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OCR AAQ in Applied Science: 1.3 The Scientific Community
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OCR AAQ in Applied Science: 1.3 The Scientific Community

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Unit F181: Science in society Topic Area 1.3 The Scientific Community This PowerPoint is a whole lessons included with student activities and animated answers.
OCR AAQ in Applied Science: 1.2 The Scientific Method
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OCR AAQ in Applied Science: 1.2 The Scientific Method

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Unit F181: Science in society Topic Area 1.2 The Scientific Method This PowerPoint is a whole lessons included with student activities and animated answers.
OCR AAQ in Applied Science: 1.1 The skills of scientists
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OCR AAQ in Applied Science: 1.1 The skills of scientists

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Unit F181: Science in society Topic Area 1.1 The skills of scientists This PowerPoint is a whole lessons included with student activities and animated answers.
OCR AAQ in Applied Science: P3: Medical Physics
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OCR AAQ in Applied Science: P3: Medical Physics

9 Resources
Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Topic Area 3: Medical Physics 3.1 - X-rays and ultrasound 3.2 -3.2 Radioactivity These PowerPoints is a whole lessons included with student activities and animated answers. Electron transitions Ground state, excited state, and ionised state The similarities and differences between the types of electromagnetic (EM) radiation, including in terms of production, penetration, uses, frequency and wavelength Know the definition of a quantum and a photon Use of the equations: Energy of a photon (J) = Planck constant (J s) × frequency (Hz) Energy of a photon (J) = Planck constant (J s) × speed of light in a vacuum (ms–1) / wavelength (m) Basic structure of an X-ray tube including: heater (cathode), anode, target metal and high voltage supply How X-rays are produced in an X-ray tube, including thermionic emission and energy transfers How tube current and voltage affects the X-ray beam Attenuation of X-rays by absorption and scattering Use of the attenuation of X-rays equation to calculate intensity Know mass attenuation coefficient Use of the mass attenuation coefficient equation. Examples of longitudinal and transverse waves including sound waves and electromagnetic waves Graphical representations of longitudinal and transverse waves Describe wave motion in terms of displacement, amplitude, wavelength, time period, frequency and wave speed. Describe the relationship between intensity and amplitude Use of the equations: Frequency Wave speed Intensity Know definition of ultrasound, including in medical contexts Reflection, and transmission of ultrasound Know that a transducer can both transmit pulses and receive reflected pulses Attenuation of ultrasound by absorption and scattering Impedance matching and coupling mediums How to interpret and use A-scans to solve problems Use of the equations: Density equation Acoustic impedance equation Intensity reflection coefficient equation The spontaneous and random nature of nuclear radioactive decay Know types of decay Properties of nuclear radiation (alpha, beta and gamma) Nuclear decay equations Know how to graphically determine the physical half-life of an isotope Biological, physical and effective half-lives Use of the activity equation Use of the equations to determine N/N0/A/A0 Use of the effective half-life equation Irradiation and contamination Physiological effects of radiation Mechanism of direct and indirect ionisation of biological molecules Absorbed and effective dose Ionisation and half-equations Know the definition of radiopharmaceuticals Use of radionuclides in sterilisation, cancer treatments and medical tracers How to select a radionuclide for an appropriate use
OCR AAQ in Applied Science: P3.2.4 Using radionuclides
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OCR AAQ in Applied Science: P3.2.4 Using radionuclides

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Topic Area P3: Medical physics - 3.2.4 Using radionuclides This PowerPoint is a whole lessons included with student activities and animated answers. Know the definition of radiopharmaceuticals Use of radionuclides in sterilisation, cancer treatments and medical tracers How to select a radionuclide for an appropriate use
OCR AAQ in Applied Science: P3.2.3 Radiation hazards
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OCR AAQ in Applied Science: P3.2.3 Radiation hazards

