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  • 1990-1994  (3)
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  • 1
    Electronic Resource
    Electronic Resource
    Springer
    Polymer bulletin 26 (1991), S. 341-348 
    ISSN: 1436-2449
    Source: Springer Online Journal Archives 1860-2000
    Topics: Chemistry and Pharmacology , Mechanical Engineering, Materials Science, Production Engineering, Mining and Metallurgy, Traffic Engineering, Precision Mechanics , Physics
    Notes: Summary In order to investigate the mechanisms of morphology development in polymerpolymer blending, a model experiment is developed which allows the matrix to be dissolved away so that the dispersed phase may be observed directly using scanning electron microscopy (SEM). The dispersed phase for the model experiments is an amorphous nylon. The matrix phase is a polystyrene. These model experiments dramatically reveal the primary modes of particle deformation and the nature of the morphologies at short mixing times. The initial mechanism of morphology development involves the dragging of a large particle of the dispersed phase along a hot surface such as the mixer walls. This dragging action results in the formation of sheets or ribbons of the dispersed phase. These sheets or ribbons become unstable due to the effects of shear and interfacial tension. Holes develop in the ribbons which grow in size and concentration until a fragile lace structure is formed. This lace structure breaks into irregularly shaped particles which are then broken up into nearly spherical particles.
    Type of Medium: Electronic Resource
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  • 2
    Publication Date: 1991-08-01
    Print ISSN: 0170-0839
    Electronic ISSN: 1436-2449
    Topics: Chemistry and Pharmacology , Mechanical Engineering, Materials Science, Production Engineering, Mining and Metallurgy, Traffic Engineering, Precision Mechanics , Physics
    Published by Springer
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  • 3
    Publication Date: 2011-08-24
    Description: Multi-component strain-gage force transducer design requires the designer to determine the spring constant of the numerous beams or flexures incorporated in the transducer. The classical beam deflection formulae that are used in calculating these spring constants typically assume that the beam has a uniform moment of inertia along the entire beam length. In practice all beams have a radius at the end where the beam interfaces with the shoulder of the transducer, and on short beams in particular this increases the beam spring constant considerably. A Basic computer program utilizing numerical integration is presented to determine this effect.
    Keywords: INSTRUMENTATION AND PHOTOGRAPHY
    Type: In: International Instrumentation Symposium, 38th, Las Vegas, NV, Apr. 26-30, 1992, Proceedings (A93-37851 15-35); p. 417-432.
    Format: text
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