Let 2nd, 8th, and 44th terms of a non-constant A.P. be respectively the 1st, 2nd, and 3rd terms of a G.P. If the first term of A.P. is 1, then the sum of the first 20 terms is equal to
- 980
- 960
- 990
- 970
The Correct Option is D
Approach Solution - 1
To solve this problem, we need to first understand the relationship between an Arithmetic Progression (A.P.) and a Geometric Progression (G.P.). Let's dissect the given data step-by-step:
- The question states that the 2nd, 8th, and 44th terms of a non-constant A.P. form the 1st, 2nd, and 3rd terms of a G.P. respectively.
- The formula for the \(n\)-th term of an A.P. is given by: \(a_n = a + (n-1)d\), where \(a\) is the first term and \(d\) is the common difference.
- We know the first term of the A.P. is 1, thus \(a = 1\).
- Let's determine the terms of the A.P.:
- 2nd term: \(a_2 = a + d = 1 + d\)
- 8th term: \(a_8 = a + 7d = 1 + 7d\)
- 44th term: \(a_{44} = a + 43d = 1 + 43d\)
- These terms form a G.P., so we have:
- \(1 + 7d \div 1 + d = 1 + 43d \div 1 + 7d\)
- Cross-multiplying gives:
- \((1 + 7d)^2 = (1 + d)(1 + 43d)\)
- Expanding both sides:
- Left: \(1 + 14d + 49d^2\)
- Right: \(1 + 43d + d + 43d^2 = 1 + 44d + 43d^2\)
- We equate the expanded forms:
- \(1 + 14d + 49d^2 = 1 + 44d + 43d^2\)
- Simplifying: \(49d^2 + 14d = 43d^2 + 44d\)
- This gives: \(6d^2 - 30d = 0\)
- Factoring: \(6d(d - 5) = 0\)
- From this, we get \(d = 0 \, \text{or} \, d = 5\). Since the A.P. is non-constant, \(d\) cannot be 0, thus \(d = 5\).
- Now, we calculate the sum of the first 20 terms of the A.P. The formula for the sum of the first \(n\) terms is:
- \(S_n = \frac{n}{2} [2a + (n-1)d]\)
- Here, \(n = 20\), \(a = 1\), and \(d = 5\).
- Plugging in the values: \(S_{20} = \frac{20}{2}(2 \times 1 + 19 \times 5)\)
- Simplifying:
- \(S_{20} = 10 \times (2 + 95) = 10 \times 97 = 970\)
Thus, the sum of the first 20 terms of the A.P. is 970.
Approach Solution -2
Let the A.P. have the first term \( a = 1 \) and common difference \( d \). Then:
\[ \text{2nd term} = 1 + d, \quad \text{8th term} = 1 + 7d, \quad \text{44th term} = 1 + 43d \]
These terms are in G.P., so:
\[ (1 + 7d)^2 = (1 + d)(1 + 43d) \]
Expanding and simplifying:
\[ 1 + 49d^2 + 14d = 1 + 44d + 43d^2 \] \[ 6d^2 - 30d = 0 \] \[ d = 5 \]
The sum of the first 20 terms of the A.P. is:
\[ S_{20} = \frac{20}{2} \left[ 2 \cdot 1 + (20 - 1) \cdot 5 \right] \] \[ = 10 \cdot (2 + 95) = 10 \cdot 97 = 970 \]
Thus, the answer is:
970
Top JEE Main Mathematics Questions
- The value of is
- The number of terms of an is even. The sum of the odd terms is and of the even terms is . The last term exceeds the first by . Then the number of terms in the series is ______.
- If , then the general value of is:
- The general solution of
- If the constant term in the binomial expansion of $\left(\frac{x^{\frac{3}{2}}}{2}-\frac{4}{x^l}\right)^9$ is $-84$ and the coefficient of $x^{-3 l}$ is $2^\alpha \beta$, where $\beta<0$ is an odd number, then $|\alpha l-\beta|$ is equal to_____
Top JEE Main Sequence and series Questions
- The number of terms of an is even. The sum of the odd terms is and of the even terms is . The last term exceeds the first by . Then the number of terms in the series is ______.
- \(3, a, b, c\) are in Ap and \(3, a-1, b+1, c+9\) are in GP. Then AM of \(a, b, c\) is
- If \( \alpha, \beta \) are the roots of the equation \( x^2 - x - 1 = 0 \) and \( S_n = 2023 \alpha^n + 2024 \beta^n \), then:
- The function \( f(x) = 2x + 3(x)^{\frac{2}{3}}, x \in \mathbb{R} \), has
- Let \( S_n \) be the sum to \( n \)-terms of an arithmetic progression \( 3, 7, 11, \ldots \).
If \( 40 < \left( \frac{6}{n(n+1)} \sum_{k=1}^{n} S_k \right) <42 \), then \( n \) equals ___.
Top JEE Main Questions
- In a hydrogen like atom, when an electron jumps from the $M$ - shell to the $L$ - shell, the wavelength of emitted radiation is $\lambda$. If an electron jumps from $N$-shell to the $L$-shell, the wavelength of emitted radiation will be :
- Two masses $m$ and $\frac{m}{2}$ are connected at the two ends of a massless rigid rod of length $l$. The rod is suspended by a thin wire of torsional constant $k$ at the centre of mass of the rod-mass system(see figure). Because of torsional constant $k$, the restoring torque is $\tau =k\theta$ for angular displacement $\theta$. If the rod is rota ted by $\theta_0$ and released, the tension in it when it passes through its mean position will be:
What will be the equilibrium constant of the given reaction carried out in a \(5 \,L\) vessel and having equilibrium amounts of \(A_2\) and \(A\) as \(0.5\) mole and \(2 \times 10^{-6}\) mole respectively?
The reaction : \(A_2 \rightleftharpoons 2A\)- The value of is
- The number of terms of an is even. The sum of the odd terms is and of the even terms is . The last term exceeds the first by . Then the number of terms in the series is ______.