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Network arrangement

Figure B.l shows a pair of composite curves divided into vertical enthalpy intervals. Also shown in Fig. B.l is a heat exchanger network for one of the enthalpy intervals which will satisfy all the heating and cooling requirements. The network shown in Fig. B.l for the enthalpy interval is in grid diagram form. The network arrangement in Fig. B.l has been placed such that each match experiences the ATlm of the interval. The network also uses the minimum number of matches (S - 1). Such a network can be developed for any interval, providing each match within the interval (1) satisfies completely the enthalpy change of a strearh in the interval and (2) achieves the same ratio of CP values as exists between the composite curves (by stream splitting if necessary). Figure B.l shows a pair of composite curves divided into vertical enthalpy intervals. Also shown in Fig. B.l is a heat exchanger network for one of the enthalpy intervals which will satisfy all the heating and cooling requirements. The network shown in Fig. B.l for the enthalpy interval is in grid diagram form. The network arrangement in Fig. B.l has been placed such that each match experiences the ATlm of the interval. The network also uses the minimum number of matches (S - 1). Such a network can be developed for any interval, providing each match within the interval (1) satisfies completely the enthalpy change of a strearh in the interval and (2) achieves the same ratio of CP values as exists between the composite curves (by stream splitting if necessary).
With Herschbach I worked on photodissociation dynamics and fluorescence. When I finished my Ph.D., Dudley arranged a beginning faculty position for me with A. C. Cope who was then Department Head at MIT. It was a typical old-boy-network arrangement, which would be impossible today. However, I did not stay around and told Cope that I would take the faculty position in another year. I went out to Colorado to the Joint Institute for Laboratory Astrophysics (JILA), at the University of Colorado. I was a postdoc there with Gordon Dunn and Ed Condon. At JILA, I got my real first experience with experiments. I returned to MIT after a year, but I only spent nine months there. In the intervening time. Cope had been removed from being Head, and the MIT chemistry department was squabbling and in disarray. When I went to see the provost, Jerry... [Pg.452]

How does a networked arrangement of units solve problems Let s look at a simple network. [Pg.59]

This section describes location of one item in an existing network. Arrangement of the entire facility is covered in Chapter 55. [Pg.1379]

Immobilization of the liquid constituent inside the networked arrangement of the solid constituent has been credited to the interfacial strain amongst the solid and liquid constituent. The liquid phase may either be polar or apolar solvent. Based on the polarity, the gels can be broadly categorized into two types. If the liquid phase is polar in nature, then the gels can be called as hydrogels, otherwise, organogels. ... [Pg.1391]

Har Harada, M., Akamatsu, N., Ochi, M., Tobita, M. Investigation of fi acture mechanism on liquid crystalline epoxy networks arranged by a magnetic field. J. Polym. Sci. Part B - Polym. Phys. 44 (2006) 1406-1412. [Pg.549]

The structural feature of the surface of metal alginate is the fiber network arranged regularly and closely, but that of the fractured surface is the large and spacious network having round cages or channels... [Pg.403]

FIGURE 19.26 A winner takes all architerture for cluster extracting in the unsupervised training mode (a) Network connections, (b) single-layer network arranged into a hexagonal shape. [Pg.2051]

Figure 1 Open network arrangements of trimesic acid on graphite under UHV at low temperature, (a) and (c) The chicken wire structure and (b) and (d) the flower arrangement. (Reproduced from Ref. 18. Wiley-VCH, 2002.)... Figure 1 Open network arrangements of trimesic acid on graphite under UHV at low temperature, (a) and (c) The chicken wire structure and (b) and (d) the flower arrangement. (Reproduced from Ref. 18. Wiley-VCH, 2002.)...
While CNTs possess limited surface areas compared to other microporous carbon blacks, they maintain rigid mechanically robust structures that can result in favorable three-dimensional electrode architectural configurations. The network arrangement can provide a porous structure that can readily facilitate the transport of electrolyte species and provide highly electronically conductive pathways to the redox centers of the active materials. The structure, porosity, and pore size distribution of this scaffold-like architecture can also be tailored by using CNTs with varying diameters, surface properties, and wall thicknesses or by modifying preparation techniques. [Pg.341]

A distribution of small PS particles embedded in a PE network can be realized up to much more than 50% PS following the route of polymerization of styrene in PE. Figure 4.6 shows such a network arrangement with small PS domains of a blend with a high content of 90% PS and only 10% PE. In the dark PE parts, small lamellae are visible (see also Figs. 4.32 and 4.33 in Section 4.3) [9]. [Pg.271]

Toughness enhancement can be realized by homogeneous rubber particles, core-shell particles, or heterogeneous modifier particles in the so-called disperse systems. The rubber content varies usually between 5 and 30 wt.%. An alternative is a network arrangement of the rubber in inclusion systems or network systems. [Pg.331]


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See also in sourсe #XX -- [ Pg.271 , Pg.333 ]




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