Position Vectors | Engineering Mechanics - Civil Engineering (CE) PDF Download

Position vector 

  • A straight line having one end fixed to a body and the other end attached to a moving point and used to describe the position of the point relative to the body. 
  • As the point moves, the position vector will change in length or in direction or in both length and direction.
  • If drawn to some scale, the change in length will signify a change in the magnitude of the vector, while a change in direction will signify a rotation of the vector.
  • Changes in magnitude and direction are the only changes that a position vector can experience, and the velocity of the point is defined as the time rate of change of the position vector.
  • For a point moving on a straight path, a position vector coinciding with the path is the most convenient; the velocity of the point is equal to the rate at which the magnitude of the vector changes with respect to time, and it will be a vector lying along the line. 
  • For a point moving on a circular path, a position vector coinciding with a radius of the circle is the most convenient; the velocity of the point is equal to the rate at which the direction of the vector changes with respect to time, and it will be a vector at right angles to the position vector. 
  • For a point moving on a noncircular curved path, the position vector changes in both magnitude and direction; the velocity of the point is the sum of the two rates of change, one a vector along the position vector and the other a vector at right angles to it.

Position Vectors | Engineering Mechanics - Civil Engineering (CE)

The document Position Vectors | Engineering Mechanics - Civil Engineering (CE) is a part of the Civil Engineering (CE) Course Engineering Mechanics.
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FAQs on Position Vectors - Engineering Mechanics - Civil Engineering (CE)

1. What is a position vector?
A position vector is a vector that describes the position of a point in space relative to a reference point or origin. It is typically represented as a directed line segment with an initial point at the origin and a terminal point at the position of the point.
2. How is a position vector different from a displacement vector?
A position vector represents the position of a point relative to a fixed reference point, while a displacement vector represents the change in position of a point. In other words, a position vector gives the location of a point, whereas a displacement vector gives the distance and direction between two positions.
3. Can position vectors be negative?
Yes, position vectors can have negative components. The sign of the components depends on the chosen coordinate system and the direction of the vector. For example, if a coordinate system is used with a positive x-axis to the right and a positive y-axis upward, a position vector with negative x and positive y components would indicate a point to the left and above the origin.
4. How are position vectors used in physics?
In physics, position vectors are used to describe the positions of objects in space. They are crucial in analyzing motion, as they can be used to calculate displacements, velocities, and accelerations. By representing the position of an object as a vector, it becomes easier to apply mathematical operations and understand the relationships between different points in space.
5. Can position vectors be used in three-dimensional space?
Yes, position vectors can be used in three-dimensional space. In addition to having x and y components, position vectors in three-dimensional space also have a z component. This allows for the description of positions in a three-dimensional coordinate system, which is essential for analyzing objects or points in three-dimensional environments.
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