Course Detail
Course Description
| Course | Code | Semester | T+P (Hour) | Credit | ECTS |
|---|---|---|---|---|---|
| BUILDING INFORMATION MODELLING PRACTICES I | MIM4115859 | Fall Semester | 2+1 | 2,5 | 4 |
| Course Program |
| Prerequisites Courses | |
| Recommended Elective Courses |
| Language of Course | Turkish |
| Course Level | First Cycle (Bachelor's Degree) |
| Course Type | Required |
| Course Coordinator | Assist.Prof. Tahir AKKOYUNLU |
| Name of Lecturer(s) | Assist.Prof. Tahir AKKOYUNLU, Lect.Dr. Gizem ŞİMŞİR, Lect. Pınar COŞKUN |
| Assistant(s) | |
| Aim | The aim of this course is to enable architecture, interior architecture, industrial product design, and urban design students to learn the principles of Building Information Modeling (BIM) to a level where they can apply them in the DAS 2 course. Students will learn the basic tools and methodologies of BIM, which promote interdisciplinary collaboration, increase efficiency, and contribute to sustainable design processes. As a result, they will be able to effectively utilize current technological developments in their future professional careers to produce competitive and innovative solutions. |
| Course Content | This course contains; BIM ile alakalı temel kavramların özeti. Derste üzerinde durulacak BIM yöntemleri ve BIM boyutları (4d, 5d, 6d,7d BIM),Evaluation of the project scope and work area together with the group leaders. Evaluation of land use and user group requirements WORK TO BE DONE: Preparation of land analysis files,Discussions with group leaders on terrain and design issues, evaluation of the modular system, introduction to terrain modeling with Autodesk Infraworks and Forma.,Modeling and analysis of structural systems with BIM (basic and load-bearing concepts in structures, their modeling and data provision in the BIM environment, and their definition as analytical elements),Introduction to cost analysis with BIM “Scheduling & material take-off”, 4D planning, BIM, planning, cost analysis application example,BIM-based family production, parametric object modeling (Seminar),BIM and Generative design,Jury,The concept of “Clash Detection” and preparing clash detection reports case study,Introduction to daylight analysis with BIM; basic concepts, altitude, azimuth, light flux, illuminance, luminance—Facade example,Sustainability Seminar Introduction to Building Physics, Thermal Analysis with BIM,BIM-based MEP modeling (Seminar),Grup bazlı BIM modeli tashihleri 1,Group-based BIM model corrections 2. |
| Course Learning Outcomes | Teaching Methods | Assessment Methods |
| Recognizes and interprets information packages, basic expression tools and methods, materials and technologies used in the professional field at a basic level. | 1 | E, F, L, R |
| Based on observations of human movements, the student is able to come up with the spatial terms that correspond to these movements. | 2, 5 | E, F, L, R |
| The student is able to come up with a design concept that will meet the design brief and act as a guide in arriving at a meaningful form. | 1, 5 | E, F |
| The student understands the mutual relationship between form and material and is able to accordingly shape her/his form. | 2, 5 | E, F, L, R |
| The student is able to determine the interaction of the sun with her/his designed form in any given season and during any time of the day. | 2, 5, 6 | E, F |
| Teaching Methods: | 1: Mastery Learning, 2: Project Based Learning Model, 5: Cooperative Learning, 6: Experiential Learning |
| Assessment Methods: | E: Homework, F: Project Task, L: Group Assessment Technique, R: Simulation-Based Evaluation |
Course Outline
| Order | Subjects | Preliminary Work |
|---|---|---|
| 1 | BIM ile alakalı temel kavramların özeti. Derste üzerinde durulacak BIM yöntemleri ve BIM boyutları (4d, 5d, 6d,7d BIM) | |
| 2 | Evaluation of the project scope and work area together with the group leaders. Evaluation of land use and user group requirements WORK TO BE DONE: Preparation of land analysis files | |
| 3 | Discussions with group leaders on terrain and design issues, evaluation of the modular system, introduction to terrain modeling with Autodesk Infraworks and Forma. | |
| 4 | Modeling and analysis of structural systems with BIM (basic and load-bearing concepts in structures, their modeling and data provision in the BIM environment, and their definition as analytical elements) | |
