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The 24th term of AP is twice it's 10th term.show that its 72 term is 4 times it's 15th term .?
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The 24th term of AP is twice it's 10th term.show that its 72 term is 4...
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The 24th term of AP is twice it's 10th term.show that its 72 term is 4...
Understanding the Problem
In an arithmetic progression (AP), the nth term can be expressed as:
- \( a_n = a + (n-1)d \)
Where:
- \( a \) = first term
- \( d \) = common difference
We need to show that the 72nd term is 4 times the 15th term given that the 24th term is twice the 10th term.
Step 1: Establish the Given Condition
We know that:
- \( a_{24} = 2 \times a_{10} \)
Using the formula for the terms of the AP:
- \( a + 23d = 2(a + 9d) \)
Simplifying this equation:
- \( a + 23d = 2a + 18d \)
Rearranging gives:
- \( a + 23d - 2a - 18d = 0 \)
Thus:
- \( -a + 5d = 0 \)
- Therefore, \( a = 5d \)
Step 2: Find the 72nd and 15th Terms
Now, we need to find the 72nd term \( a_{72} \) and the 15th term \( a_{15} \):
- \( a_{72} = a + 71d \)
- \( a_{15} = a + 14d \)
Substituting \( a = 5d \):
- \( a_{72} = 5d + 71d = 76d \)
- \( a_{15} = 5d + 14d = 19d \)
Step 3: Show the Relationship
Now, we need to check if \( a_{72} = 4 \times a_{15} \):
- \( 4 \times a_{15} = 4 \times 19d = 76d \)
Since both \( a_{72} \) and \( 4 \times a_{15} \) equal \( 76d \), we conclude that:
- \( a_{72} = 4 \times a_{15} \)
Conclusion
Thus, it is proven that the 72nd term of the AP is indeed four times the 15th term, satisfying the condition outlined.
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The 24th term of AP is twice it's 10th term.show that its 72 term is 4 times it's 15th term .?
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