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Alex17521 [72]
3 years ago
9

Manuela is making a banner for a school dance. She makes one angle 116°. What should she make the measures of angles B and D so

that the banner is a parallelogram?
Mathematics
2 answers:
MA_775_DIABLO [31]3 years ago
4 0

Answer:

B and D should be 64 degrees.

Step-by-step explanation:

A parallelogram's angles all add up to 360. So

116x2=232

(Findng what A and C equal)

360-232=128

(Finding what B and D add up to)

128/2=64

(what B and D each equal

katrin2010 [14]3 years ago
3 0

Answer:

64

Step-by-step explanation:

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Name a parallelogram that is neither a square, rhombus nor rectangle
Vedmedyk [2.9K]

With all due thinking...

I think a Diamond shape will befit your answer. So; The real answer is "Rhomboid"

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3 years ago
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Determine the above sequence converges or diverges. If the sequence converges determine its limit​
marshall27 [118]

Answer:

This series is convergent. The partial sums of this series converge to \displaystyle \frac{2}{3}.

Step-by-step explanation:

The nth partial sum of a series is the sum of its first n\!\! terms. In symbols, if a_n denote the n\!th term of the original series, the \! nth partial sum of this series would be:

\begin{aligned} S_n &= \sum\limits_{k = 1}^{n} a_k \\ &=  a_1 + a_2 + \cdots + a_{k}\end{aligned}.

A series is convergent if the limit of its partial sums, \displaystyle \lim\limits_{n \to \infty} S_{n}, exists (should be a finite number.)

In this question, the nth term of this original series is:

\displaystyle a_{n} = \frac{{(-1)}^{n+1}}{{2}^{n}}.

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One useful property of alternating series is that it would be relatively easy to find out if the series is convergent (in other words, whether \displaystyle \lim\limits_{n \to \infty} S_{n} exists.)

If \lbrace a_n \rbrace is an alternating series (signs of consecutive terms alternate,) it would be convergent (that is: the partial sum limit \displaystyle \lim\limits_{n \to \infty} S_{n} exists) as long as \lim\limits_{n \to \infty} |a_{n}| = 0.

For the alternating series in this question, indeed:

\begin{aligned}\lim\limits_{n \to \infty} |a_n| &= \lim\limits_{n \to \infty} \left|\frac{{(-1)}^{n+1}}{{2}^{n}}\right| = \lim\limits_{n \to \infty} {\left(\frac{1}{2}\right)}^{n} =0\end{aligned}.

Therefore, this series is indeed convergent. However, this conclusion doesn't give the exact value of \displaystyle \lim\limits_{n \to \infty} S_{n}. The exact value of that limit needs to be found in other ways.

Notice that \lbrace a_n \rbrace is a geometric series with the first term is a_0 = (-1) while the common ratio is r = (- 1/ 2). Apply the formula for the sum of geometric series to find an expression for S_n:

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Evaluate the limit \displaystyle \lim\limits_{n \to \infty} S_{n}:

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Therefore, the partial sum of this series converges to \displaystyle \left(- \frac{2}{3}\right).

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