| 5 | Introduction to cost analysis with BIM “Scheduling & material take-off”, 4D planning, BIM, planning, cost analysis application example | |
| 6 | BIM-based family production, parametric object modeling (Seminar) | |
| 7 | BIM and Generative design | |
| 8 | Jury | |
| 9 | The concept of “Clash Detection” and preparing clash detection reports case study | |
| 10 | Introduction to daylight analysis with BIM; basic concepts, altitude, azimuth, light flux, illuminance, luminance—Facade example | |
| 11 | Sustainability Seminar Introduction to Building Physics, Thermal Analysis with BIM | |
| 12 | BIM-based MEP modeling (Seminar) | |
| 13 | Grup bazlı BIM modeli tashihleri 1 | |
| 14 | Group-based BIM model corrections 2 |
| Resources |
| BIM Handbook: A Guide to Building Information Modeling for Owners, Managers, Designers, Engineers and Contractors Building Information Modeling: A Strategic Implementation Guide for Architects, Engineers, Constructors, and Facility Managers Delivering BIM: A Whole Life Approach BIM and Integrated Design: Strategies for Architectural Practice Revit Architecture 202X for Architects and Designers |
Course Contribution to Program Qualifications
| Course Contribution to Program Qualifications | |||||||
| No | Program Qualification | Contribution Level | |||||
| 1 | 2 | 3 | 4 | 5 | |||
| 1 | DESIGN (Knowledge-Theoretical, Factual): During planning, implementation, management and supervision processes; Knowledge of creative problem defining and solving | ||||||
| 2 | DESIGN (Skill-Cognitive, Applied): Design-oriented research fiction, execution and evaluation of results and design process planning, management, application skills | ||||||
| 3 | DESIGN (Competencies-Ability to Work Independently and Take Responsibility): Ability to work within a team, to emphasize interdisciplinary interaction and apply technology-based business association methods | ||||||
| 4 | DESIGN (Competencies-Learning Competence): To evaluate critically the knowledge and skills gained in the field, to plan and to develop constantly professional knowledge, skills and approaches | ||||||
| 5 | DESIGN (Competencies-Communication and Social Competence): Transferring design solutions as oral, written and visual (2D and 3D) presentations on national and international platforms | ||||||
| 6 | DESIGN (Competencies-Field Specific Competence): Contributing to the design of industrial products to improve the quality of life of the society. | ||||||
| 7 | HISTORY, CULTURE, ART (Knowledge-Theoretical, Factual): To make connections between the information obtained by the analytical approach and the information on historical and cultural development and current situation in Turkey and in the world, and to expand the boundaries of vocational education proficiency to develop new ideas | ||||||
| 8 | HISTORY, CULTURE, ART (Skill-Cognitive, Applied): Ability to solve the design related problems encountered in concept development, by using the knowledge gained in the field of history, culture and art | ||||||
| 9 | HISTORY, CULTURE, ART (Competencies - Independent Work and Ability to Take Responsibility): To be able to do interdisciplinary work by using the knowledge gained in the field of history, culture and art | ||||||
| 10 | HISTORY, CULTURE, ART (Competences-Learning Competence): Ability to develop the knowledge gained in the field in the direction needed, using the research methods | ||||||
| 11 | HISTORY, CULTURE, ART (Competencies-Communication and Social Competence): Awareness of social and cultural phenomena and continuous change and arranging plans, strategies, projects, collaborations and activities for the social environment with social responsibility consciousness. | ||||||
| 12 | MATERIALS AND TECHNOLOGY (Knowledge-Theoretical, Factual): To gain knowledge concerning technology, material, product and production methods - that is to be used in the solution of the problem related to the field. | ||||||
| 13 | MATERIALS AND TECHNOLOGY (Skill-Cognitive, Applied): Knowing materials, technology and production methods and developing designs compatible with these methods, proposing new technologies and production methods, developing creative design solutions by interpreting and using technology. | ||||||
| 14 | MATERIALS AND TECHNOLOGY (Competencies - Independent Work and Ability to Take Responsibility): To be able to work together with stakeholders working on different areas and needs in construction and production technologies | ||||||