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Topic Area P3: Medical physics - 3.2.3 Radiation hazards This PowerPoint is a whole lessons included with student activities and animated answers. Irradiation and contamination Physiological effects of radiation Mechanism of direct and indirect ionisation of biological molecules Absorbed and effective dose Ionisation and half-equations
OCR AAQ in Applied Science: P3.2.2 Mathematical analysis of radioactivity
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OCR AAQ in Applied Science: P3.2.2 Mathematical analysis of radioactivity

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Topic Area P3: Medical physics -3.2.2 Mathematical analysis of radioactivity This PowerPoint is a whole lessons included with student activities and animated answers. Know how to graphically determine the physical half-life of an isotope Biological, physical and effective half-lives Use of the activity equation Use of the equations to determine N/N0/A/A0 Use of the effective half-life equation
OCR AAQ in Applied Science: P3.2.1 Fundamentals of radioactivity
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OCR AAQ in Applied Science: P3.2.1 Fundamentals of radioactivity

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Topic Area P3: Medical physics -3.2.1 Fundamentals of radioactivity This PowerPoint is a whole lessons included with student activities and animated answers. The spontaneous and random nature of nuclear radioactive decay Know types of decay Properties of nuclear radiation (alpha, beta and gamma) Nuclear decay equations
OCR AAQ in Applied Science: P3.1.5 Ultrasound
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OCR AAQ in Applied Science: P3.1.5 Ultrasound

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Topic Area P3: Medical physics - 3.1.5 Ultrasound This PowerPoint is a whole lessons included with student activities and animated answers. Know definition of ultrasound, including in medical contexts Reflection, and transmission of ultrasound Know that a transducer can both transmit pulses and receive reflected pulses Attenuation of ultrasound by absorption and scattering Impedance matching and coupling mediums How to interpret and use A-scans to solve problems Use of the equations: Density equation Acoustic impedance equation Intensity reflection coefficient equation
OCR AAQ in Applied Science: P3.1.4 Wave Motion
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OCR AAQ in Applied Science: P3.1.4 Wave Motion

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Topic Area P3: Medical physics -3.1.4 Wave Motion This PowerPoint is a whole lessons included with student activities and animated answers. Examples of longitudinal and transverse waves including sound waves and electromagnetic waves Graphical representations of longitudinal and transverse waves Describe wave motion in terms of displacement, amplitude, wavelength, time period, frequency and wave speed. Describe the relationship between intensity and amplitude Use of the equations: Frequency Wave speed Intensity
OCR AAQ in Applied Science: P3.1.3 X-rays
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OCR AAQ in Applied Science: P3.1.3 X-rays

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Topic Area P3: Medical physics -3.1.3 X-rays This PowerPoint is a whole lessons included with student activities and animated answers. Basic structure of an X-ray tube including: heater (cathode), anode, target metal and high voltage supply How X-rays are produced in an X-ray tube, including thermionic emission and energy transfers How tube current and voltage affects the X-ray beam Attenuation of X-rays by absorption and scattering Use of the attenuation of X-rays equation to calculate intensity Know mass attenuation coefficient Use of the mass attenuation coefficient equation.
OCR AAQ in Applied Science: P2.1.6 Investigating motion
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OCR AAQ in Applied Science: P2.1.6 Investigating motion

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Topic Area P2: Motion - 2.1.6 Investigating motion This PowerPoint is a whole lessons included with student activities and animated answers. Use of apparatus, techniques and procedures to accurately determine the acceleration of free fall using trapdoor and electromagnet arrangement; light gates and timer
OCR AAQ in Applied Science: P3.1.2 Electromagnetic radiation
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OCR AAQ in Applied Science: P3.1.2 Electromagnetic radiation

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Topic Area P3: Medical physics -3.1.2 Electromagnetic radiation This PowerPoint is a whole lessons included with student activities and animated answers. The similarities and differences between the types of electromagnetic (EM) radiation, including in terms of production, penetration, uses, frequency and wavelength Know the definition of a quantum and a photon Use of the equations: Energy of a photon (J) = Planck constant (J s) × frequency (Hz) Energy of a photon (J) = Planck constant (J s) × speed of light in a vacuum (ms–1) / wavelength (m)
OCR AAQ in Applied Science: P3.1.1 The atom
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OCR AAQ in Applied Science: P3.1.1 The atom

