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Objectives of Talent Cultivation
Electronic information specialty is one of the major education programs in the United States, called STEM, which is composed of Science, Technology, Engineering and Mathematics. This major of Applied Electronic Technology (Sino-American Program) is oriented to the intelligent manufacturing industry of electronic appliances. Through the cooperation with UAFS, referring to its education mode, this major aims to cultivate talents who adhere to basic routes of the Communist Party of China and have good professional ethics, the ability of innovation and entrepreneurship, and high dedication spirit. We aim to develop students in an all-round way for moral, intelligence, bodybuilding and aesthetics. Students are able to engage in electronic product design and development, electronic product inspection and testing, and enterprise management in electronic and electrical advanced manufacturing related enterprises. They are expected to be internationalized, complex and innovative technical talents with strong sustainable development ability.
Brief Introduction for Core Courses
(1) Fundamentals of Electricity (ELEC 1233, Party B)
Prerequisite: English
Course contents: An overall study of the fundamental principles of AC and DC, Ohm¡¯s law, the power equation, and so on. Series, parallel, series-parallel circuits, and DC meters are introduced, and a study is made of the practical applications of mathematics related to electronics and electricity.
(2) Applied Industrial Electricity and Safety (ELEC 2243, Party B)
Prerequisite: English
Course contents: Introduction to industrial control circuits such as multiple push-button, timing relays and sequence control, switching and sensing devices including flow and limit switches and Hall-effect sensors, starting and braking methods, variable speed drives, machinery installation, troubleshooting/reading of large electrical schematics and safety considerations while working with industrial electrical equipment.
(3) Introduction to Programming (ELEC 1243, Party B)
Prerequisite: English
Course contents: Introduces computer programming and problem solving in a structured program logic environment. Topics include language syntax, data types, program organization, problem-solving methods, algorithm design, and logic control structures. Upon completion, students should be able to manage files, use top-down algorithm design, and implement algorithmic solutions in a programming language.
(4) Digital Fundamentals (ELEC 1863, Party B)
Prerequisite: Algebra
Course contents: An introduction and development of the basic concepts related to the operation of a typical microprocessor will be introduced and developed to include number systems, elementary digital circuits, and the internal structure of the INTEL 8088 microprocessor. The students will obtain experience in designing and debugging computer programs at the machine level.
(5) Introduction to Robotics (ELEC 2403, Party B)
Prerequisite: Introduction to Programming and Digital Fundamentals
Course contents: Introduction to the principles of industrial robotics, related systems, and applications. Enables the student to learn the technical aspects of robotics, and covers power supply systems, degrees of freedom, programming methods, sensors, end effectors, implementation planning, and system maintenance.
(6) Electrical Circuits and Components (ELEC 1353, Party B)
Prerequisite: Fundamentals of Electricity
Course contents: Details how individual components react to AC and DC, including the study of inductors, transformers, capacitors, R-C circuits, R-L circuits, R-L-C circuits, time constants, series-parallel resonant circuits, and filters.
(7) Industrial Electricity (ELEC 1263, Party B)
Prerequisite: Fundamentals of Electricity
Course contents: Fundamentals of motors and motor control. Includes switches, relays, transformers, three-phase power systems, DC motors, single-phase motors, three-phase motors, overload protection, and motor controllers. The National Electrical Code standards for all circuits are emphasized.
(8) PLC Applications (ELEC 2513, Party B)
Prerequisites: Digital Fundamentals
Course contents: Provides the engineer or technician with an overview of the selection, programming, operation, and capabilities/ limitations of programmable logic controllers.
(9) Robot Operations and Maintenance (ELEC 2413, Party B)
Prerequisite: Introduction to Robotics
Course contents: Teaches the basic operation and programming of a robot using a teach pendant as well as the robotic cell hazards, health and safety, and maintenance requirements.
(10) Solid State (ELEC 1393, Party B)
Prerequisites: Fundamentals of Electricity
Course contents: Solid-state circuitry, including characteristics of active and passive circuit components. Both DC and AC signal approximations are analyzed to determine correct circuit operation and common failure modes. Rectifier, regulator, and amplifier circuits plus Bipolar, J-FET, MOSFET, SCR, DIAC, and TRIAC circuits are included.
