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Electro-Mechanical TechnicianThis unique CD-ROM-based learning program includes 24 modules and is the only product of its kind to use interactive delivery for the study of electro-mechanical curriculum. The course content was developed in association with some of the top corporate trainers in North America and focuses on practical applications and troubleshooting techniques. |
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The Electro-Mechanical CD-ROM prepares students to install and repair industrial electronic equipment including variable speed drives, automated control equipment, process control systems, and a wide variety of electronic control systems ranging from simple on-off controls to robotics. |
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Select a module on the graphic to see a description of the course
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The CD-ROM curriculum is designed to provide students with a foundation in electro-mechanical curriculum that can lead to a career in fields such as industrial maintenance, design and installation as well as technical services, technical sales, and industrial research and development.
The course material is delivered using video, text, animations, color photos, computer-based testing, audio, video, and over 400 laboratory projects using TINA Pro lab simulation. The TINA Pro lab simulator is a highly interactice simulation program designed specifically for industrial electronic applications including polyphase distribution, motor control, process control, and relay logic systems. |
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This course is designed to introduce the student to the fundamental concepts of electronics and describe some basic applications. This course covers units of measure, scientific notation, SI system, and engineering notation. The principles of molecules and atomic structure are also presented in this course as well as an introduction to electric charges. Learning Outcomes: Upon completion of this course the student will be able to:
This course introduces students to the fundamentals of current, voltage and resistance. In addition, the course introduces essential concepts such as the relationship between temperature and resistance, electron velocity, and the direction of current flow. The course also covers wire sizes, the resistor color code, and troubleshooting resistors. Learning Outcomes: Upon completion of this course the student will be able to:
This course is designed to cover the fundamentals of Ohm's law, work, energy and power. A discussion of power dissipation and rating of circuit components is presented, as well as efficiency, the kilowatt hour. The theoretical and practical aspects of basic circuit calculations is also presented in this course using a combination of video, animation, and laboratory projects using laboratory simulation software. Learning Outcomes: Upon completion of this course the student will be able to:
This course covers resistance, current, and voltage in a series circuit, and presents an introduction to the polarity of voltages, voltage dividers, and the concept of internal resistance. The student will learn to apply Kirchhoff's voltage law to solve problems and design voltage dividers. Fuses and switches are also presented with an emphasis on practical applications and troubleshooting. Learning Outcomes: Upon completion of this course the student will be able to:
This course will provide the student with an introduction to voltage in parallel circuits and the application of Ohm's law to these circuit configurations. The course is designed to demonstrate the effect of current, voltage, and resistance in parallel circuits and describe how Kirchhoff's current law can be applied to problem solving and troubleshooting techniques. Learning Outcomes: Upon completion of this course the student will be able to:
This course covers resistance, current, and voltage in series parallel circuits. The student will learn to apply Ohm's law to solving for specific quantities in these circuit configurations. The course also covers power, loaded voltage dividers and the Wheatstone Bridge as well as troubleshooting applications and problem solving. Learning Outcomes: Upon completion of this course the student will be able to:
This course includes the study of both analogue and digital dc measuring instruments including ammeters, voltmeters, and ohmmeters. Voltmeter loading and sensitivity are presented with an emphasis on practical applications and safe operation of these instruments. This course also covers multimeters, electronic meters, and an introduction to digital measuring instruments. Learning Outcomes: Upon completion of this course the student will be able to:
Industrial Control Devices provides an overview of devices such as switches, actuators, and relays and their industrial applications. The student will learn troubleshooting techniques and the principles of relay and ladder logic. This course also covers solenoids and control valves with an emphasis on practical applications. Learning Outcomes: Upon Completion of this course the student will be able to:
This course provides an introduction to magnetism including the nature of magnetism, magnetic fields, and magnetic materials. Electromagnets and permanent magnets are also presented using a combination of video and animation allowing the student to gain a better understanding of magnetic field theory. The Hall effect sensor is also introduced in this course. Learning Outcomes: Upon completion of this course the student will be able to:
This course will focus on the principles of DC motors and the various types used in industry. The student will learn the fundamentals of speed control including dynamic and regenerative braking. Servo-, Stepper-, and Brushless DC motors are discussed as well as basic dynamo configurations. This course also introduces the student to electronic speed control of DC motors. Learning Outcomes: Upon completion of this course the student will be able to:
This course introduces the student to the fundamentals of alternating voltages and currents. In addition to sine waves, the course also covers non sinusoidal waveforms and harmonic frequencies. The principles of frequency, period, and wavelength are presented emphasizing practical applications and troubleshooting techniques. Theoretical areas of study include instantaneous, RMS and average values of sine waves. Learning Outcomes: Upon completion of this course the student will be able to:
