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an investigation of dual stator winding induction machines

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CHAPTER 7<br />

STEADY STATE ANALYSIS OF A DUAL WINDING<br />

INDUCTION MACHINE<br />

7.1 Introduction<br />

In the discussions <strong>of</strong> previous research on the <strong>dual</strong> <strong>winding</strong> machine, it is seen that<br />

research has focused on the modeling <strong>an</strong>d high perform<strong>an</strong>ce control when operating as a<br />

motor [1.1]. However, the steady state <strong>an</strong>alysis <strong>of</strong> the machine, which is import<strong>an</strong>t to give<br />

some insight into the machine operation, has not been considered thus far. In this chapter,<br />

the steady state <strong>an</strong>alysis <strong>of</strong> <strong>dual</strong> <strong>stator</strong> <strong>winding</strong> <strong>induction</strong> machine is presented.<br />

7.2 System Model<br />

The complex form defines the variables using the ‘j’ operator that represents the<br />

variable as 90 o apart in space. The variables <strong>of</strong> the machine are defined in the complex<br />

form as below:<br />

V = V + jV<br />

(7.1)<br />

qds<br />

qdr<br />

qs<br />

qr<br />

ds<br />

V = V + jV<br />

(7.2)<br />

qdr<br />

qr<br />

dr<br />

λ = λ + jλ<br />

(7.3)<br />

qds<br />

qs<br />

dr<br />

λ = λ + jλ<br />

(7.4)<br />

qds<br />

qs<br />

ds<br />

ds<br />

i = i + ji<br />

(7.5)<br />

257

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