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Storage virtualization applies an abstraction to the storage systems within the enterprise and is often a key component used with blade systems. Virtualizing the storage allows virtual disks to be defined to components running on the server and separates the physical management and sometimes connection of those disks from the application software on the server. Storage virtualization can be implemented within the server (host-based), within the storage area

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Consider a solution in which a single strong electrolyte of a concentration c is dissolved; this electrolyte consists of v+ cations B 2+ in concentration c+ and v_ anions Az~ in concentration c__. Obviously v+z+ = -v_z_ = v_ |z_| and

0 (HTP)

8

c. c_ c= = (2.4.5)

o-Azo-9

(2.4.4)

network (network- or fabric-based), or within the storage subsystem (as with RAID arrays). These solutions may take an in-band approach, in which the device that does the virtualization is in the data path, or an out-of-band approach, in which the device that performs the virtualization is not in the data path.

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R2 is the same value as X. Thus, the outcome of a sequence of two XORs using the same value produces the original value. To see this feature of the XOR in ...

Substitution into Eq. (2.4.2) yields K = z2+F2u+v+c + Z2-F2u_v_c = (U+ + U_)z+v+Fc = (U+ + UJ) |z_| v_Fc The quantity (U+ + U_)z+v+F = (U+ + I/_) |z_| v_F = - = A (2.4.7) c is called the molar conductivity, which is as shown below, a concentrationdependent quantity except in an ideal solution (in practice at high dilution). (2.4.6)

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91 For first class conductors, the conductivity is a constant characterizing the ability of a given material at a given temperature to conduct electric current. However, for electrolyte solutions, it depends on the concentration and is not a material constant. Thus the fraction A = K/C is introduced; however, it will be seen below that the constant characterizing the ability of a given electrolyte to conduct electric current in solution is given by the limiting value of the molar conductivity at zero concentration. The main unit of molar conductivity is Q" 1 m2 mol"1, corresponding to K in Q" 1 m"1 and c in mol m~3. However, units of Q" 1 cm2 mol"1 are often used. If units of Q" 1 cm"1 are simultaneously used for K and the usual units of mol dm"3 for the concentration, then Eq. (2.4.7) becomes

As with other virtualization forms discussed, an abstraction layer is applied to the networking components to provide better service, availability, and security to the physical servers and their applications. Depending on the implementation, the virtualization layer can be placed in the network at the switch level, on the host within the networking hardware (NIC), or in software. For example, a VLAN creates a virtual network, abstracted from the physical network, that provides isolation and security. Network virtualization is often done within switches, at the different layers of the OSI stack, to create an abstraction of an IP address such that the sender may not know the actual IP address of the final destination. Common applications of network virtualization include load balancing, secure connection, and state monitoring and transparent failover.

(2A8)

200 5

Blade vendors are taking virtualization to the next step to make managing the blade environment simpler. The basis of blade I/O virtualization is similar to network virtualization; it abstracts the I/O interface away from the blade. For example, Egenera virtualizes I/O such that processor blades (pBlades) consist of processors and memory only and have no I/O adapters (such as NICs or HBAs). All the I/O interfaces are located on the control blades (cBlades), and shared virtually by the pBlades. This allows the processor blades to be stateless and easily interchangeable. HP offers a software example, in which even though the I/O adapters (that is, HBAs) are on the individual blades, they share a virtual pool of worldwide names, simplifying software configuration management.

When reporting the molar conductivity data, the species whose amount is given in moles should be indicated. Often, a fractional molar conductivity corresponding to one mole of chemical equivalents (called a val) is reported. For example, for sulphuric acid, the concentration c can be expressed as the 'normality', i.e. the species ^H2SO4 is considered. Obviously, A(H2SO4) = 2A(^H2SO4). Consequently, the concept of the 'equivalent conductivity' is often used, defined by the relationship A* = - ^ - = ^ = (U+ + UJ)F = At + A* (2.4.9)

1 (L/D)

where A* = A+/z+ and A* = A_/|z_| (cf. Eq. 2.4.3). It follows that, for our example of sulphuric acid, A*(H2SO4) = A(^H2SO4) = ^A(H2SO4). Combination of Eqs (2.3.15) and (2.3.17) yields j^-^gradtf) (2.4.10)

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