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A set of notes on the basics of mechanics of robots. It covers important concepts about friction, causes of friction, types of friction, important terminology about friction at the inclined plane, various forces acting on a system, centroid of lines and curves, and steps to determine centroid of area. The document also includes stepwise solved problems and figures to illustrate the concepts.
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A) Friction always opposes the motion. This opposition is called as Friction Force. Friction is a property of the two surfaces in contact.
Friction force is independent of the area of contact of the two surfaces. Figure 2.1 depicts the schematic diagram for Friction
Figure 2.1 Schematic diagram for Friction
B) Causes of Friction:- 1) Intermolecular force of attraction 2) Irregularities between the two surfaces. Figure 2.2 depicts Causes of Friction
Figure 2.2 Causes of Friction
C) Types of Friction :- Figure 2.3 depicts Types of Friction
Figure 2.3 Types of Friction
D) Important Terminology about Friction at the inclined plane
E) Various Forces Acting on a System
Important Terminology about Friction at the inclined plane-
body is on the verge of motion.
When body is in Impending motion.
Angle at which the motion just starts because its own weight.
) = It is the maximum friction force developed at the contacts before the
maximum when body is on the verge of Impending Motion.
The force required to maintain motion with uniform velocity is less than into motion (Limiting Static Friction Force = FL )
l Force (FL) is proportional to the Normal Reaction (N
Coefficient of Friction (μ) - It is the ratio of the Limiting Frictional force (F motion of two surfaces in contact to the Normal reaction (NR ) pressing the two surfaces.
Various Forces Acting on a System – Figure 2.4 depicts forces acting
Angle at which the motion just starts because its own weight.
It is the maximum friction force developed at the contacts before the
verge of Impending Motion.
The force required to maintain motion with uniform velocity is less than the force required
) is proportional to the Normal Reaction (NR )
Limiting Frictional force (FL) resisting the pressing the two surfaces.
Concept of CG:- Figure 2.7 depicts the concept of CG
Figure 2.7 concept of CG
J) Centre of Mass (CM) –
K) Centre of Volume (CV) -
L) Centroid of Line and Area -
M) Axis of Symmetry – Axis of Symmetry is the line which divides a body into 2 parts, so that the moments of these parts about the axis of symmetry are equal and opposite. symmetry.
N) Centroid is that imaginary point in the Curve or Area where whole of the Curve or Area can be assumed to be concentrated. It is not necessary that the Centroid should lie on the Curve or insid Centroid of curves and Areas.
Figure 2.
O) Steps to determine Centroid of Lines and Curves
Centroid of line is defined as the point at which whole length of the line may be assumed
Centroid of area (plane lamina or figure) is defined as the point, at which of the lamina or figures may be assumed to be concentrated
Axis of Symmetry is the line which divides a body into 2 parts, so that the moments of these parts about the axis of symmetry are equal and opposite. Figure 2.8 depicts the Axis of
Figure 2.8 Axis of symmetry.
Centroid is that imaginary point in the Curve or Area where whole of the Curve or Area can be
It is not necessary that the Centroid should lie on the Curve or inside the Area. Figure 2.
Figure 2.9 Centroid of curves and Areas.
Steps to determine Centroid of Lines and Curves – Figure 2.10 To find Centroid of lines and curves
Centroid of line is defined as the point at which whole length of the line may be assumed
Centroid of area (plane lamina or figure) is defined as the point, at which the whole area
Axis of Symmetry is the line which divides a body into 2 parts, so that the moments depicts the Axis of
Centroid is that imaginary point in the Curve or Area where whole of the Curve or Area can be
Figure 2.9 depicts the
o find Centroid of lines and curves
Figure 2.12 Stepwise solved problem
U) Steps to determine Centroid of Area – Figure 2.12 depicts Steps to determine Centroid of Area
Figure 2.12 Steps to determine Centroid of Area
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