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Updated on: 21st Feb 2023

BSE215 Sports Biomechanics SUSS Assignment Sample Singapore

The BSE 215 Sports Biomechanics course is a great way to explore the physical elements that are commonly found in sports and athletic activities. Learn about kinematics, kinetics, linear and angular momentum, as well as Newton’s Laws of Motion in relation to muscles, ligaments, tendons and joints. Through the use of applied mathematics and physics, you can effectively study the movement of the human body when playing sports or engaging in other activities. Instructors make use of interactive tools like SimuMotion to illustrate key concepts such as athletic maneuvers, posture, and balance making this a dynamic learning experience.

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The following are some potential assignment tasks:

Assignment Task 1: Express concepts and terminology within the area of sports biomechanics.

Sports biomechanics is a field of study that examines the various physical elements of successful performance in sports and exercise, from form to force. It uses fundamental principles – such as mechanics, physics, and mathematics – to analyze joints, muscles, motion kinematics, motor control, and neuromuscular function when participating in a wide range of sports. Sports biomechanics further explores how external forces interact with an athlete’s body to affect their performance.

In other words, it looks at how all these different pieces play into an athlete’s ability to generate and maintain power relative to their environment. This field has evolved over the years by introducing technological innovations and evolving understanding into how muscles interact with the forces pulled upon them during physical activity. With this knowledge, athletes can understand what they need to do to optimize their performance while mitigating injury risks.

Assignment Task 2: Explain how biomechanical factors influence motion in sports and exercise.

Biomechanics is an important factor in the success of any motion-involved sport or exercise. Understanding biomechanical principles help athletes improve the efficiency and accuracy of their movements, reduce the risk of injuries and optimize their performance. Motion analysis enables a practitioner to compare normal and abnormal data to more accurately diagnose and treat qualified individuals.

Furthermore, it allows coaches to identify areas where athletes can improve their mechanics based on scientific evidence, as well as help designers create better sports equipment and prevent injury by considering external forces including gravity, friction and reaction time. Practicing proper technique helps propel any athlete or exerciser forward in whatever physical goals they have set for themselves, which highlights just how instrumental biomechanical factors are for sports and exercise.

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Assignment Task 3: Illustrate the uses of available instrumentation for measuring kinematics quantities.

There are a variety of instrumentation options available for measuring kinematics quantities. These include things like optical motion capture systems, which use cameras to track the movement of objects, and mechanical devices like force plates and load cells. In addition, there are also various sensors that can be used to measure things like acceleration and velocity. Ultimately, the specific instrumentation that is used will depend on the particular application and what data is needed.

Assignment Task 4: Describe the kinetic concepts including inertia, force, torque, and impulse.

In physics, kinetic concepts are fundamental to the understanding of motion. Inertia is a property of an object to remain at rest or in motion until a force acts against it. A force, such as gravity or friction, can cause an object to accelerate or decelerate. Torque is the product of a force and its lever arm; it determines how much rotation an applied force will create around an axis. Impulse is that change in momentum of a body resulting from a single application of force. All these concepts work together to explain the ways objects move in our everyday world.

Assignment Task 5: Demonstrate the cause-and-effect relationship between force and movement.

Force and movement are two fundamental principles in physics that are fundamentally linked. When an external force is applied to an object, the effect will cause the object to accelerate in the direction of the applied force. This means that as a force is increased, both velocity and acceleration will increase while direction remains constant. Conversely, if the force is removed, then the motion will also diminish or stop completely. Put simply, it can be said that without force there can be no motion. An understanding of these principles are essential for the study of physics, engineering, and other related fields.

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Assignment Task 6: Determine the factors of fluid mechanics affecting flotation, drag and movement of a body in a medium (e.g., water in swimming).

The principles of fluid mechanics play an important role in the flotation, drag, and movement of a body in a medium. Factors such as shape, depth and size of the burrows must be considered when dealing with this type of motion. Moreover, the density and viscosity of the medium should also be taken into account for assessing the effects on motion. Furthermore, surface areas exposed to the medium likewise play an important role in determining drag.

Lastly, factors such as pressure distribution, turbulence levels and acceleration variables need to be considered when considering fluid mechanics related to swimming or floating. Understanding these factors is vital in providing safe and efficient aquatic navigation.

Assignment Task 7: Distinguish the mechanical concepts in basic movements such as gaited movement, jumping, and throwing.

In order to understand the mechanics behind common movements, it is helpful to break them down into their individual concepts. Gaited movement, for example, can be further divided into the mechanics of locomotion and the rider’s aids. The former includes concepts such as balance and rhythm, while the latter refers to the cues that the rider gives to the horse in order to achieve the desired gaiting. Jumping, on the other hand, comprises the mechanical concepts of takeoff and landing.

To successfully execute a jump, both horse and rider must be in synchronization so that they can efficiently complete these two phases. Throwing also has two key concepts: momentum and release. Momentum is generated by the windup phase of the throw, while release occurs when the object is actually released from the hand. By understanding these individual concepts, we can gain a greater understanding of how to perform these movements effectively.

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