St Olave s Grammar School. Physics A Level Mock Examination. Revision Checklist 2018

Size: px
Start display at page:

Download "St Olave s Grammar School. Physics A Level Mock Examination. Revision Checklist 2018"

Transcription

1 St Olave s Grammar School Physics A Level Mock Examination 2018

2 Study Guides In addition to this revision checklist, Kerboodle Study Guides can be accessed by following the links below. Content Covered In Year 12: t/100528,100529,100531,100532,100533,100534,100535,100536,100537,100538, Content Covered in Year 13 (limited to a few topics): t/172020,172021, Examination Structure The Physics Mock is in 2 parts. The details of these examinations are shown in the table below. Note that for the Mock examination there will be approximately 20% on Year 12 content, and 80% on Year 13 content (i.e. Modules 5 & 6, pages of this document) Paper 1 2 Name Modelling Physics Exploring Physics Modules Included Marks % of Total 1,2,3, ,2,4,

3 Module 1 - Practical skills a Can you design experiments, including ones to solve problems set in a practical context? b Can you identify the variables that must be controlled in an experiment? c Can you evaluate whether an experimental method is appropriate to meet expected outcomes? a Can you use a wide range of practical apparatus and techniques correctly? b Can you use appropriate units to take measurements? c Can you present observations and data in an appropriate format? a Can you process, analyse and interpret qualitative and quantitative experimental results? b Can you use appropriate mathematical skills for analysis of quantitative data? c Can you use significant figures appropriately? d Can you plot and interpret suitable graphs from experimental results? d i Can you select and label axes with appropriate scales, quantities, and units? d ii Can you measure gradients? a Can you evaluate results and draw conclusions? 3

4 1.1.4 b Can you identify anomalies in experimental measurements? c Can you explain the limitations in experimental procedures? d e Can you be precise and accurate with measurements and data, including margins of error, percentage errors and uncertainties in apparatus? Can you refine experimental design by suggesting improvements to the procedures and apparatus? 4

5 Module 2 - Foundations of physics a Can you explain that physical quantities have a numerical value and a unit? b Can you estimate physical quantities? a Can you describe the Système Internationale (S.I.) base quantities and their units mass (kg), length (m), time (s), current (A), temperature (K), amount of substance (mol)? b Can you use derived units of S.I. base units? c Can you use the all the units you have encountered in the course? d Can you check the homogeneity of physical equations using S.I. base units? e Can you use prefixes and their symbols to indicate decimal submultiples or multiples of units pico (p), nano (n), micro (μ), milli (m), centi (c), deci (d), kilo (k), mega (M), giga (G), tera (T)? f Can you use conventions for labelling graph axes and table columns? a Can you identify systematic errors (including zero errors) and random errors in measurements? b Can state the difference between precision and accuracy? c Can you explain absolute and percentage uncertainties when data are combined by addition, subtraction, multiplication, division and raising to powers? d Can you identify graphical treatment of errors and uncertainties; line of best fit; worst line; absolute and percentage uncertainties; percentage difference? 5

6 2.3.1 a Can you use scalar and vector quantities? b Can you use vector addition and subtraction? c d Can you use a vector triangle to determine the resultant of any two coplanar vectors? Can you resolve a vector into two perpendicular components; F x = F cos θ and F y = F sin θ? 6

7 Module Motion a Can you define displacement, instantaneous speed, average speed, velocity, and acceleration? b Can you interpret graphical representations of displacement, speed, velocity, and acceleration? c Can you draw displacement time graphs and calculate velocity from the gradient? d Can you interpret velocity time graphs, where acceleration is the gradient and displacement is the area under the graph? a i Can you use the equations of motion for constant acceleration in a straight line, including motion of bodies falling in a uniform gravitational field without air resistance? a ii Can you list and describe techniques and procedures used to investigate the motion and collisions of objects? b i Can you define acceleration g of free fall? b ii Can you list and describe techniques and procedures used to determine the acceleration of free fall using a trapdoor and electromagnet arrangement or light gates and a timer? c Can you define what is meant by reaction time and thinking distance; and calculate braking distance and stopping distance for a vehicle? a Can you explain the independence of the vertical and horizontal motion of a projectile? 7

8 3.1.3 b Can you describe the two-dimensional motion of a projectile with constant velocity in one direction and constant acceleration in a perpendicular direction? 8

9 Module Forces in action a Can you recall and understand the formula net force = mass acceleration (F = m a)? b Can you recall the newton as the unit of force? c Can you explain why the weight of an object, W = m g? d Can you define and use the terms tension, normal contact force, upthrust, and friction? e Can you draw and interpret free-body diagrams? f Can you explain one- and two-dimensional motion under constant force? a Can you explain drag as the frictional force experienced by an object travelling through a fluid? b Can you describe the factors affecting drag for an object travelling through air? c Can you describe the motion of objects falling in a uniform gravitational field in the presence of drag? d i Can you define terminal velocity? d ii Can you list and describe techniques and procedures used to determine terminal velocity in fluids? a Can you define the moment of a force? 9

10 3.2.3 b Can you describe a couple and the torque of a couple? c Can you define and use the principle of moments? d e Can you describe centre of mass/centre of gravity, and describe how to determine the centre of gravity experimentally? Can you describe the conditions for equilibrium of an object under the action of forces and torques? f Can you explain the conditions for equilibrium of three coplanar forces? a Can you define density? b Can you describe pressure for solids, liquids, and gases? c Can you apply Archimedes principle and use the equation p = h ρ g to calculate the upthrust acting on an object in a fluid? 10

11 Module Work, energy, and power a Can you define work done by a force and recall that the unit for work done is the joule? b Can you use W = F x cos θ to calculate the work done by a force? c Can you define and apply the principle of conservation of energy? d Can you describe and carry out calculations for situations involving the transfer of energy between different forms? e Can you explain how transfer of energy is equal to work done? a Can you define and calculate the kinetic energy of an object? b Can you define and calculate the gravitational potential energy of an object in a uniform gravitational field? c Can you describe the exchange between gravitational potential energy and kinetic energy? a Can you define and calculate power, and recall that the unit for power is the watt? b Can you use the equation P = F v? c Can you calculate the efficiency of a mechanical system? 11

12 Module Materials a Can you define and describe tensile and compressive deformation, and extension and compression? b Can you state Hooke s law? c Can you determine the force constant k of a spring or wire using F = k x? d i Can you sketch and interpret force extension (or compression) graphs for springs and wires? d ii Can you describe techniques and procedures used to investigate force extension characteristics for arrangements which may include springs, rubber bands, and polythene strips? a Can you use a force extension (or compression) graph to determine the work done in extending (or compressing) the material? b Can you calculate elastic potential energy using E = 2 1 F x and E = 2 1 k x 2? c Can you define stress, strain, and ultimate tensile strength? d i Can you calculate the Young modulus of a material using tensile stress and tensile strain? d ii Can you describe techniques and procedures used to determine the Young modulus for a metal? e Can you interpret and sketch stress strain graphs for typical ductile, brittle, and polymeric materials? 12

13 3.4.2 f Can you describe elastic and plastic deformations of materials? 13

14 Module Laws of motion and momentum a i Can you use the equations of motion for constant acceleration in a straight line, including motion of bodies falling in a uniform gravitational field without air resistance? a Can you explain Newton s three laws of motion? b Can you calculate linear momentum and understand the vector nature of momentum? c Can you understand that net force = rate of change of momentum? d Can you describe and calculate the impulse of a force? e Can you recall that impulse is equal to the area under a force time graph? a Can you define the principle of conservation of momentum? b Can you describe and carry out calculations for collisions and interactions of bodies in one dimension and in two dimensions? c Can you describe perfectly elastic collisions and inelastic collisions? 14