| 15 | MATERIALS AND TECHNOLOGY (Competencies-Learning Competence): Understand the compatibility and flexibility between the technological tools that meet the requirements according to the needs | ||||||
| 16 | MATERIALS AND TECHNOLOGY (Competencies-Communication and Social Competence): Ability to use appropriate communication techniques and technologies | ||||||
| 17 | MATERIALS AND TECHNOLOGY (Competencies-Field Specific Competencies): Producing and applying knowledge to serve sustainable production and life | ||||||
| 18 | MATERIALS AND TECHNOLOGY (Competencies-Filed specific competencies): To be able to develop creative design solutions by mastering technological development, interpreting the developments and pioneering such developments. | ||||||
| 19 | PROFESSIONAL PRACTICE, PROJECT MANAGEMENT AND LEGAL RESPONSIBILITIES (Knowledge-Theoretical, Factual): -Ethics related to the field, -project management issues, -legal rights and responsibilities, -To gain knowledge about legal responsibilities and regulations affecting design works | ||||||
| 20 | PROFESSIONAL PRACTICE, PROJECT MANAGEMENT AND LEGAL RESPONSIBILITIES (Skill-Cognitive, Applied): Ability to recognize and apply the techniques used and legal responsibilities in planning, design, construction and operation phases of project management. | ||||||
| 21 | PROFESSIONAL PRACTICE, PROJECT MANAGEMENT AND LEGAL RESPONSIBILITIES (Competences - Capability to Work Independently and Take Responsibility): To adapt to the different working environments and forms required by the profession and to contribute to the development of these environments | ||||||
| 22 | PROFESSIONAL PRACTICE, PROJECT MANAGEMENT AND LEGAL RESPONSIBILITIES (Capabilities-Learning Capability): Monitoring and learning the legal, administrative and procedural requirements of design and construction projects throughout professional life, developing new strategic approaches in solving complex problems, taking responsibility | ||||||
| 23 | PROFESSIONAL PRACTICE, PROJECT MANAGEMENT AND LEGAL RESPONSIBILITIES (Competencies-Communication and Social Competence): Being able to lead the process -deploying the necessary communication skills and tools- during planning, designing, construction and operation stages, and demonstrating leadership in providing the solution in the work environment. | ||||||
| 24 | PROFESSIONAL PRACTICE, PROJECT MANAGEMENT AND LEGAL RESPONSIBILITIES (Competencies-Field Specific Competence): To be able to transfer knowledge to the level of expertise, to use theoretical and practical knowledge on the field of Professional Practice, Project Management and Legal responsibilities, knowledge of interdisciplinary interaction | ||||||
| 25 | ENVIRONMENT, STRUCTURE AND HUMAN HEALTH (Knowledge-Theoretic, Factual): Methods and techniques that will be used in the solution of the problems related to the field – to gain knowledge to apply the techniques in the context of environmental health, -building health, -human health | ||||||
| 26 | ENVIRONMENT, STRUCTURE, HUMAN HEALTH (Skill-Cognitive, Applied): Understanding the relationships between environment, structure and human health and creating solutions to related design problems. | ||||||
| 27 | ENVIRONMENT, STRUCTURE, HUMAN HEALTH (Competences - Capability to Work Independently and Take Responsibility): Taking competence and responsibility in the fields of urban / space / product planning, design, implementation and supervision of environment, strcuture and human health | ||||||
| 28 | ENVIRONMENT, STRUCTURE, HUMAN HEALTH (Capabilities-Learning Capability): Competence in researching theoretical and applied information systems on environment, structure and human health | ||||||
| 29 | ENVIRONMENT, STRUCTURE, HUMAN HEALTH (Competencies-Communication and Social Competence): Be able to communicate with all areas of expertise in environment, structure and human health | ||||||
Assessment Methods
| Contribution Level | Absolute Evaluation | |
| Rate of Midterm Exam to Success | 50 | |
| Rate of Final Exam to Success | 50 | |
| Total | 100 | |
| ECTS / Workload Table | ||||||
| Activities | Number of | Duration(Hour) | Total Workload(Hour) | |||
| Course Hours | 0 | 0 | 0 | |||
| Guided Problem Solving | 0 | 0 | 0 | |||
| Resolution of Homework Problems and Submission as a Report | 0 | 0 | 0 | |||
| Term Project | 0 | 0 | 0 | |||
| Presentation of Project / Seminar | 0 | 0 | 0 | |||
