Showing posts with label fatigue fracture. Show all posts
Showing posts with label fatigue fracture. Show all posts

Saturday, March 19, 2011

Factors controlling Fatigue Strength

       The fatigue limit of material is defined as stress that would cause failure after a specified number of stress reversals. The factors affecting the fatigue strength of materials and the ways of improving the fatigue strength are discussed here.

Factors controlling Fatigue strength:
  • Stress Concentration: Fatigue strength is reduced by presence of stress raisers
  • Surface Roughness: Smoother the surface finish of metal sample, higher the fatigue strength
  • Surface Treatment: Carburizing and nitriding increase fatigue life. Decarburzing lowers the fatigue life.
  • Environment: corrosive environment accelerates rate at which fatigue cracks propagate

Improving Fracture Limit
  • Good design, avoiding sharp corners, avoiding regions of stress concentration.
  • Polishing to give good finish & thereby removing surface irregularities helps
  • Short peening of metals introduces compressive stresses at surface and helps in raising the fatigue limit
  • A fine grain size improves the fatigue resistance
  • Carburzing and Nitriding will be highly helpful

The above information is taken from Material Science Study Material provided by IEI and from Material Science and Engineering by Raghavan. Don't forget to grab a copy of Material Science and Engineering book, which is essential for preparing for AMIE, Material Science.

with warm regards
AllMyPosts

Friday, March 18, 2011

Fatigue Fracture

        Fatigue fracture is a fracture that occurs when a material is subjected to cyclic loading and unloading. If the loads are above a certain threshold, microscopic cracks will begin to form at the surface. Eventually a crack will reach a critical size, and the structure will suddenly fracture.

        Rotating shafts, connecting rods, aircraft wings and leaf springs are some examples of structural and machine components that are subjected to millions of cycles of alternating stresses during service. Majority of fractures in such components is due to fatigue.

         Fatigue fracture occurs by crack propagation. The crack usually initiates at the surface of the specimen and propagates slowly at first into the interiors. At some critical stage, crack propagation becomes rapid culminating in fracture.

        The fatigue behavior can be understood from results of fatigue test, which are presented in from of S-N curves.  Samples of material are subjected to alternating stresses of different levels. The number of cycles of stress reversals N required to cause fracture is plotted against the applied stress level S. Some materials such as mild steel show a clearly defined fatigue limit. If the applied stress is below the fatigue limit, (aka Endurance Limit) the material will withstand any number of stress reversals. If materials don't show clearly defined limit, the fatigue limit is defined as stress that would cause failure after a specified number of stress reversals.

       The above info is taken from Material Science and Engineering by Raghavan and the picture shown here is taken from http://www.fea-optimization.com/. Please do refer to them for more info. 

Don't forget to grab a copy of Material Science and Engineering.

with warm regards
AllMyPosts

Wednesday, March 9, 2011

Notes on Various Fractures

Hello Everyone,

Have a blessed day. Hoping your preparation is going cool unlike mine. I just thought I will share brief notes on various fractures to give a brief overview.
Brittle Fracture
     A fracture which takes place by rapid propagation of crack with a negligible deformation. In amorphous materials, the fracture is completely brittle. In crystalline materials, it occurs after small deformation.

Ductile Fracture:
     A fracture which takes place by a slow propagation of crack with appreciable plastic deformation. This type of fracture comes into play in materials which don't work harden much. 

Creep Fracture
     A fracture which takes place due to excessive creeping of materials, under steady load. Creep is exhibited in iron, nickel, copper and alloys at higher temperature.  Creep resistance may be increased by addition of certain elements such as cobalt, nickel , manganese, tungsten, ...

Fatigue Fracture:
    A fracture that occurs when a material is subjected to cyclic loading. If the loads are above a certain threshold, microscopic cracks will begin to form at the surface. Eventually a crack will reach a critical size, and the structure will suddenly fracture.

Don't forget to grab a copy of Material Science and Engineering book, which is essential for preparing for AMIE, Material Science.
with warm regards
AllMyPosts

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