15 Module Charge and current a Can you define electric current as rate of flow of charge? b Can you describe the coulomb as the unit of charge? c Can you recall the elementary charge e equals C? d Can you explain why the net charge on a particle or an object is quantised and a multiple of e? e Can you explain current as the movement of electrons in metals and movement of ions in electrolytes? f Can you describe the difference between conventional current and electron flow? g Can you recall and apply Kirchhoff s first law? a Can you describe what is meant by mean drift velocity of charge carriers? b Can you carry out calculations using I = A n e v, where n is the number density of charge carriers? c Can you explain the distinction between conductors, semiconductors, and insulators in terms of n? 15

16 Module Energy, power, and resistance a Can you recognise and draw circuit symbols? b Can you draw circuit diagrams using circuit symbols? a Can you define potential difference (p.d.) and the unit volt? b Can you describe the electromotive force (e.m.f.) of a source such as a cell or a power supply? c Can you explain the distinction between e.m.f. and p.d. in terms of energy transfer? d Can you describe and calculate energy transfer using W = V Q and W = E Q? e Can you describe and calculate energy transfer using ev = 2 1 m v 2 for electrons and other charged particles? a Can you define resistance and the unit ohm? b Can you explain Ohm's law? c i Can you describe the I V characteristics of the resistor, filament lamp, thermistor, diode, and light-emitting diode (LED)? c ii Can you list and describe techniques and procedures used to investigate the electrical characteristics for a range of ohmic and non-ohmic components? 16

17 4.2.3 d Can you explain the variation of resistance with light intensity for a lightdependent resistor (LDR)? a i Can you explain the resistivity of a material and use the equation ρl R? A a ii Can you list and describe techniques and procedures used to determine the resistivity of a metal? b c Can you explain how resistivity varies with temperature for metals and semiconductors? Can you explain how resistance varies with temperature for a negative temperature coefficient (NTC) thermistor? a Can you use the equations P = V I, P = I 2 R and 2 V P? R b Can you describe energy transfer using the equation W = V I t? c Can you describe the kilowatt-hour (kw h) as a unit of energy and calculate the cost of energy? 17

18 Module Electrical circuits a Can you explain Kirchhoff s second law and the conservation of energy? b Can you describe Kirchhoff s first and second laws applied to electrical circuits? c Can you determine the total resistance of two or more resistors in series using R = R 1 + R 2 +? d Can you determine the total resistance of two or more resistors in parallel using R R R ? e Can you analyse circuits with components both in series and in parallel? f Can you analyse circuits with more than one source of e.m.f.? a Can you define source of e.m.f. and internal resistance? b Can you define terminal p.d. and lost volts? c i Can you use the equations Ɛ = I (R + r) and Ɛ = V + I r? c ii Can you list and describe techniques and procedures used to determine the internal resistance of a chemical cell or other source of e.m.f.? a Can you analyse a potential divider circuit with components? b Can you use potential divider circuits with variable components, e.g., LDRs and thermistors? 18

19 R2 V1 R c i Can you use potential divider equations Vout Vin and? R R V R c ii Can you list and describe techniques and procedures used to investigate potential divider circuits which may include a sensor such as a thermistor or a LDR? 19

20 Module Waves a Can you describe progressive waves, both longitudinal and transverse? b i Can you define displacement, amplitude, wavelength, period, phase difference, frequency, and speed of a wave? b ii Can you list and describe techniques and procedures used to use an oscilloscope to determine frequency? c Can you use the equation f 1? T d Can you use the wave equation v = f λ? e Can you produce graphical representations of transverse and longitudinal waves? f i Can you describe reflection, refraction, polarisation, and diffraction of all waves? f ii Can you list and describe techniques and procedures used to demonstrate wave effects using a ripple tank? f iii Can you list and describe techniques and procedures used to observe polarising effects using microwaves and light? g Can you describe and determine the intensity of a progressive wave using and intensity (amplitude) 2? P I A a Can you describe the electromagnetic spectrum and the properties of electromagnetic waves? 20

21 4.4.2 b Can you describe the orders of magnitude of wavelengths of the principal radiations from radio waves to gamma rays? c Can you describe plane polarised waves and polarisation of electromagnetic waves? d i Can you describe refraction of light with to the refractive index? d i Can you carry out calculations using the refraction law n sin θ = k? d ii Can you list and describe techniques and procedures used to investigate refraction and total internal reflection of light using ray boxes, and transparent rectangular and semi-circular blocks? e Can you define and calculate the critical angle using sinc 1? n e Can you describe the conditions needed for total internal reflection to occur? 21

22 Module 4.4 (Part 2) - Waves a i Can you explain the principle of superposition of waves? a ii Can you list and describe techniques and procedures used for superposition experiments using sound, light, and microwaves? b Can you use graphical methods to illustrate the principle of superposition? c Can you define interference, coherence, path difference, and phase difference? d Can you describe constructive interference and destructive interference in terms of path difference and phase difference? e Can you describe two-source interference for sound and microwaves? f Can you explain the Young double-slit experiment using visible light? g i Can you use a x λ for all waves where a << D? D g ii Can you list and describe techniques and procedures used to determine the wavelength of light using a double-slit and a diffraction grating? a Can you describe stationary (standing) waves using microwaves, stretched strings, and air columns? b Can you interpret and produce graphical representations of a stationary wave? c Can you describe the similarities and the differences between stationary and progressive waves? 22

23 4.4.4 d Can you describe nodes and antinodes? e i Can you describe stationary wave patterns for a stretched string, and air columns in closed and open tubes? e ii f Can you list and explain techniques and procedures used to determine the speed of sound in air by formation of stationary waves in a resonance tube? Can you explain the idea that the separation between adjacent nodes (or antinodes) is equal to 2 λ, where λ is the wavelength of the progressive wave? g Can you define the fundamental mode of vibration (1st harmonic) and describe different harmonics? 23

24 Module Quantum physics a Can you explain the particulate nature (photon model) of electromagnetic radiation? b Can you define a photon as a quantum of energy of electromagnetic radiation? c Can you describe and calculate the energy of a photon using E = h f and? h c E λ d Can you define the electronvolt (ev) as a unit of energy? e i Can you use LEDs and the equation Planck constant h? h c ev to estimate the value of the λ e ii Can you determine the Planck constant using different coloured LEDs? a i Can you explain the photoelectric effect, including a simple experiment to demonstrate this effect? a ii Can you demonstrate the photoelectric effect using, for example, a gold-leaf electroscope and zinc plate? b Can you describe the one-to-one interaction between a photon and a surface electron? c Can you explain Einstein s photoelectric equation h f = ɸ + KE max? d Can you define work function and threshold frequency? 24

25 4.5.2 e Can you explain the idea that the maximum kinetic energy of the photoelectrons is independent of the intensity of the incident radiation? f Can you explain the idea that a rate of emission of photoelectrons above the threshold frequency is directly proportional to the intensity of the incident radiation? a Can you explain electron diffraction, including experimental evidence of this effect? b Can you describe diffraction of electrons travelling through a thin slice of polycrystalline graphite? c Can you use the de Broglie equation h λ? p 25

