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Course Detail

Course Description

CourseCodeSemesterT+P (Hour)CreditECTS
CLINICAL ENGINEERING-Spring Semester3+036
Course Program
Prerequisites Courses
Recommended Elective Courses
Language of CourseEnglish
Course LevelFirst Cycle (Bachelor's Degree)
Course TypeElective
Course CoordinatorAssist.Prof. Kevser Banu KÖSE
Name of Lecturer(s)Assist.Prof. Kevser Banu KÖSE
Assistant(s)
AimThis course; has a principle focused on developing solution-oriented innovative perspectives on health systems and applying the contributions of engineering principles to existing technologies.
Course ContentThis course contains; Introduction to the course and clinical engineering
Clinical engineering roles and profession,Medical devices and systems utilized in the modern and future hospital environment,Convergence of medical devices, telecommunications, and information technology Medical device network integration & IoT ,Clinical engineering role in device and systems design: Case study examples
Health technology planning and management through the life cycle ,New technology assessment
Classroom group exercise- technology assessment ,Medical technology regulations and standards
Patient safety and incident investigations of adverse events involving medical technology ,Computerized medical equipment management systems
Clinical engineering department setup and operations,Service delivery management and supervision of technicians
Medical device cybersecurity assessment and remediation ,Operation Theatre
Virtual Surgery ,In-Silico Applications,Clinical Practice,Clinical Practice,Research Oriented Interdisciplinary Project Writing,Technology replacement planning
Evaluation of vendor devices for purchase.
Dersin Öğrenme KazanımlarıTeaching MethodsAssessment Methods
Provide a basic understanding of the clinical engineering profession, qualifications, roles, activities, and expectations. 10, 16, 9
Assess the current trends, challenges, and issues in healthcare technology and how clinical engineers can tackle them.10, 12, 16, 9F
Produces solutions to projects in clinical engineering as part of a team.10, 12, 19, 2, 21, 5
Infers ways for health technology, management, and vendors to better communicate with clinical and other healthcare personnel10, 9H
A student can propose a project aiming to solve a clinical problem using engineering methods within a team10, 12, 21, 9
Teaching Methods:10: Discussion Method, 12: Problem Solving Method, 16: Question - Answer Technique, 19: Brainstorming Technique, 2: Project Based Learning Model, 21: Simulation Technique, 5: Cooperative Learning, 9: Lecture Method
Assessment Methods:F: Project Task, H: Performance Task

Course Outline

OrderSubjectsPreliminary Work
1Introduction to the course and clinical engineering
Clinical engineering roles and profession
Preperaton about the terms
2Medical devices and systems utilized in the modern and future hospital environmentSearch on the topic
3Convergence of medical devices, telecommunications, and information technology Medical device network integration & IoT Search on curent sample IoT applications
4Clinical engineering role in device and systems design: Case study examples
Health technology planning and management through the life cycle
The lifecycle information of the medical device is reviewed
5New technology assessment
Classroom group exercise- technology assessment
Examination of Technology Assessment Models:
6Medical technology regulations and standards
Patient safety and incident investigations of adverse events involving medical technology
ISO 13485 rehberinin okunması
7Computerized medical equipment management systems
Clinical engineering department setup and operations
Review of fundamental information on the basic operation, application areas, and classifications of biomedical devices.
8Service delivery management and supervision of technicians
Medical device cybersecurity assessment and remediation
General research on topics such as service management, processes, and effective communication strategies in healthcare services.
9Operation Theatre
Virtual Surgery
General research on the purpose of virtual surgical applications.
10In-Silico ApplicationsSearch on modeling and simulation tools
11Clinical PracticeSearch on current clinical engineering applications
12Clinical PracticeReview of the past clinical visit report
13Research Oriented Interdisciplinary Project WritingLiterature research about clinical visit reports
14Technology replacement planning
Evaluation of vendor devices for purchase
Research on the tools for technology development planning
Resources
-A Handbook for Clinical and Biomedical Engineers / Editors: Azzam Taktak Paul Ganney David Long Richard Axell / © Academic Press 2019 -Medical Device Quality Management Systems Strategy and Techniques for Improving Efficiency and Effectiveness Susanne Manz Academic Press
Collaboration with TTO 3D LAB Technical Support: M. Yusuf Saatci

