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  2. Osmium - Wikipedia

    en.wikipedia.org/wiki/Osmium

    Osmium is a hard, brittle, blue-gray metal, and the densest stable element—about twice as dense as lead. The density of osmium is slightly greater than that of iridium ; the two are so similar (22.587 versus 22.562 g/cm 3 at 20 °C) that each was at one time considered to be the densest element.

  3. Group 8 element - Wikipedia

    en.wikipedia.org/wiki/Group_8_element

    Osmium is a hard but brittle metal that remains lustrous even at high temperatures. It has a very low compressibility. Correspondingly, its bulk modulus is extremely high, reported between 395 and 462 GPa, which rivals that of diamond (443 GPa). The hardness of osmium is moderately high at 4 GPa.

  4. Embrittlement - Wikipedia

    en.wikipedia.org/wiki/Embrittlement

    Embrittlement is used to describe any phenomena where the environment compromises a stressed material's mechanical performance, such as temperature or environmental composition. This is oftentimes undesirable as brittle fracture occurs quicker and can much more easily propagate than ductile fracture, leading to complete failure of the equipment.

  5. Liquid metal embrittlement - Wikipedia

    en.wikipedia.org/wiki/Liquid_metal_embrittlement

    The ductile failure model of Lynch [17] and Popovich [18] predicted that adsorption of the liquid metal leads to the weakening of atomic bonds and nucleation of dislocations, which move under stress, pile up and work harden the solid. Also, dissolution helps in the nucleation of voids which grow under stress and cause ductile failure.

  6. Deformation mechanism - Wikipedia

    en.wikipedia.org/wiki/Deformation_mechanism

    These mechanisms can overlap in the brittle-ductile settings. Deformation mechanisms are commonly characterized as brittle , ductile , and brittle-ductile. The driving mechanism responsible is an interplay between internal (e.g. composition, grain size and lattice-preferred orientation) and external (e.g. temperature and fluid pressure) factors.

  7. Metal-induced embrittlement - Wikipedia

    en.wikipedia.org/wiki/Metal-induced_embrittlement

    Metal-induced embrittlement (MIE) is the embrittlement caused by diffusion of metal, either solid or liquid, into the base material. Metal induced embrittlement occurs when metals are in contact with low-melting point metals while under tensile stress.

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  9. Material failure theory - Wikipedia

    en.wikipedia.org/wiki/Material_failure_theory

    The failure of a material is usually classified into brittle failure or ductile failure . Depending on the conditions (such as temperature, state of stress, loading rate) most materials can fail in a brittle or ductile manner or both. However, for most practical situations, a material may be classified as either brittle or ductile.