بيرون إيديكلر · International A-Level
الفيزياء
ورقات امتحان، وعينات، ووثائق المناهج لهذا المقرر.
رمز المؤهل: XPH11 / YPH11
أوراق امتحانات سابقة حديثة
78 ازدواجيات ورقة الأسئلة ومخطط التصحيح
تصفح الورقات ومخططات التصحيح →مواد تعليمية، أوراق تمارين وشرائح عرض
تحتفظ المستندات المشتركة بموضوعاتها بأسماء دورتها وموضوعها الأصلي. استخدم مواصفات الهيئة التي اخترتها لتغطية المحتوى، ومستوى الصعوبة ومتطلبات الامتحان.
نشرات · بيرون إيديكلر · International A-Level · Physics (6)
أوراق تمارين · بيرون إيديكلر · International A-Level · Physics (38)
- 1.1 Motion graphs and uniform acceleration (statements 1–3)
- 1.2 Vectors, resolution and projectile motion (statements 4–7)
- 1.3 Forces, Newton's laws and free-body diagrams (statements 8–12, core practical 1)
- 1.4 Momentum and its conservation (statements 13–14)
- 1.5 Moments and equilibrium (statements 15–16)
- 1.6 Work, energy, power and efficiency (statements 17–22)
- 1.7 Fluids: density, upthrust and viscous drag (statements 23–26, core practical 2)
- 1.8 Solid materials: Hooke’s law, stress–strain and strain energy (statements 27–32, core practical 3)
- 2.1 Wave quantities and graphs (statements 33–37)
- 2.2 Superposition and standing waves (statements 38–43, core practicals 4–5)
- 2.3 Intensity, refraction and polarisation (statements 44–49)
- 2.4 Diffraction and pulse-echo (statements 50–56, core practical 6)
- 2.5 Photons, photoelectric effect and spectra (statements 57–63)
- 2.6 Current, resistance and circuits (statements 64–73, core practical 7)
- 2.7 Potential dividers, sensors and e.m.f. (statements 74–80, core practical 8)
- 3.1 Planning valid practical investigations
- 3.2 Measurement, recording and uncertainty
- 3.3 Graphs, processing and justified conclusions
- 4.1 Impulse and two-dimensional collisions (statements 81–86, CP9–10)
- 4.2 Circular motion (statements 87–91)
- 4.3 Electric fields and potential (statements 92–99)
- 4.4 Capacitors and RC circuits (statements 100–104, CP11)
- 4.5 Magnetic forces and induction (statements 105–110)
- 4.6 Nuclear structure, accelerators and tracks (statements 111–117, 120)
- 4.7 Particles, antiparticles and conservation (statements 118–119, 121–124)
- 5.1 Heating, phase change and thermistor calibration (125–128, CP12–13)
- 5.2 Ideal gases and molecular kinetic energy (129–132, CP14)
- 5.3 Binding energy, fission and fusion (133–136)
- 5.4 Radiation, background and decay (137–142, CP15)
- 5.5 Simple harmonic motion, graphs and energy (143–147, 149–150, CP16)
- 5.6 Forced oscillations, resonance and damping (148, 151–153)
- 5.7 Gravitational fields and orbits (154–160)
- 5.8 Stellar radiation, distances and evolution (161–168)
- 5.9 Doppler shifts and cosmology (169–171)
- 6.1 Planning A2 investigations
- 6.2 Implementation and measurement critique
- 6.3 Compounded uncertainties and justified conclusions
- 6.4 Log graphs and linearisation
عروض تقديمية · بيرون إيديكلر · International A-Level · Physics (6)
