Answer:
The company should promote a lifetime of 3589 hours for these bulbs, so that only 2% of them burnout before the claimed lifetime.
Step-by-step explanation:
Consider the lifetime of light bulbs is normally distributed. Then, μ = 4000 hours and σ = 200 hours.
Let X be the lifetime of bulbs. We need to find the lifetime before which only 2% (0.02) of the bulbs burn out. Suppose the value of this lifetime is y. then, we need to find out P(X<y) = 0.02.
We will use the z-score formula:
z = (x-μ)/σ
P(X<y) = 0.02
P((X-μ)/σ < (y-μ)/σ) = 0.02
P(z < (y-4000)/200) = 0.02
We can find the value of z at which the probability is 0.02 from the normal distribution (areas under the normal curve) table.
From the table we can see that 0.02 lies between z values -2.05 and -2.06. So,
z = [-2.05 + (-2.06)]/2
= -4.11/2
z = -2.055
So,
(y-4000)/200 = -2.055
y-4000 = -411
y = 4000 - 411
y = 3589 hours
The company should promote a lifetime of 3589 hours for these bulbs, so that only 2% of them burnout before the claimed lifetime.
The lifetime that should the company promote should be 3589.2 hrs.
Since
mean=4000
standard deviation=200
And, only 2% burnout before the claimed lifetime:
So,
P(Z<=z)=0.02
z=-2.054
Now
x=4000-2.054 × 200
=3589.2 hrs.
Learn more about the standard deviation here: https://brainly.com/question/7900926