| Quiz | 0 | 0 | 0 | |||
| Midterm Exam | 0 | 0 | 0 | |||
| General Exam | 0 | 0 | 0 | |||
| Performance Task, Maintenance Plan | 0 | 0 | 0 | |||
| Total Workload(Hour) | 0 | |||||
| Dersin AKTS Kredisi = Toplam İş Yükü (Saat)/30*=(0/30) | 0 | |||||
| ECTS of the course: 30 hours of work is counted as 1 ECTS credit. | ||||||
Detail Informations of the Course
Course Description
| Course | Code | Semester | T+P (Hour) | Credit | ECTS |
|---|---|---|---|---|---|
| BUILDING INFORMATION MODELLING PRACTICES I | MIM4115859 | Fall Semester | 2+1 | 2,5 | 4 |
| Course Program |
| Prerequisites Courses | |
| Recommended Elective Courses |
| Language of Course | Turkish |
| Course Level | First Cycle (Bachelor's Degree) |
| Course Type | Required |
| Course Coordinator | Assist.Prof. Tahir AKKOYUNLU |
| Name of Lecturer(s) | Assist.Prof. Tahir AKKOYUNLU, Lect.Dr. Gizem ŞİMŞİR, Lect. Pınar COŞKUN |
| Assistant(s) | |
| Aim | The aim of this course is to enable architecture, interior architecture, industrial product design, and urban design students to learn the principles of Building Information Modeling (BIM) to a level where they can apply them in the DAS 2 course. Students will learn the basic tools and methodologies of BIM, which promote interdisciplinary collaboration, increase efficiency, and contribute to sustainable design processes. As a result, they will be able to effectively utilize current technological developments in their future professional careers to produce competitive and innovative solutions. |
| Course Content | This course contains; BIM ile alakalı temel kavramların özeti. Derste üzerinde durulacak BIM yöntemleri ve BIM boyutları (4d, 5d, 6d,7d BIM),Evaluation of the project scope and work area together with the group leaders. Evaluation of land use and user group requirements WORK TO BE DONE: Preparation of land analysis files,Discussions with group leaders on terrain and design issues, evaluation of the modular system, introduction to terrain modeling with Autodesk Infraworks and Forma.,Modeling and analysis of structural systems with BIM (basic and load-bearing concepts in structures, their modeling and data provision in the BIM environment, and their definition as analytical elements),Introduction to cost analysis with BIM “Scheduling & material take-off”, 4D planning, BIM, planning, cost analysis application example,BIM-based family production, parametric object modeling (Seminar),BIM and Generative design,Jury,The concept of “Clash Detection” and preparing clash detection reports case study,Introduction to daylight analysis with BIM; basic concepts, altitude, azimuth, light flux, illuminance, luminance—Facade example,Sustainability Seminar Introduction to Building Physics, Thermal Analysis with BIM,BIM-based MEP modeling (Seminar),Grup bazlı BIM modeli tashihleri 1,Group-based BIM model corrections 2. |
| Course Learning Outcomes | Teaching Methods | Assessment Methods |
| Recognizes and interprets information packages, basic expression tools and methods, materials and technologies used in the professional field at a basic level. | 1 | E, F, L, R |
| Based on observations of human movements, the student is able to come up with the spatial terms that correspond to these movements. | 2, 5 | E, F, L, R |
| The student is able to come up with a design concept that will meet the design brief and act as a guide in arriving at a meaningful form. | 1, 5 | E, F |
| The student understands the mutual relationship between form and material and is able to accordingly shape her/his form. | 2, 5 | E, F, L, R |
| The student is able to determine the interaction of the sun with her/his designed form in any given season and during any time of the day. | 2, 5, 6 | E, F |
| Teaching Methods: | 1: Mastery Learning, 2: Project Based Learning Model, 5: Cooperative Learning, 6: Experiential Learning |
| Assessment Methods: | E: Homework, F: Project Task, L: Group Assessment Technique, R: Simulation-Based Evaluation |
Course Outline
| Order | Subjects | Preliminary Work |
|---|---|---|
| 1 | BIM ile alakalı temel kavramların özeti. Derste üzerinde durulacak BIM yöntemleri ve BIM boyutları (4d, 5d, 6d,7d BIM) | |
| 2 | Evaluation of the project scope and work area together with the group leaders. Evaluation of land use and user group requirements WORK TO BE DONE: Preparation of land analysis files | |