26 Module Thermal physics a Can you describe thermal equilibrium? b Can you explain the absolute scale of temperature? c Can you state temperature measurements in degrees Celsius and kelvin? d Can you calculate T(K) θ( C) + 273? a Can you describe solids, liquids, and gases in terms of spacing, ordering, and motion of atoms or molecules? b Can you describe the simple kinetic model? c Can you explain Brownian motion? d Can you explain internal energy as the sum of kinetic and potential energies in a system? e Can you describe absolute zero (0 K)? f Can you explain increase in internal energy with temperature? g Can you describe changes in internal energy during changes of phase? g Can you explain constancy of temperature during changes of phase? a Can you calculate the specific heat capacity of a substance E = mcδθ? 26

27 5.1.3 b i Can you describe an electrical experiment to determine the specific heat capacity of a metal or a liquid? c Can you calculate specific latent heat of fusion and specific latent heat of vaporisation; E = ml? d i Can you describe an electrical experiment to determine the specific latent heat of fusion and vaporisation? 27

28 Module 5.1 (Part 2) - Ideal gases a Can you understand an amount of substance, measured in moles? a Can you explain the Avogadro constant, N A? b Can you describe the model of the kinetic theory of gases and its assumptions? c Can you describe pressure in terms of the model of the kinetic theory of gases? d i Can you calculate the equation of state of an ideal gas pv = nrt, where n is the number of moles? d ii Can you understand techniques and procedures used to investigate pv = constant (Boyle s law) and P T = constant? d iii Can you calculate an estimation of absolute zero using variation of gas temperature with pressure? e 1 2 Can you explain the equation pv Nmn relating the number of 3 particles and the mean square speed? f Can you understand root mean square speed and mean square speed? g R Can you understand the Boltzmann constant, k? N A h Can you calculate pv NkT, mc kt?

29 5.1.4 i Can you describe the internal energy of an ideal gas? 29

30 Module Circular motion a Can you describe the radian as a measure of angle? b Can you explain the period and frequency of an object in circular motion? c Can you understand angular velocity ω, ω = 2 T, or ω = 2πf? a Can you calculate a constant net force perpendicular to the velocity of an object, which causes it to travel in a circular path? b Can you describe constant speed in a circle, v = rω? c Can you understand centripetal acceleration, a = 2 v r and a = ω 2 r? d i d ii 2 mv Can you explain centripetal force, F and F = mω 2 r? r Can you describe techniques and procedures used to investigate circular motion? 30

31 Module Oscillations a Can you describe displacement, amplitude, period, frequency, angular frequency, and phase difference? b Can you calculate angular frequency ω = 2π/T or ω = 2πf? f Can you understand isochronous oscillators (the period of a simple harmonic oscillator is independent of its amplitude)? c i Can you calculate simple harmonic motion, a = ω 2 x? c ii Can you describe techniques and procedures used to determine the period and frequency of simple harmonic oscillations? d Can you calculate solutions to the equation a = ω 2 x? e Can you calculate velocity v = ±ω 2 2 A x, hence v max = ωa? g Can you explain graphical methods to relate the changes in displacement, velocity, and acceleration during simple harmonic motion? a Can you describe the interchange between kinetic and potential energy during simple harmonic motion? b Can you describe energy displacement graphs for a simple harmonic oscillator? b i Can you explain the effects of damping on an oscillatory system? a Can you define free and forced oscillations? c Can you explain natural frequency and resonance? 31

32 5.3.3 b ii Can you describe observing forced and damped oscillations for a range of systems? d Can you describe amplitude-driving frequency graphs for forced oscillators? e Can you explain practical examples of forced oscillations and resonance? 32

33 Module Capacitance a Can you explain capacitance, C = Q V? a Can you define the unit farad? b Can you describe charging and discharging of capacitors in terms of the flow of electrons? c Can you demonstrate the total capacitance of capacitors in series, 1 1 1? C C C d Can you demonstrate the total capacitance of capacitors in parallel, C = C 1 + C 2 +? e i Can you describe an analysis of circuits containing capacitors? e ii Can you understand an investigation of circuits containing capacitors? a Can you understand p.d. charge graphs for capacitors? b Can you describe how energy is stored by capacitors? b Can you demonstrate that W = QV = 1Q 1 2 C 2 V2 C? c Can you describe the use of capacitors to store energy? a i Can you describe discharging a capacitor through a resistor? 33

34 6.1.3 a ii Can you investigate the charge and the discharge of a capacitor? b Can you explain the time constant CR of a capacitor resistor circuit? c t CR Can you demonstrate x = x 0 e and x = x 0 (1 resistor circuits? t CR e ) for capacitor d Can you demonstrate the modelling of the equation discharging capacitor? Q Q for a t CR e Can you explain exponential decay and the constant-ratio property of decay graphs? 34

35 Module Electric fields a Can you explain electric fields being due to charges? b Can you understand a uniformly charged sphere modelled as a point charge at its centre? c Can you describe using electric field lines to map electric fields? d Can you demonstrate that electric field strength is E = F Q? a Qq Can you demonstrate Coulomb s law, F = 2 4 r two point charges? 0, for the force between b Q Can you calculate electric field strength, E = 2 4 r 0, for a point charge? c Can you describe the similarities and differences between the gravitational field of a point mass and the electric field of a point charge? a Can you calculate uniform electric field strength, E = V d? b 0 Can you explain parallel-plate capacitor and permittivity: C = A, d A C =, ε =? r 0 d c Can you describe the motion of charged particles in a uniform electric field? 35

36 6.2.4 a Can you describe electric potential as the work done in bringing a unit charge from infinity to a point? b Can you calculate electric potential, V = Q? 4 r c Can you calculate capacitance, C = 4πε 0R, for an isolated sphere? d Can you demonstrate force distance graphs for point or spherical charges? e Can you calculate electric potential energy, E = Vq = Qq? 4 r 0 36

37 Module Magnetic fields a Can you explain moving charges or permanent magnets as causes of magnetic fields? b Can you demonstrate using magnetic field lines to map magnetic fields? c Can you describe magnetic field patterns for a long straight currentcarrying conductor, a flat coil, and a long solenoid? d Can you define Fleming s left-hand rule? e i Can you calculate the force on a current-carrying conductor, F = BIL sinθ? e ii Can you describe the techniques and procedures used to determine the uniform magnetic flux density between the poles of a magnet using a current-carrying wire and digital balance? f Can you define magnetic flux density and the unit tesla? a Can you calculate the force on a charged particle travelling at right angles to a uniform magnetic field, F = BQv? b Can you describe the movement of charged particles in a uniform magnetic field? c Can you describe the movement of charged particles moving in a region occupied by both electric and magnetic fields? c Can you define velocity selector? a Can you explain magnetic flux ϕ, the unit weber and ϕ = BAcosθ? 37

38 6.3.3 b Can you define magnetic flux linkage? c Can you describe Faraday s law of electromagnetic induction? c Can you define Lenz s law? d Can you demonstrate that e.m.f. = rate of change of magnetic flux N linkage, ε =, and explain techniques and procedures used to t investigate magnetic flux using search coils? e Can you describe a simple a.c. generator? f i Can you describe a simple laminated, iron-cored transformer? f i Can you explain n n s p V = s V p I = s I p for an ideal transformer? f ii Can you explain the techniques and procedures used to investigate transformers? 38

St Olave s Grammar School. AS Physics Mock Revision Checklist

St Olave s Grammar School. AS Physics Mock Revision Checklist St Olave s Grammar School Mock Practical skills.. a Can you design experiments, including ones to solve problems set in a practical context?.. b Can you identify the variables that must be controlled in

