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A train locomotive is pulling two cars of the same mass behind it (Fig. 4–51). Determine the ratio of the tension in the coupling (think of it as a cord) between the locomotive and the first carFT1to that between the first car and the second carFT1for any non-zero acceleration of the train.

FIGURE 4-51 Problem 27

Short Answer

Expert verified

The ratio of the tension in the coupling between the locomotive and the first car to that between the first car and the second car for any non-zero acceleration of the train is 2:1.

Step by step solution

01

Step 1. Meaning of force

The term ‘force’ can be defined as the action that tends to cause an object's acceleration. The relationship between the force and the object’s acceleration is linear.

02

Step 2. Calculate the ratio of the tension

Draw a free-body diagram.

As the locomotive is pulling both the cars of mass m, the tension in the coupling is given as

role="math" localid="1645427333239" FT2=ma+maFT2=2ma…(i)

Here, ais the acceleration of the system.

As the first car pulls the second car, the tension in the coupling will be

role="math" localid="1645427361010" FT1=ma…(ii)

Dividing the equations (i) by (ii) to get the value of the ratio,

FT2FT1=2mamaFT2FT1=21FT2=2FT1

Thus, the tension in the coupling between the locomotive and the first car is twice that between the first and the second cars.

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Most popular questions from this chapter

Three blocks on a frictionless horizontal surface are in contact with each other, as shown in Fig. 4–54. A forceF→is applied to block A (mass mA). (a) Draw a free-body diagram for each block. Determine (b) the acceleration of the system (in terms of mA, mB, and mC), (c) the net force on each block, and (d) the force of contact that each block exerts on its neighbor. (e) IfmA=mB=mC=10.0kg,andF=96.0N,give numerical answers for (b), (c), and (d). Explain how your answers make sense intuitively.

FIGURE 4-54 Problem 34

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Figure 4–53 shows a block (mass mA) on a smooth horizontal surface, connected by a thin cord that passes over a pulley to a second block (mB), which hangs vertically. (a) Draw a free-body diagram for each block, showing the force of gravity on each, the force (tension) exerted by the cord, and any normal force. (b) Apply Newton’s second law to find the formulas for the acceleration of the system and the tension in the cord. Ignore the friction and the masses of the pulley and the cord.

FIGURE 4-53 Problems 32 and 33. Mass mA rests on a smooth horizontal surface; mB hangs vertically.

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