Course Contribution to Program Qualifications

Course Contribution to Program Qualifications
NoProgram QualificationContribution Level
12345
1
An ability to apply knowledge of mathematics, science, and engineering
X
2
An ability to identify, formulate, and solve engineering problems
X
3
An ability to design a system, component, or process to meet desired needs within realistic constraints such as economic, environmental, social, political, ethical, health and safety, manufacturability, and sustainability
X
4
An ability to use the techniques, skills, and modern engineering tools necessary for engineering practice
X
5
An ability to use the techniques, skills, and modern engineering tools necessary for engineering practice
X
6
An ability to function on multidisciplinary teams
X
7
An ability to communicate effectively
X
8
A recognition of the need for, and an ability to engage in life-long learning
X
9
An understanding of professional and ethical responsibility
X
10
A knowledge of contemporary issues
X
11
The broad education necessary to understand the impact of engineering solutions in a global, economic, environmental, and societal context
X
12
Capability to apply and decide on engineering principals while understanding and rehabilitating the human body
X

Assessment Methods

Contribution LevelAbsolute Evaluation
Rate of Midterm Exam to Success 30
Rate of Final Exam to Success 70
Total 100
ECTS / Workload Table
ActivitiesNumber ofDuration(Hour)Total Workload(Hour)
Course Hours14342
Guided Problem Solving6530
Resolution of Homework Problems and Submission as a Report3412
Term Project000
Presentation of Project / Seminar111
Quiz339
Midterm Exam155
General Exam188
Performance Task, Maintenance Plan000
Total Workload(Hour)107
Dersin AKTS Kredisi = Toplam İş Yükü (Saat)/30*=(107/30)4
ECTS of the course: 30 hours of work is counted as 1 ECTS credit.

Detail Informations of the Course

Course Description

CourseCodeSemesterT+P (Hour)CreditECTS
CLINICAL ENGINEERING-Spring Semester3+036
Course Program
Prerequisites Courses
Recommended Elective Courses
Language of CourseEnglish
Course LevelFirst Cycle (Bachelor's Degree)
Course TypeElective
Course CoordinatorAssist.Prof. Kevser Banu KÖSE
Name of Lecturer(s)Assist.Prof. Kevser Banu KÖSE
Assistant(s)
AimThis course; has a principle focused on developing solution-oriented innovative perspectives on health systems and applying the contributions of engineering principles to existing technologies.
Course ContentThis course contains; Introduction to the course and clinical engineering
Clinical engineering roles and profession,Medical devices and systems utilized in the modern and future hospital environment,Convergence of medical devices, telecommunications, and information technology Medical device network integration & IoT ,Clinical engineering role in device and systems design: Case study examples
Health technology planning and management through the life cycle ,New technology assessment
Classroom group exercise- technology assessment ,Medical technology regulations and standards
Patient safety and incident investigations of adverse events involving medical technology ,Computerized medical equipment management systems
Clinical engineering department setup and operations,Service delivery management and supervision of technicians
Medical device cybersecurity assessment and remediation ,Operation Theatre
Virtual Surgery ,In-Silico Applications,Clinical Practice,Clinical Practice,Research Oriented Interdisciplinary Project Writing,Technology replacement planning
Evaluation of vendor devices for purchase.
Dersin Öğrenme KazanımlarıTeaching MethodsAssessment Methods
Provide a basic understanding of the clinical engineering profession, qualifications, roles, activities, and expectations. 10, 16, 9
Assess the current trends, challenges, and issues in healthcare technology and how clinical engineers can tackle them.10, 12, 16, 9F
Produces solutions to projects in clinical engineering as part of a team.10, 12, 19, 2, 21, 5
Infers ways for health technology, management, and vendors to better communicate with clinical and other healthcare personnel10, 9H
A student can propose a project aiming to solve a clinical problem using engineering methods within a team10, 12, 21, 9
Teaching Methods:10: Discussion Method, 12: Problem Solving Method, 16: Question - Answer Technique, 19: Brainstorming Technique, 2: Project Based Learning Model, 21: Simulation Technique, 5: Cooperative Learning, 9: Lecture Method
Assessment Methods:F: Project Task, H: Performance Task