More information

St Olave s Grammar School Physics AS Level and Year 12 End of Year Examination Revision Checklist 2018

St Olave s Grammar School Physics AS Level and Year 12 End of Year Examination Revision Checklist 2018 St Olave s Grammar School Physics AS Level and Year 12 End of Year Examination 2018 In addition to this revision checklist, Kerboodle Study Guides can be accessed by following this link: https://www.kerboodle.com/app/courses/16816/modules/course%20guides/node/12847/page/1/content/100528,

More information

Knowledge Organiser Year 12 Semester 1: Measurements and Movement

Knowledge Organiser Year 12 Semester 1: Measurements and Movement Knowledge Organiser Year 12 Semester 1: Measurements and Movement 1.1 Practical Skills (assessed in the written exam) Show understanding of experimental design, including to solve problems set in a practical

More information

OCR Physics Specification A - H156/H556

OCR Physics Specification A - H156/H556 OCR Physics Specification A - H156/H556 Module 3: Forces and Motion You should be able to demonstrate and show your understanding of: 3.1 Motion Displacement, instantaneous speed, average speed, velocity

More information

St Olave s Grammar School. Physics A Level. Revision Checklist 2017

St Olave s Grammar School. Physics A Level. Revision Checklist 2017 St Olave s Grammar School 2017 Study Guides In addition to this revision checklist, Kerboodle Study Guides can be accessed by following the links below. Content Covered In Year 12: https://www.kerboodle.com/app/courses/16816/modules/course%20guides/node/12847/page/1/conten

More information

AS PHYSICS. Electricity Homework Questions. moulsham high school

AS PHYSICS. Electricity Homework Questions. moulsham high school moulsham high school AS PHYSCS Electricity Homework Questions Work with other memebrs of the group to complete at least the first 5 questions using your text books and your knowledge from GCSE. 1.List

More information

Optics Definitions. The apparent movement of one object relative to another due to the motion of the observer is called parallax.

Optics Definitions. The apparent movement of one object relative to another due to the motion of the observer is called parallax. Optics Definitions Reflection is the bouncing of light off an object Laws of Reflection of Light: 1. The incident ray, the normal at the point of incidence and the reflected ray all lie in the same plane.

More information

GCSE to A-level progression

GCSE to A-level progression GCSE to A-level progression AQA A-level Physics should be a natural progression from the GCSE course and there are many familiar topics that are taken a stage further. Some topics, such as electricity,

More information

All physical quantities understood as consisting of a numerical magnitude and unit. International System of Units (SI).

All physical quantities understood as consisting of a numerical magnitude and unit. International System of Units (SI). UNIVERSITY ENTRANCE EXAMINATION PHYSICS SYLLABUS 1. PHYSICAL QUANTITIES AND UNITS All physical quantities understood as consisting of a numerical magnitude and unit. International System of Units (SI).

More information

Topic Student Checklist R A G

Topic Student Checklist R A G Personalised Learning Checklist AQA TRILOGY Physics (8464) from 2016 Topics T6.1. Energy Topic Student Checklist R A G 6.1.1 Energy changes in a system, and the ways energy is stored before and after such

More information

Dynamics inertia, mass, force. Including centripetal acceleration

Dynamics inertia, mass, force. Including centripetal acceleration For the Singapore Junior Physics Olympiad, no question set will require the use of calculus. However, solutions of questions involving calculus are acceptable. 1. Mechanics Kinematics position, displacement,

More information

GLOSSARY OF PHYSICS TERMS. v-u t. a =

GLOSSARY OF PHYSICS TERMS. v-u t. a = GLOSSARY OF PHYSICS TERMS Scalar: A quantity that has magnitude only. Vector: A quantity that has magnitude and direction. Speed is the distance travelled per unit time. OR the rate of change of distance.

More information

Circular Motion & Oscillations

Circular Motion & Oscillations A Physics Revision Page 1 of 8 Circular Motion & Oscillations Angular speed, ω = Δθ = πf (assuming angle is a complete revolution, in radians) Δt mv Centripetal Force, F = r Simple Harmonic Motion is a

More information

DEFINITIONS. Linear Motion. Conservation of Momentum. Vectors and Scalars. Circular Motion. Newton s Laws of Motion

DEFINITIONS. Linear Motion. Conservation of Momentum. Vectors and Scalars. Circular Motion. Newton s Laws of Motion DEFINITIONS Linear Motion Mass: The mass of a body is the amount of matter in it. Displacement: The displacement of a body from a point is its distance from a point in a given direction. Velocity: The

More information

Paper Reference. Thursday 16 June 2005 Morning Time: 1 hour 20 minutes

Paper Reference. Thursday 16 June 2005 Morning Time: 1 hour 20 minutes Centre No. Candidate No. Paper Reference(s) 6734/01 Edexcel GCE Physics Advanced Level Unit Test PHY4 Thursday 16 June 005 Morning Time: 1 hour 0 minutes Materials required for examination Nil Paper Reference

More information

Personalised Learning Checklists AQA Physics Paper 2

Personalised Learning Checklists AQA Physics Paper 2 6.5.1 Forces and their interactions 6.5.2 Work done and energy transfer AQA TRILOGY Physics (8464) from 2016 Topics T6.5. Forces Topic Student Checklist R A G Identify and describe scalar quantities and

More information

Unit assessments are composed of multiple choice and free response questions from AP exams.

Unit assessments are composed of multiple choice and free response questions from AP exams. AP Physics B Text: Serway, Raymond A., and Jerry S. Faugh, College Physics, 7 th ed. Belmont, CA: Thomson Brooks/Cole, 2006. Course evaluation: - Grade determination Final Exam 15% Unit Exams 42.5% Daily

More information

S/N PHYSICS 5059 SCIENCE (PHYSICS) 5076 / 5077

S/N PHYSICS 5059 SCIENCE (PHYSICS) 5076 / 5077 1 PHYSICAL QUANTITIES Understand that all physical quantities consist of a numerical magnitude and a unit 2 SI UNITS Recall the base quantities and their units: o Mass (kg) o Length (m) o Time (s) o Current

More information

Physics GCSE (9-1) Energy

Physics GCSE (9-1) Energy Topic Student Checklist R A G Define a system as an object or group of objects and State examples of changes in the way energy is stored in a system Describe how all the energy changes involved in an energy

More information

AQA Physics Checklist

AQA Physics Checklist Topic 1. Energy Video: Energy changes in a system To understand the ways in which energy can be stored in a system and can be transferred from one energy store to another within a system To understand

More information

Subject Area Competencies and Skills (22nd Edition)

Subject Area Competencies and Skills (22nd Edition) Science Education (Physics) Program Requirements Physics 6-12 "C" below indicates where content is covered through coursework 1. Knowledge of the nature of scientific investigation and instruction in physics

More information

Edexcel Physics Checklist

Edexcel Physics Checklist Topic 1. Key concepts of physics Video: Key concepts of Physics Know the units which will be used throughout the GCSE physics course Remember and use metric prefixes (from nano to giga) Understand and

More information

CHAPTER 1: PHYSICAL QUANTITIES AMD MEASUREMENT

CHAPTER 1: PHYSICAL QUANTITIES AMD MEASUREMENT CHAPTER 1: PHYSICAL UANTITIES AMD MEASUREMENT 11 Physical uantities and Units a) State basic quantities and their respective SI units: length (m), time (s), mass (kg), electrical current (A), temperature

More information

HASTINGS HIGH SCHOOL

HASTINGS HIGH SCHOOL Subject HASTINGS HIGH SCHOOL YEAR 11 EXAMINATION GUIDE 20167-19 COMBINED SCIENCE TRILOGY Physics Course code AQA GCSE COMBINED SCIENCE TRILOGY 8464 Website address Provisional examination dates http://www.aqa.org.uk/subjects/science/gcse/combined-science-trilogy-

More information

11 SEPTEMBER This document consists of printed pages.

11 SEPTEMBER This document consists of printed pages. S 11 SEPTEMBER 2017 6 Write your name, centre number, index number and class in the spaces at the top of this page and on all work you hand in. Write in dark blue or black pen on both sides of the paper.

