1000 Solved Problems in Modern Physics

1.3 Solutions 83

Two limiting cases

(a)t 2 =∞. We find that the number of intervals greater than any duration is

Ne−atin whichat=average number of events in time t. In the case

of radioactivity at timet=0, letN=N 0.

Then the radioactive decay law becomes

N=N 0 e−λt

whereNis the number of surviving atoms at timet, anda=λis the

decay constant, that is the number of decays per unit time.

(b)t 1 =0, implies that the number of events shorter than any durationtis

N 0 (1−e−at)

For radioactive decay the above equation would read for the number of

decays in time interval 0 tot.

N=N 0 (1−e−λt)

1.100 Ns=N 0 −NB=^14.^5 −^10 =^4.^5

σs=

√

10

t

+

14. 5

t

=

√

24. 5

t

σs

Ns

=

5

100

=

1

4. 5

√

24. 5

t

t=484 min

1.101 The best values ofa 0 ,a 1 anda 2 are found by the Least square fit. The residue
Sis given by

S=

∑ 6

n= 1

(yn−a 0 −a 1 xn−a 2 xn^2 )^2

Minimize the residue.

∂S

∂a 0

= 0 ,gives

∑ 6

n= 1 yn=na^0 +a^1

∑

xn+a 2

∑

xn^2 (1)

∂S

∂a 1

=0gives

∑

xnyn=a 0

∑

xn+a 1

∑

x^2 n+a 2

∑

xn^3 (2)

∂S

∂a 2

=0gives

∑

x^2 nyn=a 0

∑

xn^2 +a 1

∑

xn^3 +a 2

∑

x^4 n (3)

Equations (1), (2) and (3) are the so-called normal equations which are to be

solved as ordinary simultaneous equations.