Physics, asked by Anonymous, 8 months ago

can any one answer this question........ ​

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Answers

Answered by Anonymous
1

Let dd be the distance between the two cars at t=0t=0, which is 220m220m, and the velocity, v_1v  

1

​  

 be 20km/h20km/h which in m/sm/s is 5.55m/s5.55m/s. Let v_2v  

2

​  

 be the 40km/h40km/h which is 11.1m/s11.1m/s.

To solve this problem, we will simultaneously solve two equations at once to find the initial velocity and the acceleration.

The two equations we will use are:

d-x_1=v_0t_1+\frac{1}{2}at_1^2d−x  

1

​  

=v  

0

​  

t  

1

​  

+  

2

1

​  

at  

1

2

​  

 where t_1=\frac{x_1}{v_1}t  

1

​  

=  

v  

1

​  

 

x  

1

​  

 

​  

 

and

d-x_2=v_0t_2+\frac{1}{2}at_2^2d−x  

2

​  

=v  

0

​  

t  

2

​  

+  

2

1

​  

at  

2

2

​  

 where t_2=\frac{x_2}{v_2}t  

2

​  

=  

v  

2

​  

 

x  

2

​  

 

​  

 

Subsisting x_1=44.5mx  

1

​  

=44.5m and x_2=76.7mx  

2

​  

=76.7m and our other given values leads us to the following results:

v_0=-13.9 m/sv  

0

​  

=−13.9m/s and in km/h we have -50km/h.

and the acceleration is, a=-2.0m/s^2a=−2.0m/s  

2

.

As both values are negative, it tells us that it is along the -x direction.

Answered by MysteriousAryan
0

Answer:

v=18m/s hope it helps. you mate

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