| 3 | Discussions with group leaders on terrain and design issues, evaluation of the modular system, introduction to terrain modeling with Autodesk Infraworks and Forma. | |
| 4 | Modeling and analysis of structural systems with BIM (basic and load-bearing concepts in structures, their modeling and data provision in the BIM environment, and their definition as analytical elements) | |
| 5 | Introduction to cost analysis with BIM “Scheduling & material take-off”, 4D planning, BIM, planning, cost analysis application example | |
| 6 | BIM-based family production, parametric object modeling (Seminar) | |
| 7 | BIM and Generative design | |
| 8 | Jury | |
| 9 | The concept of “Clash Detection” and preparing clash detection reports case study | |
| 10 | Introduction to daylight analysis with BIM; basic concepts, altitude, azimuth, light flux, illuminance, luminance—Facade example | |
| 11 | Sustainability Seminar Introduction to Building Physics, Thermal Analysis with BIM | |
| 12 | BIM-based MEP modeling (Seminar) | |
| 13 | Grup bazlı BIM modeli tashihleri 1 | |
| 14 | Group-based BIM model corrections 2 |
| Resources |
| BIM Handbook: A Guide to Building Information Modeling for Owners, Managers, Designers, Engineers and Contractors Building Information Modeling: A Strategic Implementation Guide for Architects, Engineers, Constructors, and Facility Managers Delivering BIM: A Whole Life Approach BIM and Integrated Design: Strategies for Architectural Practice Revit Architecture 202X for Architects and Designers |
Course Contribution to Program Qualifications
| Course Contribution to Program Qualifications | |||||||
| No | Program Qualification | Contribution Level | |||||
| 1 | 2 | 3 | 4 | 5 | |||
| 1 | DESIGN (Knowledge-Theoretical, Factual): During planning, implementation, management and supervision processes; Knowledge of creative problem defining and solving | ||||||
| 2 | DESIGN (Skill-Cognitive, Applied): Design-oriented research fiction, execution and evaluation of results and design process planning, management, application skills | ||||||
| 3 | DESIGN (Competencies-Ability to Work Independently and Take Responsibility): Ability to work within a team, to emphasize interdisciplinary interaction and apply technology-based business association methods | ||||||
| 4 | DESIGN (Competencies-Learning Competence): To evaluate critically the knowledge and skills gained in the field, to plan and to develop constantly professional knowledge, skills and approaches | ||||||
| 5 | DESIGN (Competencies-Communication and Social Competence): Transferring design solutions as oral, written and visual (2D and 3D) presentations on national and international platforms | ||||||
| 6 | DESIGN (Competencies-Field Specific Competence): Contributing to the design of industrial products to improve the quality of life of the society. | ||||||
| 7 | HISTORY, CULTURE, ART (Knowledge-Theoretical, Factual): To make connections between the information obtained by the analytical approach and the information on historical and cultural development and current situation in Turkey and in the world, and to expand the boundaries of vocational education proficiency to develop new ideas | ||||||
| 8 | HISTORY, CULTURE, ART (Skill-Cognitive, Applied): Ability to solve the design related problems encountered in concept development, by using the knowledge gained in the field of history, culture and art | ||||||
| 9 | HISTORY, CULTURE, ART (Competencies - Independent Work and Ability to Take Responsibility): To be able to do interdisciplinary work by using the knowledge gained in the field of history, culture and art | ||||||
| 10 | HISTORY, CULTURE, ART (Competences-Learning Competence): Ability to develop the knowledge gained in the field in the direction needed, using the research methods | ||||||
| 11 | HISTORY, CULTURE, ART (Competencies-Communication and Social Competence): Awareness of social and cultural phenomena and continuous change and arranging plans, strategies, projects, collaborations and activities for the social environment with social responsibility consciousness. | ||||||
| 12 | MATERIALS AND TECHNOLOGY (Knowledge-Theoretical, Factual): To gain knowledge concerning technology, material, product and production methods - that is to be used in the solution of the problem related to the field. | ||||||
| 13 | MATERIALS AND TECHNOLOGY (Skill-Cognitive, Applied): Knowing materials, technology and production methods and developing designs compatible with these methods, proposing new technologies and production methods, developing creative design solutions by interpreting and using technology. | ||||||
