Force and Potential energy funtion

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The Yukawa potential effectively describes nucleon interactions with constants r0 = 1.5x10^-15 meters and U0 = 50 MeV. The force of attraction is derived from the potential energy using the formula Fr = -dU/dr. A common point of confusion arises regarding the sign of the force; while the calculation yields a positive result, it indicates the direction of the attractive force, which is inherently negative. The negative sign reflects the attractive nature of the force, while the magnitude remains positive. Understanding this distinction clarifies the relationship between potential energy and force in nuclear interactions.
Sabreen Khan
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1. The so-called Yukawa potential
(attached)
gives a fairly accurate description of the interaction between nucleons[that is, neutrons and protons, the constituents of the nucleus]. The constants r0 = 1.5x10-15metres and U0 = 50 MeV.[a] Find the corresponding expression for the force of attraction.


2. Fr= -dU/dr



3. When i finnaly calculate it, the answer is supposed to be negative because
Fr= - dU/dr
= - d (U is given negative)/dr
{ -ve and -ve cancels out }

Fr= +ve d(U)/dr
after integrating U, a -ve sign appears...
so...shouldnt the answer be negative? but the actual solution is a positive. can u tell me y ?
 

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When you find the force by via -dU/dr, the resulting sign will tell you which way the force points (with respect to the variable r). Since it's an attractive force, that will be negative. The magnitude of the force of attraction will be positive, of course.
 
thanks for the reply
 
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