Course Outline

OrderSubjectsPreliminary Work
1Introduction to the course and clinical engineering
Clinical engineering roles and profession
Preperaton about the terms
2Medical devices and systems utilized in the modern and future hospital environmentSearch on the topic
3Convergence of medical devices, telecommunications, and information technology Medical device network integration & IoT Search on curent sample IoT applications
4Clinical engineering role in device and systems design: Case study examples
Health technology planning and management through the life cycle
The lifecycle information of the medical device is reviewed
5New technology assessment
Classroom group exercise- technology assessment
Examination of Technology Assessment Models:
6Medical technology regulations and standards
Patient safety and incident investigations of adverse events involving medical technology
ISO 13485 rehberinin okunması
7Computerized medical equipment management systems
Clinical engineering department setup and operations
Review of fundamental information on the basic operation, application areas, and classifications of biomedical devices.
8Service delivery management and supervision of technicians
Medical device cybersecurity assessment and remediation
General research on topics such as service management, processes, and effective communication strategies in healthcare services.
9Operation Theatre
Virtual Surgery
General research on the purpose of virtual surgical applications.
10In-Silico ApplicationsSearch on modeling and simulation tools
11Clinical PracticeSearch on current clinical engineering applications
12Clinical PracticeReview of the past clinical visit report
13Research Oriented Interdisciplinary Project WritingLiterature research about clinical visit reports
14Technology replacement planning
Evaluation of vendor devices for purchase
Research on the tools for technology development planning
Resources
-A Handbook for Clinical and Biomedical Engineers / Editors: Azzam Taktak Paul Ganney David Long Richard Axell / © Academic Press 2019 -Medical Device Quality Management Systems Strategy and Techniques for Improving Efficiency and Effectiveness Susanne Manz Academic Press
Collaboration with TTO 3D LAB Technical Support: M. Yusuf Saatci

Course Contribution to Program Qualifications

Course Contribution to Program Qualifications
NoProgram QualificationContribution Level
12345
1
An ability to apply knowledge of mathematics, science, and engineering
X
2
An ability to identify, formulate, and solve engineering problems
X
3
An ability to design a system, component, or process to meet desired needs within realistic constraints such as economic, environmental, social, political, ethical, health and safety, manufacturability, and sustainability
X
4
An ability to use the techniques, skills, and modern engineering tools necessary for engineering practice
X
5
An ability to use the techniques, skills, and modern engineering tools necessary for engineering practice
X
6
An ability to function on multidisciplinary teams
X
7
An ability to communicate effectively
X
8
A recognition of the need for, and an ability to engage in life-long learning
X
9
An understanding of professional and ethical responsibility
X
10
A knowledge of contemporary issues
X
11
The broad education necessary to understand the impact of engineering solutions in a global, economic, environmental, and societal context
X
12
Capability to apply and decide on engineering principals while understanding and rehabilitating the human body
X

Assessment Methods

Contribution LevelAbsolute Evaluation
Rate of Midterm Exam to Success 30
Rate of Final Exam to Success 70
Total 100

Numerical Data

Student Success

Ekleme Tarihi: 09/10/2023 - 10:40Son Güncelleme Tarihi: 09/10/2023 - 10:41