8588 modules
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ISVR3059 2029-30
Acoustical Engineering Design
This module comprises two design exercises: the first examines practical vibration isolation requirements, and the second focuses on designing an acoustic exhaust or intake system to meet specified performance criteria. The investigation will be carried out in groups. Teams are expected to consult relevant literature extensively, covering the fundamental physical mechanisms of noise and vibration generation, transmission, and measurement.
Each group will present its findings and demonstrate a solid understanding of the underlying theory. In addition, teams should provide justified recommendations for potential design improvements that could be considered or implemented. The presentation will be followed by a Q&A session. -
ISVR3059 2027-28
Acoustical Engineering Design
This module comprises two design exercises: the first examines practical vibration isolation requirements, and the second focuses on designing an acoustic exhaust or intake system to meet specified performance criteria. The investigation will be carried out in groups. Teams are expected to consult relevant literature extensively, covering the fundamental physical mechanisms of noise and vibration generation, transmission, and measurement.
Each group will present its findings and demonstrate a solid understanding of the underlying theory. In addition, teams should provide justified recommendations for potential design improvements that could be considered or implemented. The presentation will be followed by a Q&A session. -
ISVR6139 2026-27
Active Control of Sound and Vibration
This aim of this module is to build an understanding of the physics of active control. Active control is a method for realising control through the use of secondary sources or actuation, whose outputs are designed to modify the response of a system. Techniques for modelling and analysis of active control of sound, vibration and mechatronics problems will be presented. The feasibility of active control will be demonstrated in a variety of industrial applications. -
ISVR6139 2027-28
Active Control of Sound and Vibration
This aim of this module is to build an understanding of the physics of active control. Active control is a method for realising control through the use of secondary sources or actuation, whose outputs are designed to modify the response of a system. Techniques for modelling and analysis of active control of sound, vibration and mechatronics problems will be presented. The feasibility of active control will be demonstrated in a variety of industrial applications. -
ISVR6139 2025-26
Active Control of Sound and Vibration
This aim of this module is to build an understanding of the physics of active control. Active control is a method for realising control through the use of secondary sources or actuation, whose outputs are designed to modify the response of a system. Techniques for modelling and analysis of active control of sound, vibration and mechatronics problems will be presented. The feasibility of active control will be demonstrated in a variety of industrial applications. -
ISVR6139 2028-29
Active Control of Sound and Vibration
This aim of this module is to build an understanding of the physics of active control. Active control is a method for realising control through the use of secondary sources or actuation, whose outputs are designed to modify the response of a system. Techniques for modelling and analysis of active control of sound, vibration and mechatronics problems will be presented. The feasibility of active control will be demonstrated in a variety of industrial applications. -
ISVR6139 2029-30
Active Control of Sound and Vibration
This aim of this module is to build an understanding of the physics of active control. Active control is a method for realising control through the use of secondary sources or actuation, whose outputs are designed to modify the response of a system. Techniques for modelling and analysis of active control of sound, vibration and mechatronics problems will be presented. The feasibility of active control will be demonstrated in a variety of industrial applications. -
ISVR6139 2031-32
Active Control of Sound and Vibration
This aim of this module is to build an understanding of the physics of active control. Active control is a method for realising control through the use of secondary sources or actuation, whose outputs are designed to modify the response of a system. Techniques for modelling and analysis of active control of sound, vibration and mechatronics problems will be presented. The feasibility of active control will be demonstrated in a variety of industrial applications. -
ISVR6139 2030-31
Active Control of Sound and Vibration
This aim of this module is to build an understanding of the physics of active control. Active control is a method for realising control through the use of secondary sources or actuation, whose outputs are designed to modify the response of a system. Techniques for modelling and analysis of active control of sound, vibration and mechatronics problems will be presented. The feasibility of active control will be demonstrated in a variety of industrial applications. -
GGES6027 2026-27
Active Remote Sensing
This module will introduce the techniques and contemporary methods used in active remote sensing systems, focusing on LIDAR and RADAR systems. The module will cover the fundamental principles of active remote sensing (e.g. the measurement techniques of these systems). Additionally, the module will focus on practical application areas of data from these systems, specifically in terrestrial systems, such as three-dimensional (3D) topographic mapping, forests characteristics mapping and surface deformation.