IB Physics SL Tool 1 — Experimental Techniques Paper 1, 2 & IA The right tool for the job ~8 min read

Measuring Variables

Good data starts with the right instrument, read the right way. Reach for a ruler when you need a micrometer, or squint at an analogue scale from the wrong angle, and your results are compromised before you’ve even started. This page pairs each quantity with the tool that measures it — and shows how to read each one precisely.

📘 What you need to know

Matching the Instrument to the Variable

The first skill is simply picking the right tool. Here’s the core set for IB physics, with the units and typical precision you’d quote.

VariableInstrumentTypical unitNote
MassDigital balancekg (or g)Tare (zero) before weighing; usually 2 d.p.
TimeStopwatch / stop-clocksLimited by human reaction time for short intervals
LengthRuler / tape / micrometerm (mm, cm)Ruler reads to the nearest mm; micrometer for tiny lengths
VolumeMeasuring cylinderml (cm³)1 ml = 1 cm³; read the bottom of the meniscus
TemperatureThermometer / digital probe°CProbe reads to ±0.1 °C, more precise than liquid type
ForceForce meter (spring balance)NRead at eye level to avoid parallax
CurrentAmmeterA (mA, µA)Connected in series
Potential differenceVoltmeterV (mV)Connected in parallel
AngleProtractordegrees±0.5°; align the baseline, read at eye level
A ruler and a micrometer both measure length — but you’d never measure the diameter of a wire with a ruler. Always ask “what’s the smallest thing I need to resolve?” and pick the instrument whose precision matches. That single decision is often worth a mark on its own.

Reading a Ruler

A ruler measures small distances to the nearest millimetre. The trick is to line the object up against the scale carefully and read at eye level. Note that the object below runs from 0 to the 9 cm mark, giving a length of 9.0 cm.

0 1 2 3 4 5 6 7 8 9 10 length = 9.0 cm (read to the nearest mm)
Line the object up with zero and read the far end against the scale — a ruler resolves to the nearest millimetre.

Analogue vs Digital Instruments

Many instruments — ammeters, voltmeters, force meters — come in two styles. Knowing the trade-offs lets you pick well and read carefully.

AnalogueDigital
DisplayNeedle moving over a scaleNumerical readout
ReadingYou judge the needle’s positionGives a specific value directly
PrecisionLower; limited by the scaleHigher; can show mV, µA, etc.
Main pitfallsParallax and zero errorsReadout may flicker between values

On an analogue scale, your line of sight matters. Reading from an angle makes the needle appear to line up with the wrong mark — that’s parallax error. Always read from directly in front, perpendicular to the scale.

0 5 10 A correct: read straight on wrong angle: parallax error
Reading an analogue scale from the side shifts the apparent needle position — always view perpendicular to the scale.

Current and Potential Difference

Two electrical instruments trip students up constantly, and it comes down to how they’re connected. An ammeter measures current (charge per unit time), so it goes in series — the current has to flow through it. A voltmeter measures the potential difference between two points, so it goes in parallel across the component.

cell lamp A in series V voltmeter in parallel
The ammeter sits in the main loop (series); the voltmeter branches off across the lamp (parallel).
ammeter
→ measures current →
in SERIES
 ••• 
voltmeter
→ measures p.d. →
in PARALLEL
Quick recap: pick the instrument whose precision fits the task; read to the scale’s smallest division; avoid zero and parallax errors; ammeter goes in series, voltmeter in parallel.
WE 1

A student needs to measure the diameter of a thin copper wire and the time for a pendulum to complete 10 swings. State the most appropriate instrument for each, and give one reason for your choice.

Diameter of a thin wire use a micrometer (not a ruler) the diameter is well under a millimetre, so a ruler isn’t precise enough → a micrometer resolves much smaller lengths Time for 10 swings use a stopwatch, and time 10 swings rather than 1 dividing by 10 reduces the effect of human reaction time → a stopwatch, timing many swings for better accuracy
WE 2

A student sets up a circuit to find the current through a lamp and the potential difference across it. (a) State how the ammeter and voltmeter should each be connected. (b) The analogue ammeter reads slightly above zero with no current flowing. Name this error and state how to correct for it.

Part (a) — connections ammeter in series with the lamp (so the current flows through it) voltmeter in parallel across the lamp (to read the p.d. across it) → series for current, parallel for p.d. Part (b) — the error this is a zero error note the reading with no current, then subtract it from every measurement → zero error, corrected by subtracting the offset

💡 Top tips

⚠ Common mistakes

That wraps up Tool 1: Experimental Techniques. You can now think through the safety, ethics and environmental side of a practical, and choose and read the right instrument for every variable — exactly the practical judgement your Internal Assessment is marked on.

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