Math, asked by alesrelatha12345678, 3 months ago


solve each of the following equetionsbby the trial and
error method
x+ 7=13​

Answers

Answered by nitinprasad212007
0

(i) 5p + 2 = 17 (ii) 3m – 14 = 4

Solution

Transcript

Solution 3:

(i) putting p = -3 in equation

5(-3) +2 = 17

-15+2 = 17

-13\ne17−13

=17

putting p = -2 in equation

5\left(-2\right)+2=175(−2)+2=17

-10+2=17−10+2=17

-8\ne17−8

=17

putting p =-1

5\times\left(-1\right)+2\ =\ 17\5×(−1)+2 = 17

-5+2=17−5+2=17

-3\ne17−3

=17

putting 0 in the equation

5\times0\ +2\ =\ 17\5×0 +2 = 17

2\ne172

=17

putting p =1 n the equation

5\times1+2=175×1+2=17

5+2=175+2=17

7\ne177

=17

puttin p = 2 in the equation

5\times2\ +2\ =\ 17\5×2 +2 = 17

10+2\ =\ 17\10+2 = 17

12\ne1712

=17

putting p = 3 in the equation

5\times3+2=175×3+2=17

15+2=1715+2=17

17=17\17=17

As LHS=RHS

p=3 is the solution

(ii) 3m-14 = 4

putting m = -2

3(-2) -14 = 4

-6-14=4

-20\ \ne\ 4−20

= 4

putting m = -1

3(-1) -14 = 4

-3-14 = 4

-17\ne4−17

=4

putting m = 0

3(0) -14=4

0-14 = 4

-14\ne4−14

=4

putting m =1

3(1) -14 = 4

3-14 = 4

-11\ne4−11

=4

putting m = 2

3(2) - 14 = 4

6-14=4

-8\ne4−8

=4

putting m = 3

3(3) - 14 = 4

9-14 = 4

-5\ne4−5

=4

putting m = 4

3(4)- 14 = 4

12-14 = 4

-2\ne4−2

=4

putting m = 5

3(5)-14=4

15-14=4

1\ne41

=4

putting m = 6

3(6)-14 = 4

18-14

4=4

LHS = RHS

therefore m = 6 is a solution

Answered by ashadhage0205
0

Answer:

fuofgxigxfufufygijffggfigxgiugtxi

Step-by-step explanation:

88

Similar questions