More information

Paper Reference. Thursday 14 June 2007 Morning Time: 1 hour 20 minutes

Paper Reference. Thursday 14 June 2007 Morning Time: 1 hour 20 minutes Centre No. Candidate No. Paper Reference(s) 6734/01 Edexcel GCE Physics Advanced Level Unit Test PHY 4 Thursday 14 June 007 Morning Time: 1 hour 0 minutes Materials required for examination Nil Paper Reference

More information

Learner Guide for Cambridge AS and A Level Physics

Learner Guide for Cambridge AS and A Level Physics Learner Guide for Cambridge AS and A Level Physics How to use this guide The guide describes what you need to know about your GCE Advanced Subsidiary (AS) and Advanced level Physics examination. It will

More information

A. Kinematics (including vectors, vector algebra, components of vectors, coordinate systems, displacement, velocity, and acceleration)

A. Kinematics (including vectors, vector algebra, components of vectors, coordinate systems, displacement, velocity, and acceleration) I. Newtonian Mechanics A. Kinematics (including vectors, vector algebra, components of vectors, coordinate systems, displacement, velocity, and acceleration) 1. Motion in one dimension a) Students should

More information

Physics Assessment Unit A2 2

Physics Assessment Unit A2 2 Centre Number 71 Candidate Number ADVANCED General Certificate of Education 2014 Physics Assessment Unit A2 2 assessing Fields and their Applications AY221 [AY221] MONDAY 9 JUNE, MORNING TIME 1 hour 30

More information

Switching to OCR from Pearson (Edexcel)

Switching to OCR from Pearson (Edexcel) Switching to OCR from Pearson (Edexcel) The content within the OCR Physics A specification covers the Big Ideas of physics and will be very familiar. We ve laid it out in a logical progression to support

More information

Knowledge of basic math concepts is expected (conversions, units, trigonometry, vectors, etc.)

Knowledge of basic math concepts is expected (conversions, units, trigonometry, vectors, etc.) Topics for the Final Exam Knowledge of basic math concepts is expected (conversions, units, trigonometry, vectors, etc.) Chapter 2. displacement, velocity, acceleration motion in one dimension with constant

More information

Physics 9e/Cutnell. correlated to the. College Board AP Physics 2 Course Objectives

Physics 9e/Cutnell. correlated to the. College Board AP Physics 2 Course Objectives correlated to the College Board AP Physics 2 Course Objectives Big Idea 1: Objects and systems have properties such as mass and charge. Systems may have internal structure. Enduring Understanding 1.A:

More information

College Physics 10th edition

College Physics 10th edition College Physics 10th edition Raymond A. Serway and Chris Vuille Publisher: Cengage Learning Table of Contents PHY101 covers chapters 1-8 PHY102 covers chapters 9-25 Chapter 1: Introduction 1.1: Standards

More information

UNIVERSITY OF MALTA G.F. ABELA JUNIOR COLLEGE

UNIVERSITY OF MALTA G.F. ABELA JUNIOR COLLEGE UNIVERSITY OF MALTA G.F. ABELA JUNIOR COLLEGE FIRST YEAR END-OF-YEAR TEST SUBJECT: PHYSICS DATE: Tuesday 9 th June 015 LEVEL: ADVANCED TIME: 09.00h to 1.00h Directions to Candidates Show ALL working. Write

More information

AP Goal 1. Physics knowledge

AP Goal 1. Physics knowledge Physics 2 AP-B This course s curriculum is aligned with College Board s Advanced Placement Program (AP) Physics B Course Description, which supports and encourages the following broad instructional goals:

More information

An ion follows a circular path in a uniform magnetic field. Which single change decreases the radius of the path?

An ion follows a circular path in a uniform magnetic field. Which single change decreases the radius of the path? T5-1 [237 marks] 1. A circuit is formed by connecting a resistor between the terminals of a battery of electromotive force (emf) 6 V. The battery has internal resistance. Which statement is correct when

More information

PHYSICS. Course Structure. Unit Topics Marks. Physical World and Measurement. 1 Physical World. 2 Units and Measurements.

PHYSICS. Course Structure. Unit Topics Marks. Physical World and Measurement. 1 Physical World. 2 Units and Measurements. PHYSICS Course Structure Unit Topics Marks I Physical World and Measurement 1 Physical World 2 Units and Measurements II Kinematics 3 Motion in a Straight Line 23 4 Motion in a Plane III Laws of Motion

More information

TS EAMCET 2016 SYLLABUS ENGINEERING STREAM

TS EAMCET 2016 SYLLABUS ENGINEERING STREAM TS EAMCET 2016 SYLLABUS ENGINEERING STREAM Subject PHYSICS 1) PHYSICAL WORLD: What is physics?, Scope and excitement of Physics, Physics, technology and society, Fundamental forces in nature, Gravitational

More information

Oxford Cambridge and RSA. Cambridge TECHNICALS LEVEL 3 ENGINEERING MAPPING GUIDE TO A LEVELS IN PHYSICS. Version 1. ocr.org.

Oxford Cambridge and RSA. Cambridge TECHNICALS LEVEL 3 ENGINEERING MAPPING GUIDE TO A LEVELS IN PHYSICS. Version 1. ocr.org. Oxford Cambridge and RSA Cambridge TECHNICALS LEVEL 3 ENGINEERING GUIDE TO A LEVELS IN PHYSICS Version 1 ocr.org.uk/engineering CONTENTS Introduction 3 Module 1 Development of practical skills in physics

More information

Personalised Learning Checklists AQA Physics Paper 2

Personalised Learning Checklists AQA Physics Paper 2 4.5.1 Forces and their interactions 4.5.2 Work done and energy transfer AQA Physics (8463) from 2016 Topics P4.5. Forces Topic Student Checklist R A G Identify and describe scalar quantities and vector

More information

4. Find the average velocities and average accelerations of a particle moving in 1-D given its position at various times.

