Measurements In Physics

Apprends en jouant

Réponds à ces questions pour gagner de l'énergie, puis pêche et explore. Sans compte.

Pour les enseignants : diapos de leçon, notes de révision prêts à l'emploi pour Measurements In Physics (Physics, HL) — utilise-les en cours, ou lance le thème en activité de classe interactive que tes apprenants jouent en direct.

Notes de leçon

SI Base Units

  • All physical quantities can be reduced to seven base units known as the SI Base Units.
  • The seven SI base quantities and their units are: mass (kilogram, kg), length (metre, m), time (second, s), current (ampere, A), temperature (kelvin, K), amount of substance (mole, mol), and luminous intensity (candela, cd).
  • The candela is the seventh base unit, measuring luminous intensity, but it is not covered in IB Physics.
  • The SI system is officially used in almost every country around the world.

Derived Units

  • Derived units are formed from combinations of the seven SI base units.
  • To deduce the base units of a derived quantity, use the defining equation for that quantity.
  • The newton (N), the unit of force, is defined by Force = mass × acceleration, so N = kg m s⁻².
  • The joule (J), the unit of energy, is defined by Energy = ½ × mass × velocity², so J = kg m² s⁻².
  • The pascal (Pa), the unit of pressure, is defined by Pressure = force ÷ area, so Pa = kg m⁻¹ s⁻².

Scientific Notation and Orders of Magnitude

  • Scientific notation expresses numbers as a digit before the decimal point multiplied by a power of 10, e.g., 4.6 × 10⁶.
  • The order of magnitude of a number is the nearest power of 10; if the digit is 5 or more, round up to the next power of 10.
  • A quantity is an order of magnitude larger than another if it is about ten times larger; two orders of magnitude means 100 times larger.
  • Orders of magnitude help compare very large or very small quantities, such as the diameter of the Milky Way (≈10²¹ m) or the length of a bacteria cell (≈10⁻⁶ m).
  • Estimation involves obtaining approximate values, often to the nearest order of magnitude.

Metric Multipliers

  • Metric multipliers are prefixes that change the size of a unit by powers of 10.
  • Common prefixes include: peta (P, 10¹⁵), tera (T, 10¹²), giga (G, 10⁹), mega (M, 10⁶), kilo (k, 10³), centi (c, 10⁻²), milli (m, 10⁻³), micro (μ, 10⁻⁶), nano (n, 10⁻⁹), pico (p, 10⁻¹²), femto (f, 10⁻¹⁵).
  • Prefixes are represented by single-letter symbols placed before the unit, e.g., cm for centimetres or GW for gigawatts.
  • You are expected to know common metric multipliers for exams.

Significant Figures

  • Significant figures are the digits that accurately represent a quantity and indicate its precision.
  • Rule 1: In an integer, all digits count as significant if the last digit is non-zero (e.g., 702 has 3 s.f.).
  • Rule 2: Zeros at the end of an integer do not count as significant (e.g., 705,000 has 3 s.f.).
  • Rule 3: Zeros in front of an integer do not count as significant (e.g., 0.002309 has 4 s.f.).
  • Rule 4: Zeros at the end of a number less than zero count as significant, but those in front do not (e.g., 0.0020300 has 5 s.f.).
  • Rule 5: Zeros after a decimal point are significant (e.g., 70.0 has 3 s.f.).
  • When combining numbers, the result should be given to the smallest number of significant figures in the calculation.

Dimensional Analysis

  • Dimensional analysis checks the homogeneity of physical equations using SI base units.
  • The units on both sides of an equation must be the same.
  • To check homogeneity, compare the units on each side; if they do not match, the equation is incorrect.

