Download presentation
Presentation is loading. Please wait.
Published byLiliana Baker Modified over 6 years ago
1
Power Magnetic Devices: A Multi-Objective Design Approach
Chapter 9: Introduction to Permanent Magnet AC Machine Design S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
2
9.1 Permanent Magnet Synchronous Machines
Surface mounted magnet machine S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
3
9.1 Permanent Magnet Synchronous Machines
Interior permanent magnet machine S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
4
9.2 Operating Char. of PMAC Machines
Machine connections S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
5
9.2 Operating Char. of PMAC Machines
Machine model in QD variables S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
6
9.2 Operating Char. of PMAC Machines
Flux linkage equations Torque equation S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
7
9.2 Operating Char. of PMAC Machines
Steady-state analysis S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
8
9.2 Operating Char. of PMAC Machines
Three-phase bridge inverter S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
9
9.2 Operating Char. of PMAC Machines
Inverter voltage limit Semiconductor conduction loss S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
10
9.2 Operating Char. of PMAC Machines
Derivation of semiconductor conduction loss S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
11
9.2 Operating Char. of PMAC Machines
Voltage source operation (abc) Voltage source operation (qd) S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
12
9.2 Operating Char. of PMAC Machines
For steady-state conditions we can show S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
13
9.2 Operating Char. of PMAC Machines
Derivation S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
14
9.2 Operating Char. of PMAC Machines
Example 9.2A. P = 4, Rs = 240 mW, Lq = Ld = 1.65 mH, lm = 115 mVs. Let’s plot operating characteristics with Vs =10.2 V and fv = 0. S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
15
9.2 Operating Char. of PMAC Machines
We obtain Ismx = 40.8 A Pinmx = 1.25 kW Temx = 19.9 Nm S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
16
9.2 Operating Char. of PMAC Machines
Current source operation (abc) Current source operation (qd) S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
17
9.2 Operating Char. of PMAC Machines
Selection of q- and d-axis currents in non-salient machine w/o voltage constraint S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
18
9.2 Operating Char. of PMAC Machines
Derivation S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
19
9.2 Operating Char. of PMAC Machines
Derivation (continued) S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
20
9.2 Operating Char. of PMAC Machines
Reason to inject d-axis current S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
21
9.2 Operating Char. of PMAC Machines
Reason to inject d-axis current (continued) S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
22
9.2 Operating Char. of PMAC Machines
Example 9.2B. Let’s look at capability curve of machine of Example 9.2A with current source operation. Assume a dc link a maximum current of 15.6 A rms and a dc link voltage of 200 V. S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
23
9.2 Operating Char. of PMAC Machines
Approach: Treat as optimization problem S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
24
9.2 Operating Char. of PMAC Machines
Result S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
25
9.3 Machine Geometry Machine dimensions
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
26
9.3 Machine Geometry Stator tooth
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
27
9.3 Machine Geometry Tooth fraction and tooth tip fraction
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
28
9.3 Machine Geometry Independent geometry variables
From GI we can completely describe the geometry using (9.3-4)-(9.3-28). This includes dimensions, areas, volumes S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
29
9.3 Machine Geometry Rectangular slot approximation
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
30
9.3 Machine Geometry Rectangular slot approximation
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
31
9.3 Machine Geometry Derivation notes
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
32
9.3 Machine Geometry Function arrangement
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
33
9.4 Stator Winding Assumed conductor density
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
34
9.4 Stator Winding Discrete conductor layout
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
35
9.4 Stator Winding Derivation
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
36
9.4 Stator Winding Derivation (continued)
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
37
9.4 Stator Winding Additional slot conductor calculations
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
38
9.4 Stator Winding End conductor calculations We’ll assume
which yields S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
39
9.4 Stator Winding Conductor size calculations
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
40
9.4 Stator Winding Coil calculations
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
41
9.4 Stator Winding Functional form of calculations
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
42
9.5 Material Parameters Material properties are looked up from catalogs represented as functions S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
43
9.6 Stator Currents and Control Philosophy
Current selection information S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
44
9.7 Radial Field Analysis In chapter 8 we showed that For our case
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
45
9.7 Radial Field Analysis Stator MMF. Using
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
46
9.7 Radial Field Analysis We obtain
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
47
9.7 Radial Field Analysis Derivation
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
48
9.7 Radial Field Analysis Derivation (continued)
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
49
9.7 Radial Field Analysis Radial field variation. We will have
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
50
9.7 Radial Field Analysis Derivation
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
51
9.7 Radial Field Analysis Air gap MMF drop. We can show
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
52
9.7 Radial Field Analysis Derivation
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
53
9.7 Radial Field Analysis Derivation (continued)
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
54
9.7 Radial Field Analysis Permanent magnet MMF. We have
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
55
9.7 Radial Field Analysis PM characteristics versus position
