
Options:
  • 1. equal to material $B$
  • 2. less than material $B$
  • 3. greater than material $B$
  • 4. can't say
Solution:
Hint: Young's modulus is the slope of the stress-strain graph. Step 1: Compare the slopes of the graphs. Since the slope of graph $A$ is greater than graph $B$. Step 2: Compare Young's modulus of the materials. So, Young's modulus of material $A$ is greater than material $B$.

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Expected JSON Format:

{
  "question": "The mass of carbon present in 0.5 mole of $\\mathrm{K}_4[\\mathrm{Fe(CN)}_6]$ is:",
  "options": [
    {
      "id": 1,
      "text": "1.8 g"
    },
    {
      "id": 2,
      "text": "18 g"
    },
    {
      "id": 3,
      "text": "3.6 g"
    },
    {
      "id": 4,
      "text": "36 g"
    }
  ],
  "solution": "\\begin{align}\n&\\text{Hint: Mole concept}\\\\\n&1 \\text{ mole of } \\mathrm{K}_4[\\mathrm{Fe(CN)}_6] = 6 \\text{ moles of carbon atom}\\\\\n&0.5 \\text{ mole of } \\mathrm{K}_4[\\mathrm{Fe(CN)}_6] = 6 \\times 0.5 \\text{ mol} = 3 \\text{ mol}\\\\\n&1 \\text{ mol of carbon} = 12 \\text{ g}\\\\\n&3 \\text{ mol carbon} = 12 \\times 3 = 36 \\text{ g}\\\\\n&\\text{Hence, 36 g mass of carbon present in 0.5 mole of } \\mathrm{K}_4[\\mathrm{Fe(CN)}_6].\n\\end{align}",
  "correct_answer": 4
}