Course Outcomes (COs):
Course |
Learning outcome (at course level) |
Learning and teaching strategies |
Assessment Strategies |
|
---|---|---|---|---|
Course Code |
Course Title |
|
|
|
24CPHY212 |
Bio-Physics (Theory)
|
CO27: Understand the working of various diagnostic tools, medical imaging techniques and therapeutic applications.
CO28: Apply knowledge of lasers in medical physics
CO29: Study diagnostic and therapeutic applications like the X-ray technology and magnetic resonance imaging . CO30: Know about the units of radiations and their safety limits, the devises to detect and measure radiation, such as the Geiger-Mueller counter and scintillation counter. CO31: Gain functional knowledge regarding need for radiological protection and the sources of an approximate level of radiation exposure for treatment purposes. CO32: Contribute effectively in Course specific interaction. |
Approach in teaching: Interactive Lectures, Discussion, Tutorials, Reading assignments, Demonstration, Power point presentations, Problem solving in tutorials, visit to a medical college/university.
Learning activities for the students: Self learning assignments, Effective questions, Seminar presentation.
|
Class test, Semester end examinations, Quiz, Solving problems , Assignments. |
Radiotherapy and telemedicine, LASER- principles of operation, use, types and LASER safety, Radiotherapy- principles, dosage data for clinical applications, Gamma Camera, Positron Emission Tomography, Cobalt-60 machine, Therapeutic application of radioisotopes, application of UV radiation for treatments, biological effects of radiation and ultrasound.
Electromagnetic spectrum. Production and Properties of X-rays, harmful effects of X-rays. X-Ray Imaging, Construction, function and operation of compute and digital radiographic systems. X-ray tube and x-ray beam. Image receptors for computed and digital radiography. Scatter rejection. Contrast media – iodine, barium and air. Dual-energy radiography. Film screen radiography, Mammography, Radiographic tomography and tomosynthesis.
Principles of NMR imaging systems, biological effect of NMR imaging, advantages of NMR imaging system, cryo-electron microscopy; High-resolution light microscopy, Atomic Force Microscopy, Single-molecule manipulation.
Principles of radiation protection, Biological effects of radiation, Radiation monitors, Steps to reduce radiation public. International Commission on Radiological Protection (ICRP) principles, justification, optimization, limitation, introduction of safety and risk management of radiation, Nuclear waste and disposal management.