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
56
9.7 Radial Field Analysis We can show
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
57
9.7 Radial Field Analysis Derivation
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
58
9.7 Radial Field Analysis Derivation (continued)
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
59
9.7 Radial Field Analysis Solution for radial field density. Using the results from this section, we can show Derivation S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
60
9.7 Radial Field Analysis Derivation (continued)
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
61
9.8 Lumped Parameters Flux linkage components Leakage flux linkage
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
62
9.8 Lumped Parameters Derivation
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
63
Derivation (continued)
9.8 Lumped Parameters Derivation (continued) S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
64
Derivation (continued again)
9.8 Lumped Parameters Derivation (continued again) S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
65
9.8 Lumped Parameters Magnetizing flux linkage
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
66
9.8 Lumped Parameters Partial derivation
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
67
9.8 Lumped Parameters Partial derivation (continued)
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
68
9.8 Lumped Parameters Finally, we express the flux linkages as
In functional form S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
69
9.9 Ferromagnetic Field Analysis
Stator tooth flux S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
70
9.9 Ferromagnetic Field Analysis
Notes S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
71
9.9 Ferromagnetic Field Analysis
Stator tooth flux (continued) S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
72
9.9 Ferromagnetic Field Analysis
Explanation of symmetry S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
73
9.9 Ferromagnetic Field Analysis
Explanation of symmetry (continued) S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
74
9.9 Ferromagnetic Field Analysis
Stator tooth flux densities S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
75
9.9 Ferromagnetic Field Analysis
Stator backiron flux We have S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
76
9.9 Ferromagnetic Field Analysis
We can show S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
77
9.9 Ferromagnetic Field Analysis
continuing … S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
78
9.9 Ferromagnetic Field Analysis
We define Similar to the stator tooth S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
79
9.9 Ferromagnetic Field Analysis
Stator core loss S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
80
9.9 Ferromagnetic Field Analysis
Rotor peak tangential back iron flux density S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
81
9.9 Ferromagnetic Field Analysis
Rotor peak radial flux density S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
82
9.9 Ferromagnetic Field Analysis
The peak radial flux density is given by S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
83
9.9 Ferromagnetic Field Analysis
Notes S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
84
9.9 Ferromagnetic Field Analysis
More notes S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
85
9.9 Ferromagnetic Field Analysis
Observation on peak rotor flux density S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
86
9.9 Ferromagnetic Field Analysis
Permanent magnet field intensity in region of positive magnetization It follows that S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
87
9.9 Ferromagnetic Field Analysis
Functional representation S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
88
9.10 Formulation of Design Problem
Design space (w/o tooth tip) Design parameters (fixed) S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
89
9.10 Formulation of Design Problem
Design parameters (continued) nspp atar aso S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
90
9.10 Formulation of Design Problem
Design metrics Mass Loss S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
91
9.10 Formulation of Design Problem
Design constraints Tooth aspect ratio Slot opening Current density Mass S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
92
9.10 Formulation of Design Problem
Design constraints (continued) Voltage No current field constraints S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
93
9.10 Formulation of Design Problem
Design constraints (continued) Operating point field constraints S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
94
9.10 Formulation of Design Problem
Design constraints (continued) Torque Power loss S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
95
9.10 Formulation of Design Problem
Fitness S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
96
9.10 Formulation of Design Problem
Fitness pseodo-code S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
97
9.10 Formulation of Design Problem
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
98
9.10 Formulation of Design Problem
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
99
9.10 Formulation of Design Problem
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
100
9.10 Formulation of Design Problem
Pseudo-code for check of constraints S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
101
9.11Case Study Design specifications
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
102
9.11Case Study Parameter ranges
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
103
9.11Case Study Pareto-optimal front
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
104
9.11Case Study Parameter distribution
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
105
9.11Case Study Material selection
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
106
9.11Case Study Power loss components
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
107
9.11Case Study Component mass
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
108
9.11Case Study Current related parameters Mean current: 22.7 A
Mean area: 3.69 mm2 Mean current density: 6.28 A/mm2 S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
109
9.11Case Study Selected machine parameters Mean length: 10.9 cm
Mead radius: 3.65 cm S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
110
9.11Case Study Design 38 S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
111
9.11Case Study Design 38 cross section
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
112
9.11Case Study Design 38 flux density waveforms c
S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
113
9.11Case Study Comments S.D. Sudhoff, Power Magnetic Devices: A Multi-Objective Design Approach
Similar presentations
© 2025 SlidePlayer.com. Inc.
All rights reserved.