What is the speed of sound at 80 °F?

    Find the speed of sound in air at any temperature, in water, steel and 14 other materials, then turn a lightning-to-thunder delay into miles or a distance into seconds.

    The calculator below is set to find the speed of sound in dry air at 80 °F, with the unit °F already chosen. It converts the temperature to kelvin and applies v = 331.3 × √(T / 273.15 K), the ideal-gas form of the speed of sound in air, then gives the answer in ft/s, mph, m/s and km/h with the time sound needs for one mile and one kilometer.

    Temperature is the only weather variable that matters much. At a fixed temperature, air pressure has no effect, because pressure and density change together and cancel. Humidity makes sound slightly faster, by about 0.1 % to 0.6 %, and the calculator uses dry air, so on a humid day the true figure is a touch higher.

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    Speed, distance or travel time

    What the sound travels through

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    How fast sound moves through air, water, steel and a dozen other materials

    At 68 °F sound needs 4.69 s to cover a mile of dry air, and the same mile of steel takes 0.27 s. The calculator has three jobs: the speed of sound in a chosen material, the distance to something you saw before you heard it, and the time a sound needs to reach you from a known distance. Four gases follow the temperature you type; the liquids and solids use measured reference values.

    Quick start. Saw lightning and counted to 6 before the thunder? Pick "Distance from a delay", choose dry air, type the temperature outside (say 77 °F) and 6 seconds. The storm is 6,814 ft away, which is 1.29 mi, and a small table shows how far off the usual counting rule would have been.

    What each box on the form is for

    1. What to calculate - the speed itself, a distance from a delay you timed, or the time a sound needs to cover a distance.
    2. Material - four gases, fresh water, seawater, eleven solids, or your own value. Solids are listed for a large block, the way ultrasonic testing measures them.
    3. Temperature and its unit - only for air, helium, hydrogen and carbon dioxide. In a gas the speed follows the square root of the absolute temperature, so a cold morning and a hot afternoon give different answers.
    4. Your speed and its unit - only for "Your material", in m/s, ft/s, km/h or mph.
    5. Delay in seconds - for distance mode: the gap between seeing the flash, the puff of smoke or the hammer strike and hearing it.
    6. Distance and its unit - for time mode, in feet, miles, meters or kilometers.
    7. Read the result - the answer in both unit systems, the speed in mph and km/h, seconds per mile and per kilometer, and a note on where the reference value comes from.

    Type a temperature in °F or a distance in feet or miles and the result leads with feet, miles and ft/s; metric input brings metric units to the front. Both are always shown.

    Nine sounds timed with the calculator

    Every result below came out of the calculator itself, with the inputs listed so you can repeat them.

    Example 1: a thunderstorm on a warm evening

    Situation: Distance from a delay, dry air at 77 °F, delay 6 s

    Result: 6,814 ft, or 1.29 mi, at 1,135.59 ft/s.

    Dividing 6 by 5 gives 1.20 mi, which is 7.0% short.

    Example 2: fireworks a mile away

    Situation: Time for a distance, dry air at 50 °F, 1 mi

    Result: the bang arrives 4.77 s after the burst, at 1,106.66 ft/s.

    On a 68 °F night the same mile takes 4.69 s, so the season moves the delay by less than a tenth of a second.

    Example 3: the crack of the bat from the outfield seats

    Situation: Time for a distance, dry air at 86 °F, 400 ft

    Result: 0.35 s. You see the swing, then hear it a third of a second later.

    Example 4: a balloon full of helium

    Situation: Speed of sound, helium at 68 °F

    Result: 3,307.06 ft/s (1,007.99 m/s), 2.94 times the speed in air at the same temperature.

    Hydrogen at 68 °F is faster still, 1,304.52 m/s. Carbon dioxide goes the other way at 267.28 m/s.

    Example 5: an ear on the rail

    Situation: Time for a distance, steel, 1 mi

    Result: 0.27 s through the steel, against 4.69 s through air at 68 °F.

    A real rail carries a slower wave than a large block does, so treat 0.27 s as the lower bound. Please do not test this on a track in use.

    Example 6: a diver and a boat engine

    Situation: Time for a distance, seawater, 1 mi

    Result: 1.07 s at 4,921.26 ft/s.

    Through air at 68 °F the same mile takes 4.69 s, so sound in the water is 4.37 times faster.

    Example 7: a January morning

    Situation: Speed of sound, dry air at -4 °F

    Result: 1,046.39 ft/s, so a mile takes 5.05 s.

    Here the "5 seconds a mile" habit is almost exact.

    Example 8: Mach 1 at airliner cruising height

    Situation: Speed of sound, dry air at -57 °C, the temperature near 11 km

    Result: 294.71 m/s, 1,061.0 km/h or 659.3 mph.

    Close to the 295 m/s usually quoted for that height. At sea level on a 68 °F day Mach 1 is 767.7 mph.