نشرات · A-Level الفيزياء (25)
- 1. الكميات الفيزيائية والوحدات
- 2. الحركية
- 3. الديناميكا
- 4. القوى والكثافة والضغط
- 5. الشغل والطاقة والقدرة
- 6. تشوه المواد الصلبة
- 7. الموجات
- 8. التراكب
- 9. الكهرباء
- 10. دوائر التيار المستمر
- 11. فيزياء الجسيمات
- 12. الحركة الدائرية
- 13. المجالات الجاذبية
- 14. درجة الحرارة
- 15. الغازات المثالية
- 16. ديناميكا حرارية
- 17. التذبذبات
- 18. المجالات الكهربائية
- 19. السعة
- 20. المجالات المغناطيسية
- 21. التيارات المترددة
- 22. الفيزياء الكمومية
- 23. الفيزياء النووية
- 24. الفيزياء الطبية
- 25. علم الفلك وعلم الكونيات
أوراق تمارين · A-Level الفيزياء (105)
- 1.1 الكميات الفيزيائية
- 1.2 وحدات النظام الدولي
- 1.3 الأخطاء وعدم اليقين
- 1.4 كميات قياسية ومتجهات
- 2.1 معادلات الحركة
- 2.1.1 Describing motion and displacement–time graphs
- 2.1.2 Velocity–time and acceleration–time graphs
- 2.1.3 The equations of uniformly accelerated motion
- 2.1.4 Free fall and measuring g
- 2.1.5 Projectile motion
- 3.1 زخم وقوانين نيوتن للحركة
- 3.1.1 Resultant force, F = ma, weight and third-law pairs
- 3.2 الحركة غير المنتظمة
- 3.3 زخم خطي وحفظه
- 3.3.1 Elastic collisions and momentum in two dimensions
- 4.1 تأثيرات الدوران للقوى
- 4.1.1 Centre of gravity, moments at an angle, non-uniform objects
- 4.2 اتزان القوى
- 4.3 الكثافة والضغط
- 4.3.1 Upthrust, floating and liquids in a U-tube
- 5.1 حفظ الطاقة
- 5.1.1 Efficiency, power and P = Fv
- 5.2 الطاقة الكامنة الجاذبية والطاقة الحركية
- 5.2.1 Potential energy, kinetic energy and energy transfers
- 6.1 الإجهاد والانفعال
- 6.1.1 Stress, strain and the Young modulus
- 6.2 السلوك المرن والبلاستيكي
- 7.1 الموجات الانتشارية
- 7.1.1 Phase difference, the oscilloscope and intensity
- 7.2 موجات مستعرضة وطولية
- 7.3 تأثير دوبلر لموجات الصوت
- 7.4 المطي الكهرومغناطيسي
- 7.5 الاستقطاب
- 8.1 موجات موقوفة
- 8.2 الحيود
- 8.3 التداخل
- 8.4 المحزز diffraction grating
- 9.1 تيار كهربائي
- 9.2 فرق الجهد والقدرة
- 9.3 المقاومة والمقاومية
- 9.3.1 Resistivity, thermistors and LDRs
- 10.1 الدوائر العملية
- 10.1.1 Internal resistance and the V-I graph
- 10.2 قوانين كيرشوف
- 10.2.1 Solving circuits with Kirchhoff's laws
- 10.3 مجزئات الجهد
- 10.3.1 The potentiometer and the null method
- 11.1 الذرات والنواة والإشعاع
- 11.1.1 Decay equations, antiparticles and neutrinos
- 11.1.2 The three radiations and their energies
- 11.2 الجسيمات الأساسية
- 11.2.1 Beta decay at the quark level, and leptons
- 12.1 حركية الحركة الدائرية المنتظمة
- 12.2 التسارع المركزي
- 13.1 المجال الجاذبي
- 13.2 القوة الجاذبية بين كتل نقطية
- 13.3 الحقل الجاذبي لكتلة نقطية
- 13.4 الجهد الجاذبي
- 14.1 التوازن الحراري
- 14.2 مقياس درجات الحرارة
- 14.3 السعة الحرارية النوعية والحرارة الكامنة النوعية
- 15.1 المول
- 15.2 معادلة الحالة
- 15.3 النظرية الحركية للغازات
- 15.3.1 Deriving pV = one third Nm mean-square speed, and what it says about temperature
- 16.1 الطاقة الداخلية
- 16.2 القانون الأول للديناميكا الحرارية
- 17.1 التذبذبات التوافقية البسيطة