(11) Advanced Electronic Circuits (ELEC 2733, Party B)
Prerequisite: Solid State
Course contents: Covers advanced electronic circuit analysis and trouble-shooting, and positive and negative feedback circuits.
(12) Communication System (ELEC 2753, Party B)
Prerequisite: Advanced Electronic Circuits
Course contents: Covers AM and FM receiver theory, alignment and troubleshooting. Details theory and practical application of troubleshooting techniques as applied to superheterodyne receivers, audio amplifiers, and stereo systems.
(13) Circuit Design and Circuit Board Technology (ZA21, Party A)
Prerequisite: English
Course contents: The main teaching contents include the drawing of circuit schematic diagram, the design and production of printed circuit board. Students can analyze typical and commonly used circuits. They can skillfully use PROTEL, AD and other software to draw all kinds of circuit schematics, design PCB board drawings according to needs, make schematic drawing, PCB board making for small electronic products, and complete installation, debugging and testing.
(14) Technology and Practice of Single Chip Microcomputer (ZA31, Party A)
Prerequisite: Fundamentals of Electricity, Digital Fundamentals and Introduction to Programming
Course contents: The main teaching contents include the design of C program based on minimization of single chip computer system. Students should master the basic specifications, methods and techniques of C program design based on the 51 single chip computers.
(15) Embedded System and Application (ZA41, Party A)
Prerequisite: Fundamentals of Electricity, Digital Fundamentals, Technology and Practice of Single Chip Microcomputer and Introduction to Programming
Course contents: The main teaching contents include the composition and basic principles of embedded system, the characteristics and application development of ARM architecture, and the basic principles and applications of embedded operation system. Students can get basic knowledge about the various aspects of embedded system and system development; grasp the embedded microprocessor ARM the basic structure, instruction system, programming method, application and development of technology; understand the principle of embedded operating system, embedded application technology principle and development process.
Features
(1) The synchronous implementation of the training of Applied Electronic Technology Talents by Chinese and foreign teachers
The University of Arkansas, Fort Smith, founded in 1928, has nearly 8000 students. It is a university recognized by the Ministry of Education of China. UAFS is the sixth largest university in Arkansas and one of 11 campuses in the University of Arkansas System. Since UAFS was merged into the Arkansas education system, the school began offering a variety of professional courses, and strengthened its unique degree courses, covering industrial training professional and technical professional and so on. Electronic information specialty is one of the major education programs in the US called STEM, which aims to encourage students to major in science, technology, engineering and mathematics. In the United States, STEM is widely popular, because according to the CCG survey, STEM professional graduates almost covers the top ten of the high salary list in both America and Britain. The annual income of graduates such as electrical engineering, mechanical engineering, general engineering is unmatched by other professional graduates. Through cooperation in running schools, two schools are implementing the training of electronic information talents synchronously in the aspects of talent training plan, language and professional courses teaching, testing and evaluation standards, ensuring the quality of professional training.
(2) Establishing quality assurance system for Chinese and foreign cooperation in running schools
UAFS has clear goals and expectations for student learning, and is committed to continuously assessing the quality of teaching to improve teaching methods. Each academic process has a standardized teaching goal, and the results of the assessment are used for subsequent curriculum improvement, planning and resource allocation. By bringing the Sino-American Program into the school education system, we monitor the quality of education uniformly. According to the particularity of the program, combined with UAFS's quality process monitoring methods, a quality assurance system suitable for Sino-American education projects has been formed, which covers teacher engagement, student status management, teaching management, quality assessment and so on.
(3) Guarantee of practical activity
Through the arrangement of each semester's vacation assignment and the arrangement of the practice week, the students will be urged to participate in the practice. Through practice, students can find out a short board of knowledge. Before graduation, students will have a semester's practice requirement, and must complete survey report or weekly practice report, so as to provide a feedback of the internship.
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