Measurement Techniques and Instruments

  • Common instruments include: metre rules (length), thermometers (temperature), measuring cylinders (volume), balances (mass), Newtonmeters (force), protractors (angles), stopwatches (time), ammeters (current), voltmeters (potential difference), sound meters (sound intensity), and light meters (light intensity).
  • More precise instruments like the micrometer screw gauge and Vernier calipers measure thicknesses, diameters, and lengths to a greater accuracy.
  • The resolution of an instrument is the smallest change in a quantity that produces a change in reading.
  • A higher resolution means smaller changes can be detected; for example, a digital thermometer (0.1°C) has higher resolution than a mercury thermometer (1°C).
  • Typical resolutions: metre rule 1 mm, Vernier calipers 0.01 mm, micrometer 0.001 mm, top-pan balance 0.01 g, protractor 1°, stopwatch 0.01 s, thermometer 1°C, voltmeter 1 mV–0.1 V, ammeter 1 mA–0.1 A.

Controlling Variables and Calibration

  • For a valid experiment, all variables that may affect the outcome must be controlled.
  • The independent variable is the only variable changed; the dependent variable is measured; controlled variables are kept constant.
  • A fair test is one in which only the independent variable affects the dependent variable.
  • Calibration compares a known measurement with the instrument's reading to check accuracy and avoid zero error.
  • Calibration curves convert measurements from one scale to another, useful when instrument output is not proportional to the measured value (e.g., thermocouple e.m.f. vs temperature).

Reducing Unwanted Energy Transfers

  • Heat loss/gain by conduction can be reduced using insulators with low thermal conductivity.
  • The effectiveness of an insulator depends on its thermal conductivity (lower is better), density (lower is better), and thickness (thicker is better).
  • Friction in mechanical systems causes unwanted heating; it can be reduced by adding bearings and lubricating parts.
  • Electrical resistance causes unwanted heating; it can be reduced by using lower-resistance components and reducing current.

Background Radiation

  • Background radiation comes from natural and artificial sources and varies with location.
  • When measuring radiation from a source, measure the background count first with a Geiger-Muller tube away from sources.
  • Subtract the background count from each reading to obtain the count rate from the source only.
  • To verify the inverse square law for gamma radiation, plot 1/√C against distance x; a straight line through the origin confirms the relationship.

Diapos

Sign up free to view the lesson slides

Step through every slide for this topic — plus flashcards and revision notes — with a free account.

Questions d'entraînement

Aperçu gratuit — 8 sur 62 questions. Inscris-toi pour toutes les voir.
  1. 1.Which of the following is NOT one of the seven SI base units?

    Easy
    • ANewton
    • BKilogram
    • CAmpere
    • DKelvin
  2. 2.The unit of force, the newton (N), expressed in SI base units is:

    Easy
    • Akg m s⁻²
    • Bkg m² s⁻²
    • Ckg m s⁻¹
    • Dkg m² s⁻³
  3. 3.Which of the following are SI base quantities? (select all that apply)

    Medium
    • AMass
    • BForce
    • CTime
    • DEnergy
    • ETemperature
  4. 4.The order of magnitude of 6 × 10⁸ is 10⁹.

    Easy

    True or false?

  5. 5.Match each physical quantity with its SI base unit.

    Medium
    • Mass
    • Length
    • Time
    • Current
    • Temperature
    • Kilogram
    • Metre
    • Second
    • Ampere
    • Kelvin
  6. 6.Arrange the following metric multipliers in order from smallest to largest.

    Medium
    • milli
    • centi
    • deci
    • deca
    • kilo
  7. 7.The order of magnitude of 3 × 10⁸ is 10⁸.

    Easy

    True or false?

  8. 8.A student measures the background radiation count in a laboratory and obtains the following readings: 12, 14, 13, 11, 15 counts per minute. What is the mean background count rate?

    Medium
    • A13 counts/min
    • B12 counts/min
    • C14 counts/min
    • D15 counts/min

Unlock all 62 questions, flashcards & more

Crée un compte gratuit pour voir toutes les questions, les diapos, les cartes mémo et les notes de révision de ce thème.

Annales

Les annales d'entraînement pour ce thème arrivent bientôt.
Bientôt disponible