- 17.1.1 Proving a system is simple harmonic, and reading phase from a graph
- 17.2 الطاقة في الحركة التوافقية البسيطة
- 17.3 التذبذبات المطفأة والمُجبرة، والرنين
- 18.1 المجالات الكهربائية وخطوط المجال
- 18.2 المجالات الكهربائية المنتظمة
- 18.3 القوة الكهربائية بين الشحنات النقطية
- 18.4 المجال الكهربائي لشحنة نقطية
- 18.5 الجهد الكهربائي
- 19.1 المكثفات والسعة
- 19.2 الطاقة المخزنة في مكثف
- 19.3 تفريغ مكثف
- 20.1 مفهوم المجال المغناطيسي
- 20.2 القوة المؤثرة على موصل يمر به تيار
- 20.3 القوة المؤثرة على شحنة متحركة
- 20.3.1 The Hall effect, the Hall probe and velocity selection
- 20.4 المجالات المغناطيسية الناتجة عن التيارات
- 20.5 الحث الكهرومغناطيسي
- 20.5.1 Induced e.m.f. from a graph: gradients, the rotating coil and Lenz in action
- 21.1 خصائص تيار التردد المتغير
- 21.2 التقويم والتنعيم
- 22.1 الطاقة والزخم للفوتون
- 22.2 التأثير الكهروضوئي
- 22.2.1 Explaining photoelectric emission, and the stopping-potential experiment
- 22.3 ثنائية الموجة والجسيم
- 22.4 مستويات الطاقة في الذرات والأطياف الخطية
- 23.1 فقدان الكتلة وطاقة الربط النووي
- 23.1.1 The binding-energy curve, and the energy bookkeeping of a nuclear reaction
- 23.2 التحلل الإشعاعي
- 23.2.1 Random decay, the exponential law and the log graph
- 24.1 إنتاج الموجات فوق الصوتية واستخدامها
- 24.1.1 Ultrasound scanning: pulse, echo and image
- 24.2 إنتاج الأشعة السينية واستخدامها
- 24.2.1 Intensity against hardness, attenuation through layers, and sharpness against contrast
- 24.3 التصوير بالانبعاث البوزيتروني
- 25.1 الشموع القياسية
- 25.2 أنصاف أقطاب النجوم
- 25.3 قانون هابل ونظرية الانفجار العظيم
عروض تقديمية · A-Level الفيزياء (25)
- 1. الكميات الفيزيائية والوحدات
- 2. الحركية
- 3. الديناميكا
- 4. القوى والكثافة والضغط
- 5. الشغل والطاقة والقدرة
- 6. تشوه المواد الصلبة
- 7. الموجات
- 8. التراكب
- 9. الكهرباء
- 10. دوائر التيار المستمر
- 11. فيزياء الجسيمات
- 12. الحركة الدائرية
- 13. المجالات الجاذبية
- 14. درجة الحرارة
- 15. الغازات المثالية
- 16. ديناميكا حرارية
- 17. التذبذبات
- 18. المجالات الكهربائية
- 19. السعة
- 20. المجالات المغناطيسية
- 21. التيارات المترددة
- 22. الفيزياء الكمومية
- 23. الفيزياء النووية
- 24. الفيزياء الطبية
- 25. علم الفلك وعلم الكونيات
وحدات المقرر وأهداف التعلم
تعلم هذه الدروس أهدافاً محددة من المقرر. تحقق من فجوات التغطية المتبقية؛ المادة ليست برنامج تحضير شامل.
1 · Mechanics and Materials
- Rate of change of displacement.
- The gradient of a displacement-time graph is velocity. The area under a velocity-time graph gives displacement. A constant-acceleration formula is valid only when its assumption is justified.
- Choose a positive direction and state it. Use a light gate or video with a known scale and frame interval for repeatable motion measurements. Avoid assuming hand timing is exact over very short intervals.
- Mass multiplied by velocity.
- Impulse equals momentum change. Increasing stopping time for the same momentum change reduces average force. Identify external forces before applying momentum conservation.