This course includes the study of both analogue and digital ac measuring instruments including ammeters, voltmeters and ohmmeters. Oscilloscopes, signal generators, and frequency counters are presented with an emphasis on practical applications and safe operation of these instruments. This course is designed to reinforce troubleshooting techniques using ac meters. Learning Outcomes: Upon completion of this course the student will be able to:
This course covers the principles of capacitance including relative permittivity, dielectric strength and leakage current. The types of capacitors covered in this course include electrolytic, ceramic, mylar and tantalum. Series and parallel configurations of capacitor circuits are included in the course as well as an introduction to bypass and coupling capacitors. Learning Outcomes: Upon completion of this course the student will be able to:
This course introduces the student to electromagnetic induction, Faraday's law and Lenz's law. Various types of inductors are described and the student will learn to calculate the values of transients in RL circuits. This course also covers inductors in series and parallel, and the effect on current, voltage and inductive reactance in these circuits. Learning Outcomes: Upon completion of this course the student will be able to:
This course is designed to present an overview of transformers and their applications in electronic circuits. Course work will be primarily based on transformer principles, design considerations and reinforcement of key concepts such as reflected load and maximum power transfer. Transformer types such as pulse, center tap, multiple winding and auto transformers are also discussed. Learning Outcomes: Upon completion of this course the student will be able to:
This course introduces the student to the fundamentals of alternating current motors and AC variable speed control systems. In addition to the basic introduction motor, the course also covers servo-, universal, and synchronous motors. The principles of variable frequency drives and their control circuits are presented emphasizing practical applications and troubleshooting techniques. Theoretical areas of study include single-phase and shaded-pole induction motors. Learning Outcomes: Upon completion of this course the student will be able to:
This course will build on previous topics by presenting an introduction to transducers used in both analog and digital applications. The course also covers temperature, pressure, and flow transducers as well as other detection devices such as optical encoders and Hall-effect sensors. Capacitive, ultrasonic, and thickness sensors are also presented using practical and theoretical examples of industrial applications of these devices. Learning Outcomes: Upon completion of this course the student will be able to:
It is in this course that the student learns the principles of industrial control systems including open- and closed-loop control. Proportional, Integral, and Derivative control are covered with an emphasis on practical application and design. An introduction to algorithms, flow charts and fuzzy logic is also presented in this course. Learning Outcomes: Upon completion of this course the student will be able to:
This course introduces the student to the PN junction and i application in modern electronic circuits. Semiconductor diodes and configurations such as half wave and full wave rectifiers are presented using both theoretical and practical examples which are reinforced by laboratory experiments. Other diodes such as Zener, Varactor, and Light Emitting Diodes (LEDs) are also introduced in this course. Learning Outcomes: Upon completion of this course the student will be able to:
Bipolar Junction Transistors (BJTs) are covered in this course and their application in amplifier and switching circuits is also presented. This course also introduces Field Effects Transistors (FETs), and thyristors such as Silicon Controlled Rectifiers (SCRs) and Triacs. In addition the course also includes transistor troubleshooting problems and assignments as well as laboratory experiments for transistor circuits. Learning Outcomes: Upon completion of this course the student will be able to:
This course covers common base, common collector and common-emitter amplifiers. In addition, the student is introduced to the effect of ac signals on amplifiers, FET amplifiers and multistage amplifiers. The student will also learn the differences between Class A, B, and C amplifiers and their applications in industry. Emphasis is placed on design, problem solving, and troubleshooting of amplifier circuits. Learning Outcomes: Upon completion of this course the student will be able to:
This course will provide the student with an overview of operational amplifiers and their characteristics. The student will learn basic op amp configurations such as inverting and non inverting amplifiers, as well as summing amplifiers and comparators. An introduction to analogue to digital converters is also presented in this course. Integrators, differentiators, oscillators and active filters are included emphasizing real world control applications. Learning Outcomes: Upon completion of this course the student will be able to:
This course covers a wide variety of topics relating to digital electronics including number systems, logic gates, flip flops and counters. Boolean algebra and DeMorgan's theorem is also introduced as well as troubleshooting and problem solving techniques for digital logic circuits. The logic gates presented in the course include AND, OR, NOR, NAND and inverters. Learning Outcomes: Upon completion of this course the student will be able to:
This program includes the study of basic principles of programmable logic controllers (PLCs) and focuses on Allen-Bradley and AEG Modicon systems. PLC timers, counters, and sequencers are presented with an emphasis on practical applications and safe operation of PLC systems. This course also covers data transfer, math functions, and installation, maintenance, and troubleshooting of PLCs. Learning Outcomes: Upon completion of this course the student will be able to:
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