The circumference of the Earth at the equator is approximately 40,075 kilometers. The speed of sound at sea level is about 343 meters per second. To calculate the time it would take to travel around the equator at that speed, you would divide the circumference by the speed of sound, resulting in roughly 117 hours, or about 4.9 days.
Assuming a speed of 1670 kilometers per hour (the approximate speed at which Earth rotates at the equator), one full turn around the equator would take approximately 24 hours.
No, the speed of a hummingbird's wings is not faster than the speed of sound. The average hummingbird's wing beat is around 70 times per second, which is much slower than the speed of sound at around 343 meters per second in air.
Speed of sound would increase as the temperature of the air increases Speed of sound increases as humidity of air increases Speed of sound is affected by the density of the air. As density increases velocity of sound decreases
The speed of sound in 30w oil can vary depending on factors such as temperature, pressure, and density of the oil. In general, the speed of sound in oil is slower than in air, typically ranging from around 1400 to 1800 meters per second. You would need specific measurements and properties of the 30w oil to calculate an accurate speed of sound value.
No real limit, up to the speed of light. The Apollo astronauts traveled at ABOUT 32 times the speed of sound on their trip to the moon. That is the fastest yet.
Assuming a speed of 1670 kilometers per hour (the approximate speed at which Earth rotates at the equator), one full turn around the equator would take approximately 24 hours.
About a year (without stopping for a rest )
it would take about 1 hour.
No, the speed of a hummingbird's wings is not faster than the speed of sound. The average hummingbird's wing beat is around 70 times per second, which is much slower than the speed of sound at around 343 meters per second in air.
Going along the equator at an altitude of zero, it would take approx 19.9 hours.
The speed of sound is only 768mph.
The speed of sound in air at 30 degrees Celsius is around 354 m/s. To produce a sonic boom, an airplane would have to be traveling at a speed faster than the speed of sound, typically around 1.2 to 1.4 times the speed of sound, depending on various factors such as altitude and aircraft configuration.
It would take approximately 1 year to travel 1 light year at the speed of sound, which is around 767 mph (1,234 km/h). However, it is important to note that the speed of sound is much slower than the speed of light, which travels about 186,282 miles per second (299,792 km/s).
No why would the speed of sound will stay the same
It never would. Sound is vibration through some physical medium; the speed of sound is related to the speed of the vibrations. No physical medium can move at the speed of light, so the speed of sound could never get there.
The wavelength of a sound wave can be calculated using the formula: wavelength = speed of sound / frequency. Assuming the speed of sound in air is around 343 m/s, the wavelength of a sound wave with a frequency of 42 Hz would be approximately 8.17 meters.
The speed of sound at sea level is around 343 m/s. Adding one meter to the elevation would not significantly change the speed of sound, as it is mainly influenced by factors like temperature and humidity, not altitude. So, the speed of sound at sea level plus one meter would still be approximately 343 m/s.