| 14 | MATERIALS AND TECHNOLOGY (Competencies - Independent Work and Ability to Take Responsibility): To be able to work together with stakeholders working on different areas and needs in construction and production technologies | ||||||
| 15 | MATERIALS AND TECHNOLOGY (Competencies-Learning Competence): Understand the compatibility and flexibility between the technological tools that meet the requirements according to the needs | ||||||
| 16 | MATERIALS AND TECHNOLOGY (Competencies-Communication and Social Competence): Ability to use appropriate communication techniques and technologies | ||||||
| 17 | MATERIALS AND TECHNOLOGY (Competencies-Field Specific Competencies): Producing and applying knowledge to serve sustainable production and life | ||||||
| 18 | MATERIALS AND TECHNOLOGY (Competencies-Filed specific competencies): To be able to develop creative design solutions by mastering technological development, interpreting the developments and pioneering such developments. | ||||||
| 19 | PROFESSIONAL PRACTICE, PROJECT MANAGEMENT AND LEGAL RESPONSIBILITIES (Knowledge-Theoretical, Factual): -Ethics related to the field, -project management issues, -legal rights and responsibilities, -To gain knowledge about legal responsibilities and regulations affecting design works | ||||||
| 20 | PROFESSIONAL PRACTICE, PROJECT MANAGEMENT AND LEGAL RESPONSIBILITIES (Skill-Cognitive, Applied): Ability to recognize and apply the techniques used and legal responsibilities in planning, design, construction and operation phases of project management. | ||||||
| 21 | PROFESSIONAL PRACTICE, PROJECT MANAGEMENT AND LEGAL RESPONSIBILITIES (Competences - Capability to Work Independently and Take Responsibility): To adapt to the different working environments and forms required by the profession and to contribute to the development of these environments | ||||||
| 22 | PROFESSIONAL PRACTICE, PROJECT MANAGEMENT AND LEGAL RESPONSIBILITIES (Capabilities-Learning Capability): Monitoring and learning the legal, administrative and procedural requirements of design and construction projects throughout professional life, developing new strategic approaches in solving complex problems, taking responsibility | ||||||
| 23 | PROFESSIONAL PRACTICE, PROJECT MANAGEMENT AND LEGAL RESPONSIBILITIES (Competencies-Communication and Social Competence): Being able to lead the process -deploying the necessary communication skills and tools- during planning, designing, construction and operation stages, and demonstrating leadership in providing the solution in the work environment. | ||||||
| 24 | PROFESSIONAL PRACTICE, PROJECT MANAGEMENT AND LEGAL RESPONSIBILITIES (Competencies-Field Specific Competence): To be able to transfer knowledge to the level of expertise, to use theoretical and practical knowledge on the field of Professional Practice, Project Management and Legal responsibilities, knowledge of interdisciplinary interaction | ||||||
| 25 | ENVIRONMENT, STRUCTURE AND HUMAN HEALTH (Knowledge-Theoretic, Factual): Methods and techniques that will be used in the solution of the problems related to the field – to gain knowledge to apply the techniques in the context of environmental health, -building health, -human health | ||||||
| 26 | ENVIRONMENT, STRUCTURE, HUMAN HEALTH (Skill-Cognitive, Applied): Understanding the relationships between environment, structure and human health and creating solutions to related design problems. | ||||||
| 27 | ENVIRONMENT, STRUCTURE, HUMAN HEALTH (Competences - Capability to Work Independently and Take Responsibility): Taking competence and responsibility in the fields of urban / space / product planning, design, implementation and supervision of environment, strcuture and human health | ||||||
| 28 | ENVIRONMENT, STRUCTURE, HUMAN HEALTH (Capabilities-Learning Capability): Competence in researching theoretical and applied information systems on environment, structure and human health | ||||||
| 29 | ENVIRONMENT, STRUCTURE, HUMAN HEALTH (Competencies-Communication and Social Competence): Be able to communicate with all areas of expertise in environment, structure and human health | ||||||
Assessment Methods
| Contribution Level | Absolute Evaluation | |
| Rate of Midterm Exam to Success | 50 | |
| Rate of Final Exam to Success | 50 | |
| Total | 100 | |