4. Find the average velocities and average accelerations of a particle moving in 1-D given its position at various times. PHYSICS 201: TEST 1 STUDY SHEET 1. Convert a quantity from one set of units to another set of units. 2. Convert a 2-D vector from rectangular form (components) to polar form (magnitude and angle), or from

More information

1 P a g e h t t p s : / / w w w. c i e n o t e s. c o m / Physics (A-level)

1 P a g e h t t p s : / / w w w. c i e n o t e s. c o m / Physics (A-level) 1 P a g e h t t p s : / / w w w. c i e n o t e s. c o m / Physics (A-level) Electromagnetic induction (Chapter 23): For a straight wire, the induced current or e.m.f. depends on: The magnitude of the magnetic

More information

TEACHER CERTIFICATION STUDY GUIDE

TEACHER CERTIFICATION STUDY GUIDE Table of Contents Pg. Domain I. Mechanics Vectors (properties; addition and subtraction)... 129H1 Vector multiplication (dot and cross product)... 130H3 Motion along a straight line (displacement, velocity,

More information

Study Guide for Physics 1100 Final Exam

Study Guide for Physics 1100 Final Exam Study Guide for Physics 1100 Final Exam Dr. Fazzini s Physics 1100 Final Exam will take place on Wednesday, May 16 th, 2018 from 9:00AM-10:50AM in Room BIC-3535. Click on the Detailed Class Information

More information

SUGGESTED LESSON PLANS FOR PHY 097 SEMESTER NOV10 Text Book : PHYSICS FOR SCIENTISTS & ENGINEERS WITH MODERN PHYSICS BY GIANCOLI, FOURTH EDITION

SUGGESTED LESSON PLANS FOR PHY 097 SEMESTER NOV10 Text Book : PHYSICS FOR SCIENTISTS & ENGINEERS WITH MODERN PHYSICS BY GIANCOLI, FOURTH EDITION SUGGESTED LESSON PLANS FOR PHY 097 SEMESTER NOV0 Text Book : PHYSICS FOR SCIENTISTS & ENGINEERS WITH MODERN PHYSICS BY GIANCOLI, FOURTH EDITION Week Topics Section Page Hrs Sub-Topics WAVES AND OPTICS,.0

More information

Centerville Senior High School Curriculum Mapping Physics, 1 st Nine Weeks Damon Anderson

Centerville Senior High School Curriculum Mapping Physics, 1 st Nine Weeks Damon Anderson Centerville Senior High School Curriculum Mapping Physics, 1 st Nine Weeks Damon Anderson 2/1 P.1.1 What is the difference between speed and Finding gravity lab Displacement, velocity? velocity 2/2 P.1.1

More information

NANYANG TECHNOLOGICAL UNIVERSITY ENTRANCE EXAMINATION SYLLABUS FOR INTERNATIONAL STUDENTS PHYSICS

NANYANG TECHNOLOGICAL UNIVERSITY ENTRANCE EXAMINATION SYLLABUS FOR INTERNATIONAL STUDENTS PHYSICS NANYANG TECHNOLOGICAL UNIVERSITY ENTRANCE EXAMINATION SYLLABUS FOR INTERNATIONAL STUDENTS PHYSICS STRUCTURE OF EXAMINATION PAPER 1. There will be one -hour paper consisting of two sections: Section A Section

More information

UNIVERSITY OF CAMBRIDGE INTERNATIONAL EXAMINATIONS General Certificate of Education Advanced Level

UNIVERSITY OF CAMBRIDGE INTERNATIONAL EXAMINATIONS General Certificate of Education Advanced Level www.xtremepapers.com UNIVERSITY OF CAMBRIDGE INTERNATIONAL EXAMINATIONS General Certificate of Education Advanced Level *9061759643* PHYSICS 9702/41 Paper 4 A2 Structured Questions October/November 2012

More information

PHYSICS A Electrons and Photons. OXFORD CAMBRIDGE AND RSA EXAMINATIONS Advanced Subsidiary GCE

PHYSICS A Electrons and Photons. OXFORD CAMBRIDGE AND RSA EXAMINATIONS Advanced Subsidiary GCE OXFORD CAMBRIDGE AND RSA EXAMINATIONS Advanced Subsidiary GCE PHYSICS A 2822 Electrons and Photons Wednesday 12 JANUARY 25 Morning 1 hour Candidates answer on the question paper. Additional materials:

More information

Syllabus. Cambridge International A & AS Level Physics Syllabus code 9702 For examination in June and November 2011

Syllabus. Cambridge International A & AS Level Physics Syllabus code 9702 For examination in June and November 2011 Syllabus Cambridge International A & AS Level Physics Syllabus code 9702 For examination in June and November 2011 Note for Exams Officers: Before making Final Entries, please check availability of the

More information

Page 1 of 9. Curriculum Map: Physics/Lab Course: Physics Sub-topic: Physics. Unit: Language of Physics Timeline: 2 Weeks Unit Description:

Page 1 of 9. Curriculum Map: Physics/Lab Course: Physics Sub-topic: Physics. Unit: Language of Physics Timeline: 2 Weeks Unit Description: Curriculum Map: Physics/Lab Course: Physics Sub-topic: Physics Grade(s): 10 to 12 Course Course Textbooks, Workbooks, Materials Citations: Through theory and laboratory practices, the student will learn

More information

IM Syllabus (2020): Physics ): Physics IM SYLLABUS (2020) PHYSICS IM 26 SYLLABUS

IM Syllabus (2020): Physics ): Physics IM SYLLABUS (2020) PHYSICS IM 26 SYLLABUS PHYSICS IM 6 IM SYLLABUS (00) SYLLABUS 1 Physics IM 6 (Available in September ) Syllabus 1 Paper (3hrs) Aims of the Intermediate Level Physics Curriculum A course of study intended to prepare students

More information

A Level Physics G484 PHYSICS DEPARTMENT. Assessment. Assessed with a 1 hour 15 minute, 60 mark paper where all questions are answered.

A Level Physics G484 PHYSICS DEPARTMENT. Assessment. Assessed with a 1 hour 15 minute, 60 mark paper where all questions are answered. A Level Physics G484 Assessment Assessed with a 1 hour 15 minute, 60 mark paper where all questions are answered. Useful Data Gravitational constant, G 6.67 x 10-11 N m 2 kg -2 Avogadro constant, N A 6.02

More information

D.A.V. PUBLIC SCHOOL, UPPAL S SOUTHEND, SECTOR 49, GURUGRAM CLASS XI (PHYSICS) Academic plan for

D.A.V. PUBLIC SCHOOL, UPPAL S SOUTHEND, SECTOR 49, GURUGRAM CLASS XI (PHYSICS) Academic plan for D.A.V. PUBLIC SCHOOL, UPPAL S SOUTHEND, SECTOR 49, GURUGRAM CLASS XI (PHYSICS) Academic plan for 2017-2018 UNIT NAME OF UNIT WEIGHTAGE 1. 2. 3. Physical World and Measurement Kinemetics Laws of Motion

More information

Write your class, index number and name in the spaces at the top of this page. For Examiner s Use

Write your class, index number and name in the spaces at the top of this page. For Examiner s Use 1 DUNMAN HIGH SCHOOL Preliminary Examinations Year 6 Higher 1 CANDIDATE NAME CLASS INDEX NUMBER PHYSICS Paper 2 Structured Questions Candidates answer on the Question Paper. No Additional Materials are

More information

5. ELECTRIC CURRENTS

5. ELECTRIC CURRENTS 5. ELECTRIC CURRENTS TOPIC OUTLINE Section Recommended Time Giancoli Section 5.1 Potential Difference, Current, Resistance 5.2 Electric Circuits 3h 19.1, 19.2 6.2 Electric Field and Force 6.3 Magnetic

More information

Syllabus Cambridge International A & AS Level Physics Syllabus code 9702 For examination in June and November 2013

Syllabus Cambridge International A & AS Level Physics Syllabus code 9702 For examination in June and November 2013 www.xtremepapers.com Syllabus Cambridge International A & AS Level Physics Syllabus code 9702 For examination in June and November 2013 Contents Cambridge International A & AS Level Physics Syllabus code

More information

St Olave s Physics Department. Year 11 Mock Revision Checklist

St Olave s Physics Department. Year 11 Mock Revision Checklist St Olave s Physics Department Year 11 Mock Revision Checklist The following checklists include all the topics that will be included in the Year 11 Mock exam. Students should use the tickboxes to check

More information

Units (Different systems of units, SI units, fundamental and derived units)