    Example 9: checking a round number from a worksheet

    Situation: Your material, 1,125 ft/s

    Result: 342.90 m/s, 767.0 mph, 4.69 s per mile.

    That lines up with dry air at roughly 68 °F, which is 1,126.03 ft/s in this calculator.

    Speed of sound in dry air from -40 °F to 104 °F

    Temperature is the only weather variable that matters much. The table uses v = 331.3 × √(T / 273.15 K), the same formula as the calculator, with T in kelvin. The last two columns are what you would use to turn a counted delay into a distance by hand.

    Air temperature m/s ft/s Seconds per mile Seconds per km
    -40 °F (-40 °C)306.081,004.215.263.27
    -4 °F (-20 °C)318.941,046.395.053.14
    32 °F (0 °C)331.301,086.944.863.02
    50 °F (10 °C)337.311,106.664.772.96
    68 °F (20 °C)343.211,126.034.692.91
    86 °F (30 °C)349.021,145.084.612.87
    104 °F (40 °C)354.731,163.814.542.82

    Seventeen materials, from the fastest to the slowest

    Solids come from Engineering ToolBox measurements of longitudinal waves in bulk samples, water and air from the Wikipedia article on the speed of sound. Gases are shown at 68 °F; in the calculator they follow whatever temperature you enter.

    Material m/s ft/s Seconds per mile
    Aluminum, rolled6,42021,062.990.25
    Granite5,95019,521.000.27
    Steel, 1% carbon5,94019,488.190.27
    Stainless steel5,79018,996.060.28
    Glass, Pyrex5,64018,503.940.29
    Copper, annealed4,76015,616.800.34
    Brass, 70% copper and 30% zinc4,70015,419.950.34
    Hardwood, along the grain3,96012,992.130.41
    Concrete3,70012,139.110.43
    Lead, annealed2,1607,086.610.75
    Neoprene rubber1,6005,249.341.01
    Seawater, typical1,5004,921.261.07
    Fresh water, 68 °F1,4814,858.921.09
    Hydrogen, 68 °F1,304.524,279.911.23
    Helium, 68 °F1,007.993,307.061.60
    Dry air, 68 °F343.211,126.034.69
    Carbon dioxide, 68 °F267.28876.906.02

    Lead sits far below steel even though it is denser, and rubber below lead. Speed depends on how stiff a material is against how much mass has to move, and a dense but soft metal loses on both counts.

    Thunder, helium and altitude: short answers

    How accurate is counting seconds between lightning and thunder?
    Good to within a few percent in cool air and worse when it is hot. At 32 °F a 10 s delay means 2.06 mi, and the divide-by-5 rule says 2.00 mi, 2.8% short; the divide-by-3 rule for kilometers is 0.6% over. At 77 °F the miles rule is already 7.0% short. The bigger error is usually the counting itself, since thunder rumbles on and it is hard to say which part came from the nearest point of the bolt.
    Does air pressure or altitude change the speed of sound?
    Pressure on its own does not. In an ideal gas at a fixed temperature, higher pressure raises the density by the same factor and the two effects cancel. Altitude matters only because the air gets colder: near 11 km it is about -57 °C and sound moves at 294.71 m/s, against 343.21 m/s at 68 °F on the ground.
    What about humidity?
    Moist air is slightly faster, because water molecules are lighter than the nitrogen and oxygen they replace. The effect is about 0.1% to 0.6%, roughly 1.5 m/s between completely dry and saturated air at standard conditions. The calculator uses dry air, so on a muggy day the true figure is a touch higher than what it shows.
    Why is sound faster in steel if steel is so much heavier than air?
    Density slows a wave down, but stiffness speeds it up, and steel is stiffer by a far larger factor than it is denser. The result is 5,940 m/s, 17.31 times the speed in air at 68 °F. Rubber is the counterexample: heavier than water, yet only slightly faster, at 1,600 m/s.
    Why does helium make a voice sound high?
    The vocal cords vibrate at about the same rate, so the basic pitch hardly moves. What changes is the throat and mouth: they act as resonators, and in helium at 68 °F sound travels 2.94 times faster, which pushes those resonances up and makes the voice thin and squeaky.
    Should I use 331.3 + 0.606 × T or the square-root formula?
    Near room temperature they agree to a fraction of a meter per second: at 20 °C the straight line gives 343.42 m/s and the square root 343.21 m/s. The line drifts as you move away, and at 100 °C it says 391.90 m/s where the square root gives 387.22 m/s. The calculator uses the square root and prints the straight-line value underneath for comparison.
    Is Mach 1 always 767 mph?
    No. A Mach number is a speed divided by the local speed of sound, so Mach 1 changes with the air temperature. It is 767.7 mph in dry air at 68 °F, 741.1 mph at 32 °F, and 659.3 mph in the cold air near 11 km.

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    Calculator verified by the LiczGrupa.pl team

    Content, formulas and results have been reviewed for accuracy and relevance by our team of specialists.

    Natalia Skrzek

    Reviewed by: Natalia Skrzek