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svet-max [94.6K]
3 years ago
3

During an experiment, readings for blood pressure in a person’s body were found to be constant. However, when measured by a diff

erent blood pressure cuff, the readings differed by 15 points for each reading. This difference indicates that the results are but not .
Biology
2 answers:
Tema [17]3 years ago
7 0

Answer:

Changing blood pressure can be caused by the body's response to small changes in daily life, such as stress, lack of sleep, exercise, and so on.

Explanation:

Blood pressure refers to the pressure experienced by blood in the arteries when blood is pumped by the heart to all members of the human body. Blood pressure is made by taking two measurements and is usually measured as follows - 120/80 mmHg. The top number (120) indicates the upward pressure of the arteries due to heart rate and is called systolic pressure. The bottom number (80) shows the pressure when the heart is resting between pumping and is called diastolic pressure. The best time to measure blood pressure is when you are resting and sitting or lying down.

#AnswerForTrees

sattari [20]3 years ago
4 0

Answer:

The results are precise but not accurate

Explanation:

Precise readings are the ones which are close enough to the actual readings though they are never exactly the same.

Suppose if the reading obtained from instrument I were - 100, 90, 70 , 65

Then the readings from second instrument would be either 15 points more or less than the previous readings.

I.e (115, 85), (105, 75), (85, 55), (80, 50)

In the later case the readings obtained are close to themselves and are hence said to be precise.

But they are not similar to the readings taken by instrument I hence they are termed as not accurate.

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A sample of Potassium-40 has a mass of 2020 grams.
SVETLANKA909090 [29]

The idea here is that the ratio that exists between the number of atoms of argon-40 and the number of atoms of potassium-40 will give you the number of half-lives that passed.

As you know, the half-life of a radioactive nuclide tells you the time needed for half of the atoms of said nuclide to undergo radioactive decay.

In your case, you know that potassium-40 has a half-life of

1.25

billion years because that's how long it takes for half of the number of atoms present in the sample to decay to argon-40.

Now, let's say that your sample started with

A

K-40

atoms of potassium-40 and

0

atoms of argon-40.

You can thus say that the sample will contain--keep in mind that the atoms of potassium that decay form argon-40!

After

1

half-life

1

2

⋅

A

K-40

=

A

K-40

2

1

→

atoms of potassium-40

A

K-40

−

A

K-40

2

1

→

atoms of argon-40

After

2

half-lives

1

2

⋅

A

K-40

2

1

=

A

K-40

2

2

→

atoms of potassium-40

A

K-40

−

A

K-40

2

2

→

atoms of argon-40

After

3

half-lives

1

2

⋅

A

K-40

2

2

=

A

K-40

2

3

→

atoms of potassium-40

A

K-40

−

A

K-40

2

3

→

atoms of argon-40

At this point, we can use this pattern to say that after

n

half-lives pass, the sample will contain

A

K-40

2

n

→

atoms of potassium-40

1

−

A

K-40

2

n

→

atoms of argon-40

Now, you know that sample contains

31

atoms of argon-40 for every

1

atom of potassium-40, which means that you have

A

K-40

−

A

K-40

2

n

A

K-40

2

n

=

31

This is equivalent to

A

K-40

−

A

K-40

2

n

A

K-40

2

n

=

31

2

n

−

1

2

n

⋅

2

n

1

=

31

which gives you

2

n

=

32

Since

32

=

2

5

you can say that

2

n

=

2

5

⇒

n

=

5

This means that

5

half lives must pass in order for the sample to contain

31

atoms of argon-40 for every

1

atom of potassium-40.

Consequently, you can say that the age of the rock is

5

half-lives

⋅

1.25 billion years

1

half-life

=

6.25 billion years

−−−−−−−−−−−−−−−

I'll leave the answer rounded to three sig figs, but keep in mind that you have two significant figures for the number of atoms of argon-40 present per atom of potassium-40.

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