Ross 128 is a red dwarf star 11 light-years away in the constellation Virgo. It hosts Ross 128 b, an Earth-sized planet in the habitable zone that receives similar radiation to Earth.
Ross 128 is 11.01 light-years from Earth. That is about 104 trillion km (64.7 trillion miles), or 696,300 astronomical units.
| Unit | Distance |
|---|---|
| Light-years | 11.01 |
| Kilometers | 104,000,000,000,000 km |
| Miles | 64,700,000,000,000 miles |
| Astronomical units (AU) | 696,000 astronomical units |
| Parsecs | 3.38 |
Light from Ross 128 takes 11.01 years to reach Earth, so the light you see tonight left Ross 128 11.01 years ago.
Voyager 1, the fastest object humans have sent into deep space, travels at about 17 km/s. It would need about 194,200 years to cover this distance.
Notable For: Hosts Ross 128 b, a nearby potentially habitable exoplanet
At light speed, it would take 11 years to reach Ross 128. At 1g constant acceleration with deceleration, a traveler would experience about 6.8 years.
Ross 128 b is a promising candidate for habitability. It's Earth-sized, in the habitable zone, and Ross 128 is a relatively quiet star, reducing harmful radiation exposure.
Ross 128 is 11.01 light-years from Earth, which is about 104 trillion km or 64.7 trillion miles. Light from Ross 128 takes 11.01 years to reach us.
Ross 128 is 11.01 light-years from Earth. One light-year is about 9.46 trillion km, the distance light travels in one year. In parsecs, Ross 128 is about 3.38 parsecs away.
This time dilation calculator lets you enter a distance in light-years and acceleration in m/s² to see how time dilation affects your journey. It shows differences between traveler and observer times, maximum velocity, energy requirements, Doppler shift, Lorentz factor, and how distances vary between reference frames. Charts appear after you calculate.
Time dilation is an effect from Einstein's theory of special relativity. The faster you move, the slower time passes for you compared to someone standing still. At 90% of light speed, time passes about 2.3 times slower for the traveler than for someone on Earth.
The Time Dilation Formula is:
Where:
t' = time measured by the observer (on Earth)
t = time experienced by the traveler
v = velocity of the traveler
c = speed of light (299,792,458 meters per second)