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Course Description |
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Course Name |
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Synthesis of Mechanisms |
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Course Code |
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MK-504 |
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Course Type |
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Optional |
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Level of Course |
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Second Cycle |
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Year of Study |
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1 |
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Course Semester |
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Spring (16 Weeks) |
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ECTS |
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6 |
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Name of Lecturer(s) |
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Prof.Dr. İBRAHİM DENİZ AKÇALI |
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Learning Outcomes of the Course |
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Explains machine design-Mechanism Synthesis relationships Performs analysis and design of mechanisms on the basis of structure form surface and motion relationships Classifies synthesis problems ; demonstrates solutions of machine design problems in terms of mechanism synthesis . Dimensioning corresponding to realization of desirable motions is learned.
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Mode of Delivery |
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Face-to-Face |
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Prerequisites and Co-Prerequisites |
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None |
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Recommended Optional Programme Components |
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None |
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Aim(s) of Course |
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To acquire knowledge about the most conceptual stage of machine design concerning the synthesis of motion resulting from selection of structure form and surface. |
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Course Contents |
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A short history of mechanisms; Type,number and dimensional syntheses; Techniques for structural design; Classification of 4-bar mechanisms; 4-bar mechanisms for function generation; Design techniques for two,three,four,five and more positions; Conversions of continuous rotation into rocker motion under several criteria. |
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Language of Instruction |
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English |
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Work Place |
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Classroom |
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Course Outline /Schedule (Weekly) Planned Learning Activities |
| Week | Subject | Student's Preliminary Work | Learning Activities and Teaching Methods |
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1 |
Historical Developments of Machine-Mechanism Relationships. |
Relevant References |
Explanations |
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2 |
Scope of Synthesis of Mechanisms. |
Relevant References |
Theoretical Explanations |
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3 |
Structure Analysis and Synthesis. |
Relevant References |
Analytical Approach |
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4 |
Development of Kinematic Chains. |
Relevant References |
Explanations on Applications |
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5 |
Determining Mechanisms |
Relevant References |
Explanations by Examples |
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6 |
Dimensional Synthesis. |
Relevant References |
Theoretical Explanations |
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7 |
Systematics of Synthesis Problems. |
Relevant References |
Explanations by Examples |
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8 |
4-Bar Solutions in Synthesis Problems. |
Relevant References |
Explanations by Examples |
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9 |
Classification of 4-Bar Mechanisms. |
Relevant References |
Theoretical Explanations |
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10 |
Function Generation |
Relevant References |
Theoretical Explanations |
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11 |
Applications |
Relevant References |
Problem Solving |
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12 |
Mid-Term exam |
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13 |
Design for Five and More Positions |
Relevant References |
Explanations on Applications |
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14 |
Conversion of Continuous Rotation to Rocker Motion. |
Relevant References |
Theoretical Explanations |
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15 |
Solutions under Several Criteria |
Relevant References |
Problem Solving |
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16/17 |
Final Exam |
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Required Course Resources |
| Resource Type | Resource Name |
| Recommended Course Material(s) |
Mekanizmaların Sentezi,İ.D.Akçalı,Ç.Ü.Müh.-Mim.Fak.Yayın No:23,1994,
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| Required Course Material(s) |
Mekanizma Tekniği,İ.D.Akçalı, Birsen Kitabevi,2007;
Kinematic Analysis and Synthesis Kimbrell, T.,McGraw-Hill Co.
R. S. Hartenberg, J. Denavit, Kinematic Synthesis of Linkages
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Assessment Methods and Assessment Criteria |
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Semester/Year Assessments |
Number |
Contribution Percentage |
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Mid-term Exams (Written, Oral, etc.) |
1 |
50 |
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Homeworks/Projects/Others |
2 |
50 |
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Total |
100 |
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Rate of Semester/Year Assessments to Success |
40 |
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Final Assessments
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100 |
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Rate of Final Assessments to Success
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60 |
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Total |
100 |
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| Contribution of the Course to Key Learning Outcomes |
| # | Key Learning Outcome | Contribution* |
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1 |
Is equipped with the basic knowledge of math, science and engineering |
5 |
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2 |
Is dominated with basic concepts, theories and principles in mechanical engineering |
5 |
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3 |
Plans and does experiments in advanced level, interpretes and analizes the results and the data |
5 |
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4 |
Is equipped with a variety of skills and advanced engineering techniques |
5 |
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5 |
To design a system, component or process in order to meet the needs of various engineering problems within the limitations of technical, economic, environmental, manufacturability, sustainability |
5 |
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6 |
Independently reviews and learns the applications in an enterprise, makes a critical assessment of the problems faced with, has the ability of selecting the proper technique to formulate problems and propose solutions |
5 |
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7 |
Identifies a product or its production process, design, development, and prioritise its use |
5 |
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8 |
Becomes aware of the necessity of lifelong learning and continuously self-renew |
5 |
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9 |
Is capable of effective oral and written English for technical or non-technical use |
4 |
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10 |
Uses computers effectively, has the ability of computer-aided drafting, design, analysis, and presentation |
4 |
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11 |
Has teamwork skills, good communication skills and works efficiently as a member of versatile and an interdisciplinary team |
5 |
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12 |
Is aware of the technical and ethical responsibilities, inquisitive and innovative |
5 |
| * Contribution levels are between 0 (not) and 5 (maximum). |
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| Student Workload - ECTS |
| Works | Number | Time (Hour) | Total Workload (Hour) |
| Course Related Works |
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Class Time (Exam weeks are excluded) |
14 |
3 |
42 |
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Out of Class Study (Preliminary Work, Practice) |
14 |
6 |
84 |
| Assesment Related Works |
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Homeworks, Projects, Others |
2 |
6 |
12 |
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Mid-term Exams (Written, Oral, etc.) |
1 |
3 |
3 |
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Final Exam |
1 |
2 |
2 |
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Total Workload: | 143 |
| Total Workload / 25 (h): | 5.72 |
| ECTS Credit: | 6 |
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