Units (Different systems of units, SI units, fundamental and derived units) Physics: Units & Measurement: Units (Different systems of units, SI units, fundamental and derived units) Dimensional Analysis Precision and significant figures Fundamental measurements in Physics (Vernier

More information

SUBJECT & PEDAGOGICAL CONTENT STANDARDS FOR PHYSICS TEACHERS (GRADES 9-10)

SUBJECT & PEDAGOGICAL CONTENT STANDARDS FOR PHYSICS TEACHERS (GRADES 9-10) SUBJECT & PEDAGOGICAL CONTENT STANDARDS FOR PHYSICS TEACHERS (GRADES 9-10) JULY 2014 2 P a g e 1) Standard 1: Content Knowledge for Grade 9-10 Physics Teacher Understands Models and Scales G9-10PS1.E1.1)

More information

Subject: PHYSICS Level: ADVANCED Time: 3 hrs

Subject: PHYSICS Level: ADVANCED Time: 3 hrs SIR MICHELANGELO REFALO CENTRE FOR FURTHER STUDIES VICTORIA GOZO Annual Exam 2013 Subject: PHYSICS Level: ADVANCED Time: 3 hrs Take the acceleration due to gravity g = 10m/s 2 Section A Answer all questions

More information

AP Physics C Mechanics Objectives

AP Physics C Mechanics Objectives AP Physics C Mechanics Objectives I. KINEMATICS A. Motion in One Dimension 1. The relationships among position, velocity and acceleration a. Given a graph of position vs. time, identify or sketch a graph

More information

Chapter Topic Subtopic

Chapter Topic Subtopic Specification of the test on Physics for Unified National Testing and Complex Testing (Approved for use in the Unified National Testing and Complex Testing from 2018) The document was developed in accordance

More information

In which vector triangle does the vector Z show the magnitude and direction of vector X Y?

In which vector triangle does the vector Z show the magnitude and direction of vector X Y? 1 1 Which of the following pairs of units are both SI base units? ampere, degree celsius ampere, kelvin coulomb, degree celsius coulomb, kelvin 2 The diagram shows two vectors and Y. Y In which vector

More information

CHINO VALLEY UNIFIED SCHOOL DISTRICT INSTRUCTIONAL GUIDE PHYSICS B ADVANCED PLACEMENT

CHINO VALLEY UNIFIED SCHOOL DISTRICT INSTRUCTIONAL GUIDE PHYSICS B ADVANCED PLACEMENT CHINO VALLEY UNIFIED SCHOOL DISTRICT INSTRUCTIONAL GUIDE PHYSICS B ADVANCED PLACEMENT Course Number 5422 Department Science Suggested guidelines Minimum requirements C or better in Chemistry Concurrently

More information

Year 10 End of Year Examination Revision Checklist

Year 10 End of Year Examination Revision Checklist St Olave s Physics Department Year 10 of Year Examination Revision Checklist The following checklists include all the topics that will be included in the Year 10 of Year exam. Students should use the tickboxes

More information

GCSE PHYSICS REVISION LIST

GCSE PHYSICS REVISION LIST GCSE PHYSICS REVISION LIST OCR Gateway Physics (J249) from 2016 Topic P1: Matter P1.1 Describe how and why the atomic model has changed over time Describe the structure of the atom and discuss the charges

More information

Physical Quantities and Units

Physical Quantities and Units PhysicsndMathsTutor.com 1 Which of the following pairs of units are both SI base units? 9702/1/M/J/02 ampere, degree celsius ampere, kelvin coulomb, degree celsius coulomb, kelvin 2 The diagram shows two

More information

September. Text: Physics: Principles & Problems, Merrill-Glencoe NYS STANDARD/KEY IDEA/PERFORMANCE INDICATOR

September. Text: Physics: Principles & Problems, Merrill-Glencoe NYS STANDARD/KEY IDEA/PERFORMANCE INDICATOR September Unit Units and Scientific Notation SI System of Units Unit Conversion Scientific Notation Significant Figures Graphical Analysis Unit Kinematics Scalar vs. vector Displacement/distance Velocity/speed

More information

CAMI - Science. CAPS - Physics Links Grade 10

CAMI - Science. CAPS - Physics Links Grade 10 CAMI - Science CAPS - Physics Links Grade 10 TERM 1 TOPICS CONTENT, CONCEPTS & SKILLS CAMI - KEYSTROKES Transverse pulses on a string or spring Pulse, amplitude Define a pulse Define a transverse pulse

More information

Physics Curriculum Pacing Guide MONTGOMERY COUNTY PUBLIC SCHOOLS

Physics Curriculum Pacing Guide MONTGOMERY COUNTY PUBLIC SCHOOLS MONTGOMERY COUNTY PUBLIC SCHOOLS Physics Curriculum Pacing Guide 1 st 9 Weeks SOL Objectives Vocabulary 2 Days INTRODUCTION: PH.1 The student will plan and conduct investigations using experimental design

More information

DIVIDED SYLLABUS ( ) - CLASS XI PHYSICS (CODE 042) COURSE STRUCTURE APRIL

DIVIDED SYLLABUS ( ) - CLASS XI PHYSICS (CODE 042) COURSE STRUCTURE APRIL DIVIDED SYLLABUS (2015-16 ) - CLASS XI PHYSICS (CODE 042) COURSE STRUCTURE APRIL Unit I: Physical World and Measurement Physics Need for measurement: Units of measurement; systems of units; SI units, fundamental

More information

Switching to OCR from AQA

Switching to OCR from AQA Switching to OCR from AQA The content within the OCR Physics A specification covers the Big Ideas of physics and will be very familiar. We ve laid it out in a logical progression to support co-teaching

More information

PHYSICS CURRICULUM. Unit 1: Measurement and Mathematics

PHYSICS CURRICULUM. Unit 1: Measurement and Mathematics Chariho Regional School District - Science Curriculum September, 2016 PHYSICS CURRICULUM Unit 1: Measurement and Mathematics OVERVIEW Summary Mathematics is an essential tool of physics. This unit will

More information

Chapter 1: Electrostatics

Chapter 1: Electrostatics 1.1 Coulomb s law a) State Coulomb s law, Chapter 1: Electrostatics b) Sketch the electric force diagram and apply Coulomb s law for a system of point charges. 1.2 Electric field a) Define and use electric

More information

Table of Information and Equation Tables for AP Physics Exams

Table of Information and Equation Tables for AP Physics Exams Table of Information and Equation Tables for AP Physics Exams The accompanying Table of Information and Equation Tables will be provided to students when they take the AP Physics Exams. Therefore, students

More information

Personalised Learning Checklists AQA Physics Paper 2

Personalised Learning Checklists AQA Physics Paper 2 4.5.1 Forces and their interactions 4.5.2 Work done and energy AQA Physics (8463) from 2016 Topics P4.5. Forces Topic Student Checklist R A G Identify and describe scalar quantities and vector quantities

More information

NYS STANDARD/KEY IDEA/PERFORMANCE INDICATOR 5.1 a-e. 5.1a Measured quantities can be classified as either vector or scalar.

