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1

Huppunen, Jussi. High-speed solid-rotor induction machine: Electromagnetic calculation and design. Lappeenranta: Lappeenranta University of Technology, 2004.

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2

Calvert, John R. Design of a synchronous pipelined multiplier and analysis of clock skew in high-speed digital systems. Monterey, Calif: Naval Postgraduate School, 2000.

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3

Stobierski, Ludosław. Spiekane materiały narzędziowe przeznaczone na ostrza narzędzi do obróbki z wysokimi prędkościami skrawania. Kraków: Instytut Zaawansowanych Technologii Wytwarzania, 2010.

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4

Borisavljevic, Aleksandar. Limits, Modeling and Design of High-Speed Permanent Magnet Machines. Berlin, Heidelberg: Springer Berlin Heidelberg, 2013.

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5

Fitz, Frank. Design, fabrication, and testing of a high-speed, over-running clutch for rotorcraft. [Cleveland, Ohio]: National Aeronautics and Space Administration, Lewis Research Center, 1998.

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6

Arnold, Walter. Beitrag zu Entwicklung und Einsatz aktiv magnetgelagerter Hochgeschwindigkeits-Frässpindeln. München: Hanser, 1985.

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7

Gao su jia gong shu kong bian cheng ji shu. Beijing Shi: Ji xie gong ye chu ban she, 2009.

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8

Gao su qie xiao shu ju ku yu shu kong bian cheng ji shu. Beijing Shi: Guo fang gong ye chu ban she, 2009.

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9

Gao su ying tai qie xiao jia gong ji qi wen ding xing yan jiu. Beijing: Ji xie gong ye chu ban she, 2014.

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10

Vaez-Zadeh, Sadegh. Rotor Position and Speed Estimation. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198742968.003.0006.

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The ultimate importance of rotor position and speed information in permanent magnet synchronous (PMS) machines control, and the industry interest to the rotor and speed sensorless systems as a cost-saving and practical alternative to the motor control with mechanical sensors are emphasized. Major position and speed estimation schemes are then presented in detail. These are the: back electromotive force (EMF)-based method; flux linkage method; hypothesis rotor position method; saliency-based method, including high frequency signal injection and inverter switching harmonics schemes; and finally, the observer-based method, including state observer and extended Kalman filter-based schemes. Each scheme was discussed by presenting the corresponding fundamental principles, followed by the appropriate motor model, estimation procedure, and the implementation. Demanding criteria such as accuracy, robustness, swiftness, and capability of working over the entire range of motor operation are discussed with each method.
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11

Vaez-Zadeh, Sadegh. Direct Torque Control. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198742968.003.0004.

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The fundamental principles of direct torque control (DTC) of permanent magnet synchronous (PMS) motors are presented in this chapter. The basic DTC system is then described. The operating limits of PMS machines under DTC are presented in terms of current limit, voltage limit, and flux linkage limit. Also, flux linkage control, including maximum torque per ampere (MTPA), unity power factor, and flux weakening at high speed, is derived. Then, alternative DTC schemes, including different SVM-DTC schemes, are presented. In line with the increasing energy-saving tendency in industrial applications, major emphasis is placed on the loss minimization of DTC. Finally, a comprehensive comparison was made between the basic DTC and vector control, emphasizing the pros and cons of DTC with respect to vector control.
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12

Redmond, Edward John. Handling high speed synchronous data in an asynchronous data switch. 1986.

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13

Tubbs, Stephen P. Design and Analysis of a Superconducting High Speed Synchronous/Induction Motor. Bell and Howell Information and Learning, 1995.

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14

Design of a Synchronous Pipelined Multiplier and Analysis of Clock Skew in High-Speed Digital Systems. Storming Media, 2000.

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15

Held, Gilbert. High Speed Digital Transmission Networking: Covering T/E-Carrier Multiplexing, SONET and SDH. 2nd ed. John Wiley & Sons, 1999.

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16

Parker, Philip M. The 2007-2012 World Outlook for Carbon Steel and High-Speed Steel Shank Twist Drills for Machine Tools. ICON Group International, Inc., 2006.

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17

Parker, Philip M. The 2007-2012 World Outlook for High-Speed Steel End Mills for Machine Tools and Metalworking Machinery Excluding Inserted Blade Types and Shell Mills. ICON Group International, Inc., 2006.

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18

The 2006-2011 World Outlook for High-Speed Steel End Mills for Machine Tools and Metalworking Machinery Excluding Inserted Blade Types and Shell Mills. Icon Group International, Inc., 2005.

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19

Parker, Philip M. The 2007-2012 World Outlook for Carbon Steel and High-Speed Steel Reamers and Replacement Blades for Machine Tools and Metalworking Machinery Excluding Gun Reamers. ICON Group International, Inc., 2006.

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20

The 2006-2011 World Outlook for Carbon Steel and High-Speed Steel Reamers and Replacement Blades for Machine Tools and Metalworking Machinery Excluding Gun Reamers. Icon Group International, Inc., 2005.

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21

Parker, Philip M. The 2007-2012 World Outlook for Carbon Steel and High-Speed Steel Straight Shank Twist Drills for Machine Tools and Metalworking Machinery Excluding Combined Drills, Countersinks, and Gun Drills. ICON Group International, Inc., 2006.

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22

The 2006-2011 World Outlook for Carbon Steel and High-Speed Steel Taper Shank Twist Drills for Machine Tools and Metalworking Machinery Excluding Combined Drills, Countersinks, and Gun Drills. Icon Group International, Inc., 2005.

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23

The 2006-2011 World Outlook for Carbon Steel and High-Speed Steel Straight Shank Twist Drills for Machine Tools and Metalworking Machinery Excluding Combined Drills, Countersinks, and Gun Drills. Icon Group International, Inc., 2005.

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24

Parker, Philip M. The 2007-2012 World Outlook for Carbon Steel and High-Speed Steel Taper Shank Twist Drills for Machine Tools and Metalworking Machinery Excluding Combined Drills, Countersinks, and Gun Drills. ICON Group International, Inc., 2006.

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