limn→∞∑k=1n(2+3kn−−−−−−√4⋅3n)=
To evaluate the limit of the given series as n approaches infinity, let’s break it down step by step
To evaluate the limit of the given series as n approaches infinity, let’s break it down step by step.
We have the series ∑(k=1 to n) (2 + 3k√(4⋅3n)).
First, let’s simplify the expression inside the square root: 4⋅3n = 12n.
Now, the expression becomes ∑(k=1 to n) (2 + 3k√(12n)).
Next, let’s focus on the term inside the square root and simplify it further. We can rewrite √(12n) as √(4⋅3⋅n^2) = 2n√3.
The expression now becomes ∑(k=1 to n) (2 + 3k(2n√3)).
Expanding it further: ∑(k=1 to n) (2 + 6kn√3).
Now, we can factor out 2: ∑(k=1 to n) 2(1 + 3kn√3).
Finally, we can split the series into two separate parts: ∑(k=1 to n) 2 + ∑(k=1 to n) 6kn√3.
The first part, ∑(k=1 to n) 2, is simply 2 added n times, which results in 2n.
The second part, ∑(k=1 to n) 6kn√3, can be rewritten as 6√3n ∑(k=1 to n) k.
The series ∑(k=1 to n) k is a sum of consecutive positive integers and is given by the formula n(n + 1) / 2.
Substituting that into the expression, we get 6√3n * (n(n + 1) / 2).
Simplifying further: 3√3n^2 * (n + 1).
Expanding that expression: 3√3n^3 + 3√3n^2.
Now, combining the two parts: 2n + 3√3n^3 + 3√3n^2.
As n approaches infinity, the dominant term that contributes to the limit is n^3.
Therefore, the limit of the given series as n approaches infinity is ∞.
More Answers:
Mastering the Power Rule | A Fundamental Guide to Calculus Derivatives of Functions Raised to a PowerOptimizing Your Math Skills | Applying the Chain Rule to Solve Complex Derivatives
Finding the Derivative of the Function h(x) = ∫x^3-12+t^2√dt using the Fundamental Theorem of Calculus | Step-by-Step Guide