- Draw a free-body diagram containing only forces on the selected object. For spring measurements, add loads in steps within the elastic range and measure extension from the unloaded position.
- Energy transferred per unit time.
- Define the system and useful output before calculating efficiency. Doubling speed quadruples kinetic energy at constant mass. Power describes transfer per time, not total energy.
- Measure a lifting height and load, time the lift, and record electrical input with suitable instruments. Repeat trials and account for heating or friction as transfers, not missing energy.
- velocity
- Rate of change of displacement
- acceleration
- Rate of change of velocity
- momentum
- Mass multiplied by velocity
- resultant force
- The vector sum of forces on an object
- قدرة
- Energy transferred per unit time
- الكفاءة
- Useful output divided by total input
2 · Waves and Electricity
- Distance between successive points in phase.
- At a boundary, frequency stays fixed by the source. A change of speed changes wavelength. Refraction follows from speed differences; angles are measured from the normal.
- Measure several wavelengths and divide to reduce fractional reading uncertainty. Use a ray box with a normal drawn at the boundary. Keep the beam away from eyes and record incident and refracted angles clearly.
- Rate of flow of charge.
- Current is the same through components in series. Potential differences add around the series path. In parallel, branches share the same potential difference, while branch currents sum at a junction.
- Place an ammeter in series and a voltmeter in parallel. For an I-V investigation, change voltage in steps, reverse polarity when appropriate and limit current to reduce heating.
- A quantum of electromagnetic radiation.
- Use photon energy = Planck constant × frequency. Maximum kinetic energy = photon energy - work function. Increasing intensity at fixed frequency increases photon arrival rate, not individual photon energy.
- Read axes carefully on a stopping-potential or kinetic-energy graph. Identify threshold frequency from the zero-energy intercept. State the metal and experimental conditions because work function is material-specific.
- الطول الموجي
- Distance between successive points in phase
- التردد
- Number of oscillations per unit time
- التيار
- Rate of flow of charge
- potential difference
- Energy transferred per unit charge
- photon
- A quantum of electromagnetic radiation
- work function
- Minimum surface energy needed to release an electron
3 · Practical Skills in Physics I
- A quantified limitation on a measured result.
- For a product or quotient, adding fractional uncertainties is a common maximum-uncertainty approximation. For a difference, add absolute uncertainties. A nonzero intercept can reveal an offset or an incomplete model.
- Show units on axes and choose a sensible scale. Plot uncertainty bars where justified, draw a best-fit line rather than joining every point, and estimate steepest and shallowest plausible gradients when the course method calls for them.
- uncertainty
- A quantified limitation on a measured result
- systematic error
- A consistent measurement bias
4 · Further Mechanics, Fields and Particles
- Mass multiplied by velocity.
- Impulse equals momentum change. Increasing stopping time for the same momentum change reduces average force. Identify external forces before applying momentum conservation.
- Draw a free-body diagram containing only forces on the selected object. For spring measurements, add loads in steps within the elastic range and measure extension from the unloaded position.
- Creation of emf by changing flux linkage.
- Changing field strength, coil area, orientation or relative motion can change flux linkage. Lenz law describes an induced effect opposing the change producing it, consistent with energy conservation.
- Use a coil and sensitive meter to compare magnet motion in each direction. Record that a stationary arrangement gives no induced signal. Use approved low-voltage supplies for motor demonstrations.
- A description of gravitational force per unit mass.
- For a point mass or outside a spherical mass, field strength follows an inverse-square distance dependence. Use distance from the centre, not height above the surface alone.
- State the circular-orbit approximation and ignore atmospheric drag only when justified. Draw the force toward the central body and velocity tangential to the orbit. Do not add an outward force merely because the path is circular.
- momentum
- Mass multiplied by velocity
- resultant force
- The vector sum of forces on an object
- induction
- Creation of emf by changing flux linkage
- transformer
- A device transferring energy between coils through changing flux
- gravitational field
- A description of gravitational force per unit mass
- centripetal force
- Net force toward the centre of a curved path
5 · Thermodynamics, Radiation, Oscillations and Cosmology
- Energy per mass per temperature rise.
