Measurements In Physics
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SI Base Units
- There are seven SI Base Units from which all other units are derived.
- The seven 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 measures luminous intensity and is not covered in IB Physics.
- These units make up the system of measurement officially used in almost every country.
Derived Units
- Derived units are formed from combinations of the seven SI base units.
- 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.
Orders of Magnitude
- An order of magnitude is the nearest power of 10 to a value.
- If a number is greater than 5, round up to the next order of magnitude (e.g., 6 × 10⁸ has order of magnitude 10⁹).
- 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 make it easier to compare the relative sizes of objects.
- For example, a quantity with order of magnitude 10⁶ is 10 000 times larger than one with order of magnitude 10².
Approximation and Estimation
- To estimate is to obtain an approximate value.
- For very large or small quantities, using orders of magnitude to estimate calculations is valid.
- Estimation is typically done to the nearest order of magnitude.
- Examples of approximate lengths: distance to edge of observable Universe ~10²⁶ m, distance from Earth to Neptune ~10¹² m, length of a human ~10⁰ m, length of an ant ~10⁻³ m, length of a bacteria cell ~10⁻⁶ m.
Scientific Notation and Significant Figures
- Scientific notation expresses numbers as a × 10ⁿ, where 1 ≤ a < 10 and n is an integer.
- The power n is positive for large numbers and negative for small numbers.
- Significant figures are the digits that accurately represent a quantity and indicate its precision.
- Rules for significant figures: all non-zero digits are significant; zeros at the end of an integer without a decimal point are not significant; zeros in front of a number are not significant; zeros at the end of a number less than zero after a decimal point are significant; zeros after a decimal point are significant.
- In calculations, the final answer should be given to the smallest number of significant figures in the data.
Metric Multipliers
- Metric multipliers are prefixes that change the size of a quantity.
- Common prefixes: peta (P, 10¹⁵), tera (T, 10¹²), giga (G, 10⁹), mega (M, 10⁶), kilo (k, 10³), hecto (h, 10²), deca (da, 10¹), deci (d, 10⁻¹), 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 a single letter symbol placed in front of the unit (e.g., cm, GW).
- You are expected to know metric multipliers for exams.
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: determine the units on both sides and see if they are equal.
- If units do not match, the equation is incorrect and needs adjustment.
Measurement Techniques and Instruments
- Common instruments: 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), light meters (light intensity).
- More precise instruments: micrometer screw gauge and Vernier calipers for thickness, diameter, and length.
- Resolution is the smallest change in a physical quantity that produces a change in the instrument's reading.
- A smaller measurable change means greater resolution (e.g., digital thermometer 0.1°C vs 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.
- Key practical skills: calibration, keeping environmental conditions constant, insulation, reducing friction, reducing electrical resistance, accounting for background radiation.
- Calibration compares a known measurement with the instrument's measurement to check accuracy and avoid zero error.
- Calibration curves convert measurements from one scale to another, useful when output is not proportional to the measured value (e.g., thermocouple, thermistor).
- Variables: independent (changed), dependent (measured), controlled (kept constant).
- A fair test allows only the independent variable to affect the dependent variable.
Reducing Unwanted Energy Transfers and Background Radiation
- To reduce heat loss by conduction, use materials with low thermal conductivity (insulators).
- Effectiveness of an insulator depends on thermal conductivity (lower is better), density (lower is better), and thickness (thicker is better).
- Friction in mechanical systems causes unwanted heating; reduce by adding bearings and lubricating parts.
- Electrical resistance causes unwanted heating; reduce by using lower resistance components and reducing current.
- Background radiation must be accounted for: measure background count with Geiger-Muller tube away from sources, then subtract from each reading.
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Übungsfragen
Gratis-Vorschau — 8 von 64 Fragen. Registriere dich, um alle zu sehen.
1.How many SI base units are there?
Easy- A5
- B6
- C7
- D9
2.Which of the following is NOT an SI base quantity?
Easy- AMass
- BForce
- CTemperature
- DAmount of substance
3.What is the pascal (Pa) expressed in SI base units?
Medium- Akg m s⁻²
- Bkg m² s⁻²
- Ckg m⁻¹ s⁻²
- Dkg m² s⁻³
4.Express 4,600,000 in scientific notation.
Medium- A4.6 × 10⁵
- B4.6 × 10⁶
- C46 × 10⁵
- D4.6 × 10⁷
5.What is the order of magnitude of the number 6 × 10⁸?
Medium- A10⁷
- B10⁸
- C10⁹
- D10¹⁰
6.How many significant figures are in the number 0.0020300?
Medium- A3
- B4
- C5
- D7
7.Which of the following are SI base units? (Select all that apply.)
Medium- Akilogram
- Bnewton
- Csecond
- Djoule
- Eampere
8.Which of the following are metric multipliers? (Select all that apply.)
Medium- Akilo
- Bmega
- Cmetre
- Dcenti
- Esecond
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