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bonufazy [111]
2 years ago
4

Roy kayaked up the river and then back in a total of 6 hours. The trip was 4 miles each way and the current was difficult. If Ro

y kayaked at a speed of 6 mph, what was the speed of the current? Round your answer to 2 decimal places.
Mathematics
1 answer:
makkiz [27]2 years ago
4 0

9514 1404 393

Answer:

  5.29 mph

Step-by-step explanation:

The time is given by ...

  time = distance/speed

Then the total time for the round trip, using x as the speed of the current, is ...

  4/(6+x) +4/(6-x) = 6

where distances are in miles, time is in hours, and speed is in miles per hour.

Multiplying by the product of the denominators, we have ...

  4(6 -x) +4(6 +x) = 6(6 -x)(6 +x)

  48 = 6(36 -x^2)

  x^2 = 28

  x = √28 ≈ 5.29 . . . . miles per hour

The speed of the current was about 5.29 miles per hour.

_____

The trip upstream took about 5 hours and 39 minutes; the trip downstream took about 21 minutes.

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A manager at a local manufacturing company has been monitoring the output of one of the machines used to manufacture chromium sh
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Answer:

0.682 = 68.2% probability that the average length of these 16 shells will be between 116 and 120 centimeters when the machine is operating "properly".

Step-by-step explanation:

To solve this question, we need to understand the normal probability distribution and the central limit theorem.

Normal Probability Distribution:

Problems of normal distributions can be solved using the z-score formula.

In a set with mean \mu and standard deviation \sigma, the z-score of a measure X is given by:

Z = \frac{X - \mu}{\sigma}

The Z-score measures how many standard deviations the measure is from the mean. After finding the Z-score, we look at the z-score table and find the p-value associated with this z-score. This p-value is the probability that the value of the measure is smaller than X, that is, the percentile of X. Subtracting 1 by the p-value, we get the probability that the value of the measure is greater than X.

Central Limit Theorem

The Central Limit Theorem estabilishes that, for a normally distributed random variable X, with mean \mu and standard deviation \sigma, the sampling distribution of the sample means with size n can be approximated to a normal distribution with mean \mu and standard deviation s = \frac{\sigma}{\sqrt{n}}.

For a skewed variable, the Central Limit Theorem can also be applied, as long as n is at least 30.

Normally distributed with a mean of 118 centimeters and a standard deviation of 8 centimeters.

This means that \mu = 118, \sigma = 8

Sample of 16 shells

This means that n = 16, s = \frac{8}{\sqrt{16}} = 2

What is the probability that the average length of these 16 shells will be between 116 and 120 centimeters when the machine is operating "properly?"

This is the pvalue of Z when X = 120 subtracted by the pvalue of Z when X = 116.

X = 120

Z = \frac{X - \mu}{\sigma}

By the Central Limit Theorem

Z = \frac{X - \mu}{s}

Z = \frac{120 - 118}{2}

Z = 1

Z = 1 has a pvalue of 0.841

X = 116

Z = \frac{X - \mu}{s}

Z = \frac{116 - 118}{2}

Z = -1

Z = -1 has a pvalue of 0.159

0.841 - 0.159 = 0.682

0.682 = 68.2% probability that the average length of these 16 shells will be between 116 and 120 centimeters when the machine is operating "properly".

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