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Topic Area P3: Medical physics - 3.1.1 The atom This PowerPoint is a whole lessons included with student activities and animated answers. Electron transitions Ground state, excited state, and ionised state
OCR AAQ in Applied Science: P2: Motion
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OCR AAQ in Applied Science: P2: Motion

6 Resources
Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Topic Area P2: Motion How energy is stored How energy is transferred via energy carriers or pathways How diagrams can be used to represent energy transfers How to draw scale Sankey diagrams Know the definition of work done by a force Know the unit of work done Use of the equations: Work done (J) = force (N) × displacement (m) Work done (J) = force (N) × displacement (m) × cosθ Power (W) = work done (J) x time (s) Efficiency = useful energy transferred /total energy transferred SUVAT equations Kinetic energy equation Gravitational potential energy equation Elastic potential energy equation Determine the work done on a spring from a graph Apply conservation of energy to examples involving gravitational potential Law of conservation of energy energy, elastic potential energy, and kinetic energy Newton’s first and third laws of motion Newton’s second law of motion for constant mass Use of Newton’s three laws of motion including how to use free-body force diagrams to solve problems The vector–scalar distinction as it applies to displacement and distance, velocity and speed Use of apparatus, techniques and procedures to accurately determine the acceleration of free fall using trapdoor and electromagnet arrangement; light gates and timer
OCR AAQ in Applied Science: P2.1.5 Force
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OCR AAQ in Applied Science: P2.1.5 Force

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Topic Area P2: Motion - 2.1.5 Forces This PowerPoint is a whole lessons included with student activities and animated answers. Newton’s first and third laws of motion Newton’s second law of motion for constant mass SUVAT equations Use of Newton’s three laws of motion including how to use free-body force diagrams to solve problems The vector–scalar distinction as it applies to displacement and distance, velocity and speed
OCR AAQ in Applied Science: P2.1.4 Power and Efficiency
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OCR AAQ in Applied Science: P2.1.4 Power and Efficiency

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Topic Area P2: Motion - 2.1.4 Power and Efficiency This PowerPoint is a whole lessons included with student activities and animated answers. Power (W) = work done (J) x time (s) Efficiency = useful energy transferred /total energy transferred
OCR AAQ in Applied Science: P2.1.3 Kinetic and potential energy
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OCR AAQ in Applied Science: P2.1.3 Kinetic and potential energy

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Topic Area P2: Motion - 2.1.3 Kinetic and potential energy This PowerPoint is a whole lessons included with student activities and animated answers. Kinetic energy equation Gravitational potential energy equation Elastic potential energy equation Determine the work done on a spring from a graph Apply conservation of energy to examples involving gravitational potential energy, elastic potential energy, and kinetic energy
OCR AAQ in Applied Science: P2.1.2 Work and energy
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OCR AAQ in Applied Science: P2.1.2 Work and energy

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Topic Area P2: Motion - 2.1.2 Work and energy This PowerPoint is a whole lessons included with student activities and animated answers. Know the definition of work done by a force Know the unit of work done Use of the equations: Work done (J) = force (N) × displacement (m) Work done (J) = force (N) × displacement (m) × cosθ Law of conservation of energy
OCR AAQ in Applied Science: P2.1.1 Energy stores and energy transfers
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OCR AAQ in Applied Science: P2.1.1 Energy stores and energy transfers

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Course: OCR Level 3 Alternative Academic Qualification Cambridge Advanced Nationals in Applied Science. Topic Area P2: Motion - 2.1.1 Energy stores and energy transfers This PowerPoint is a whole lessons included with student activities and animated answers. How energy is stored How energy is transferred via energy carriers or pathways How diagrams can be used to represent energy transfers How to draw scale Sankey diagrams