NYS STANDARD/KEY IDEA/PERFORMANCE INDICATOR 5.1 a-e. 5.1a Measured quantities can be classified as either vector or scalar. INDICATOR 5.1 a-e September Unit 1 Units and Scientific Notation SI System of Units Unit Conversion Scientific Notation Significant Figures Graphical Analysis Unit Kinematics Scalar vs. vector Displacement/dis

More information

Miami-Dade Community College PHY 2053 College Physics I

Miami-Dade Community College PHY 2053 College Physics I Miami-Dade Community College PHY 2053 College Physics I PHY 2053 3 credits Course Description PHY 2053, College physics I, is the first semester of a two semester physics-without-calculus sequence. This

More information

ELECTRIC FORCE, FIELD AND POTENTIAL

ELECTRIC FORCE, FIELD AND POTENTIAL AP PHYSICS 2 LEARNING OBJECTIVES AND TOPICS ELECTRIC FORCE, FIELD AND POTENTIAL Static Electricity; Electric Charge and its Conservation Insulators and Conductors Charging Processes: Friction, Conduction

More information

Science Curriculum Matrix

Science Curriculum Matrix Science Curriculum Matrix Physics Version 1.0 beta June 2, 2008 This curriculum (core matrix) document will eventually become part of the Science Curriculum Matrix. We envision the Science Curriculum Matrix

More information

ZIMBABWE SCHOOL EXAMINATIONS COUNCIL (ZIMSEC)

ZIMBABWE SCHOOL EXAMINATIONS COUNCIL (ZIMSEC) ZIMBABWE SCHOOL EXAMINATIONS COUNCIL (ZIMSEC) ADVANCED LEVEL SYLLABUS PHYSICS 9188 EXAMINATION SYLLABUS FOR 2013-2016 AIMS These are not listed in order of priority. The aims of a course based on this

More information

Problem Solver Skill 5. Defines multiple or complex problems and brainstorms a variety of solutions

Problem Solver Skill 5. Defines multiple or complex problems and brainstorms a variety of solutions Motion and Forces Broad Concept: Newton s laws of motion and gravitation describe and predict the motion of most objects. LS 1.1 Compare and contrast vector quantities (such as, displacement, velocity,

More information

2. What are the 4 steps of the Scientific Method as described by Mr. Martin?

2. What are the 4 steps of the Scientific Method as described by Mr. Martin? Ch.1 Study Guide Outline Study the Review that is posted on the website. Make a note card to use for the test. 1. What is science and physics? 2. What are the 4 steps of the Scientific Method as described

More information

Unified School District of De Pere Physics Benchmarks

Unified School District of De Pere Physics Benchmarks Content Standards: A. Students will understand that among the science disciplines, there are unifying themes: systems, order, organization, and interactions; evidence, models, and explanations; constancy,

More information

THIS IS A NEW SPECIFICATION

THIS IS A NEW SPECIFICATION THIS IS A NEW SPECIFICATION ADVANCED SUBSIDIARY GCE PHYSICS A Electrons, Waves and Photons G482 * OCE / T 67602* Candidates answer on the question paper OCR Supplied Materials: Data, Formulae & Relationships

More information

Coimisiún na Scrúduithe Stáit State Examinations Commission

Coimisiún na Scrúduithe Stáit State Examinations Commission M 36 Coimisiún na Scrúduithe Stáit State Examinations Commission LEAVING CERTIFICATE EXAMINATION, 2005 PHYSICS HIGHER LEVEL MONDAY, 20 JUNE MORNING 9.30 to 12.30 Answer three questions from section A and

More information

Physics Higher level Paper 1

Physics Higher level Paper 1 Physics Higher level Paper 1 Tuesday 31 October 17 (afternoon) 1 hour Instructions to candidates Do not open this examination paper until instructed to do so. Answer all the questions. For each question,

More information

ELECTRICITY AND MAGNETISM, A. C. THEORY AND ELECTRONICS, ATOMIC AND NUCLEAR PHYSICS

ELECTRICITY AND MAGNETISM, A. C. THEORY AND ELECTRONICS, ATOMIC AND NUCLEAR PHYSICS UNIT 2: ELECTRICITY AND MAGNETISM, A. C. THEORY AND ELECTRONICS, ATOMIC AND NUCLEAR PHYSICS MODULE 1: ELECTRICITY AND MAGNETISM GENERAL OBJECTIVES On completion of this Module, students should: 1. understand

More information

Final Exam Concept Map

Final Exam Concept Map Final Exam Concept Map Rule of thumb to study for any comprehensive final exam - start with what you know - look at the quiz problems. If you did not do well on the quizzes, you should certainly learn

More information

Class XI Physics Syllabus One Paper Three Hours Max Marks: 70

Class XI Physics Syllabus One Paper Three Hours Max Marks: 70 Class XI Physics Syllabus 2013 One Paper Three Hours Max Marks: 70 Class XI Weightage Unit I Physical World & Measurement 03 Unit II Kinematics 10 Unit III Laws of Motion 10 Unit IV Work, Energy & Power

More information

Thursday 9 June 2016 Afternoon Time allowed: 1 hour 30 minutes

Thursday 9 June 2016 Afternoon Time allowed: 1 hour 30 minutes Oxford Cambridge and RSA AS Level Physics A H156/02 Depth in physics Thursday 9 June 2016 Afternoon Time allowed: 1 hour 30 minutes *5955033310* You must have: the Data, Formulae and Relationships Booklet

More information

Spec Content Before Revision After 1st Revision After 2nd Revision

Spec Content Before Revision After 1st Revision After 2nd Revision Use the expression p = mv. Investigate and apply the principle of conservation of linear momentum to problems in one dimension. Investigate and relate net force to rate of change of momentum in situations

More information

16 19 Study Guide. Pocket physics. a handy guide for bright stars

16 19 Study Guide. Pocket physics. a handy guide for bright stars 6 9 Study Guide Pocket physics a handy guide for bright stars Miscellaneous Ideal gases Pressure (P) pascal (Pa) : Pa = newton per square metre. P = 3 t c where ρ is the density of the gas and _ c² _ is

More information

16 19 Study Guide. Pocket physics. a handy guide for bright stars

16 19 Study Guide. Pocket physics. a handy guide for bright stars 6 9 Study Guide Pocket physics a handy guide for bright stars Miscellaneous Ideal gases Pressure (P) pascal (Pa) : Pa = newton per square metre. P = 3 t c where ρ is the density of the gas and _ c² _ is

More information

AS Unit G481: Mechanics

AS Unit G481: Mechanics Definitions: define scalar and vector quantities and give Scalar: Magnitude without direction examples; Examples: Length, area, volume, distance, speed, mass, density, pressure, temperature, energy, work,

More information

Unit G484: The Newtonian World

Unit G484: The Newtonian World Define linear momentum (and appreciate the vector nature of momentum) net force on a body impulse of a force a perfectly elastic collision an inelastic collision the radian gravitational field strength

More information

AS PHYSICS TERMS, DEFINITIONS & UNITS

AS PHYSICS TERMS, DEFINITIONS & UNITS AS PHYSICS TERMS, DEFINITIONS & UNITS May 2015 This document is issued by WJEC Eduqas to assist teachers with the preparation of candidates for the GCE examination in PHYSICS. It consists of the definitions

More information

UNIT & DIMENSIONS AND MEASUREMENT STRAIGHT LINES

UNIT & DIMENSIONS AND MEASUREMENT STRAIGHT LINES UNIT & DIMENSIONS AND MEASUREMENT STRAIGHT LINES PHYSICAL QUANTITIES The quantities which can be measured by an instrument and by means of which we can describe the laws of physics are called physical

More information

Selected "Phacts" for the Physics Regents Exam You Should Know

Selected Phacts for the Physics Regents Exam You Should Know Selected "Phacts" for the Physics Regents Exam You Should Know I. Mechanics Study Hard! 1. Mass and inertia are the same thing. (Mass actually measures inertia in kilograms Much as monetary resources measures

More information