- Temperature relates to particle motion in a model; internal energy includes kinetic and potential contributions. During a change of state, energy can change particle arrangements rather than temperature.
- Measure mass, electrical input and temperature change for an insulated block. Ensure the temperature sensor has good contact, allow time for equilibration, and consider energy transferred to the surroundings.
- Temperature on the kelvin scale.
- At fixed amount and volume, pressure is proportional to kelvin temperature. At fixed temperature and amount, pressure is inversely proportional to volume. State which quantities are fixed before choosing a relationship.
- Use approved apparatus with a temperature range and pressure limit set by the teacher. Allow thermal equilibrium and record pressure against kelvin temperature. Never heat an improvised sealed vessel.
- Time for activity or undecayed population to halve.
- Subtract background counts measured over the same time interval. Distinguish irradiation from contamination. Shielding, distance and reduced exposure time can reduce risk under a school-controlled procedure.
- Use teacher-managed sources and the school radiation rules. Record count duration and repeat background measurements. Do not extrapolate a half-life from one nucleus or from uncorrected readings.
- A large response to periodic forcing near a natural frequency.
- Velocity is greatest near equilibrium for ideal SHM, while acceleration magnitude is greatest at extreme displacement. Resonance can occur near the natural frequency under periodic driving, with amplitude limited by damping.
- Measure time for several complete oscillations and divide. Define a cycle consistently and use a small displacement when the model requires it. Keep pendulum paths clear and record damping effects rather than assuming perfect motion.
- Total emitted power.
- For isotropic emission without absorption, flux follows an inverse-square relationship with distance. Observed brightness alone therefore cannot establish luminosity.
- Keep distance units consistent, identify which quantities are intrinsic to the star, and distinguish observational evidence from a model of stellar evolution. Do not confuse a red giant stage with every possible final remnant.
- specific heat capacity
- Energy per mass per temperature rise
- الحرارة الكامنة
- Energy associated with a change of state
- absolute temperature
- Temperature on the kelvin scale
- ideal gas
- A gas model with specified simplifying assumptions
- half-life
- Time for activity or undecayed population to halve
- background radiation
- Radiation measured apart from the investigated source
- الرنين
- A large response to periodic forcing near a natural frequency
- damping
- Energy transfer out of an oscillating system
- اللمعان
- Total emitted power
- flux
- Power received per unit area
6 · Practical Skills in Physics II
- A quantified limitation on a measured result.
- For a product or quotient, adding fractional uncertainties is a common maximum-uncertainty approximation. For a difference, add absolute uncertainties. A nonzero intercept can reveal an offset or an incomplete model.
- Show units on axes and choose a sensible scale. Plot uncertainty bars where justified, draw a best-fit line rather than joining every point, and estimate steepest and shallowest plausible gradients when the course method calls for them.
- uncertainty
- A quantified limitation on a measured result
- systematic error
- A consistent measurement bias
الاستعداد لهذا المؤهل
- Six separately assessed units; IAS uses Units 1–3, IAL uses Units 1–6.
- Units 3 and 6 are written practical-skills examinations based on experimental experience; they are not a Cambridge hands-on practical paper.
- Retain core-practical numbering from the acquired specification. Unit weights, marks and times are in the assessment evidence manifest.
- This package uses the 2018 specification, current for these assessments. Pearson announces first teaching of a redeveloped course from September 2027; do not mix its future content into the current Unit 1–6 route.
التغطية التدريس ما زالت مطلوبة
- Full material stress/strain, fluid and mechanical statement coverage remains.
- Full superposition, quantum wave evidence, resistivity/emf and network statements remain.
- All AS core practicals and written graph/design objectives remain.
- Circular motion, electric/magnetic field calculations, capacitors and particle physics remain.
- Full thermodynamic/radiation/stellar objectives remain.
- Full A2 practical design, transformations and uncertainty analysis remain.
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