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Baseball Distance Calculator

Enter exit velocity and launch angle to estimate carry distance and hang time, with adjustments for elevation, temperature, and wind.

Exit velo + launch angle Elevation & wind aware Unlimited free use
Reviewed: 

Estimate the distance

Start with exit velocity and launch angle.

โšพ
Estimated carry distance 401 ft

100 mph exit velocity at a 28ยฐ launch angle, sea level, 70ยฐF, no wind.

โฑ๏ธ Hang time 4.9 s
๐Ÿ“ Distance (meters) 122 m
๐Ÿ”๏ธ Elevation + temp effect +0 ft
๐Ÿ’จ Wind effect +0 ft
โ„น๏ธ Educational estimate using a simplified drag model, not a full aerodynamic simulation. Actual distance also depends on backspin, seam orientation, and ball construction, which this calculator can't measure.

Step by step work

Baseball Distance Calculator: 100 mph at 28ยฐ estimates 401 ft carry distance.
Free to use
No signup required
Regularly updated
100% private โ€” no data stored

How to use this calculator

1

Enter exit velocity

The ball's speed off the bat, in miles per hour.

2

Enter launch angle

The angle the ball leaves the bat, in degrees.

3

Adjust conditions

Elevation, temperature, and wind, if known.

4

Review your estimate

Carry distance, hang time, and condition effects.

What drives batted ball distance

Exit velocity and launch angle do the heavy lifting. Distance scales with the square of exit velocity, so small gains in bat speed or contact quality translate into outsized gains in distance, while launch angle determines how that speed is split between carrying the ball forward and lifting it into the air.

Air resistance then trims a meaningful chunk off the theoretical no-drag distance, which is why this calculator applies a drag correction rather than the simpler formula you'd find in an introductory physics class.

The formula used

The starting point is the standard no-drag projectile range formula, converted from miles per hour to feet per second.

Vacuum Distance = Velocityยฒ ร— sin(2 ร— Angle) รท 32.2

A drag correction factor, calibrated against typical real-world carry at 100 mph and a 28ยฐ launch angle, scales that down to a realistic estimate, before elevation, temperature, and wind adjustments are applied.

Carry Distance = Vacuum Distance ร— 0.722 ร— Elevation Factor ร— Temperature Factor + Wind Effect

Why 45 degrees isn't actually the best launch angle

In a vacuum with no air resistance, 45 degrees maximizes range for any given speed. Real baseballs are slowed by air drag and lifted by backspin, which shifts the sweet spot lower, typically into the 20s and low 30s depending on exit velocity, which is why scouts and analysts talk about launch angle windows rather than a single ideal number.

If you're also tracking a pitcher's side of the game, our Baseball WHIP Calculator covers the other half of run prevention with walks and hits per inning pitched.

Elevation, temperature, and wind: the environment matters

Thinner air at higher elevation reduces drag, letting the ball carry noticeably farther, which is the well-documented reason Coors Field in Denver plays as one of the most hitter-friendly parks in the sport. Warmer air has a smaller but still measurable effect in the same direction, since it's also slightly less dense than cold air.

Wind is the most variable factor of the three, since a steady tailwind can add meaningful distance while a headwind takes it away, and this calculator applies a simple proportional adjustment based on your entered wind speed.

A full worked example

Say a ball leaves the bat at 100 mph, which converts to about 146.7 feet per second, at a 28 degree launch angle, at sea level, 70ยฐF, with no wind. The no-drag vacuum distance works out to roughly 554 feet using the standard projectile formula.

Applying the calibrated drag correction of 0.722 brings that down to approximately 400 feet, which matches typical real-world carry for a well-struck ball at these exact conditions. Since elevation is sea level and temperature is the 70ยฐF baseline, neither adjustment changes the estimate further.

Now imagine the same swing at Coors Field's roughly 5,280 foot elevation instead. The thinner air adds an estimated 5% to 6% more carry, pushing the distance to somewhere around 420 to 425 feet, a real difference that helps explain the park's reputation for inflated offensive numbers.

Frequently asked questions

What launch angle gives the longest home run distance?

For most exit velocities, distance peaks somewhere between 25 and 35 degrees, not the 45 degrees you'd expect from a textbook physics problem with no air resistance. Air drag and backspin lift shift the real-world optimum lower, which is why hard-hit line drives in the low 20s often carry further than a similar-speed ball launched much higher.

How much does exit velocity affect distance?

A lot, and non-linearly. Distance scales with the square of exit velocity in the underlying physics, so a relatively small increase in exit velocity can translate into a noticeably larger jump in distance, which is part of why hitters who add just a few extra miles per hour of exit velocity often see outsized gains in home run totals.

Why does elevation change how far a ball travels?

Thinner air at higher elevation creates less aerodynamic drag on the ball, letting it carry farther for the same exit velocity and launch angle. This is the well-documented reason Coors Field in Denver, at roughly 5,280 feet of elevation, is known as one of the most hitter-friendly parks in professional baseball.

Does temperature really make a measurable difference?

Yes, though the effect is smaller than elevation. Warmer air is less dense than cold air, which slightly reduces drag and lets a ball carry a bit farther on a hot day than the exact same swing would on a cold one. The effect is real and measurable across a full season, even though it's subtle on any single batted ball.

How accurate is this calculator compared to real Statcast distances?

This is an educational estimate using a simplified drag model calibrated to typical real-world carry, not the full aerodynamic simulation that professional tracking systems use. Actual distance also depends on backspin rate, sidespin, seam orientation, and ball construction, none of which this calculator can measure, so treat the result as a reasonable estimate rather than an exact prediction.

How is hang time calculated?

Hang time comes from the vertical component of the launch angle and exit velocity, adjusted slightly downward from the pure no-drag physics estimate to better match real observed flight times. A higher launch angle at the same exit velocity produces a longer hang time even if the total distance ends up shorter.

Can I use this for a specific ballpark's dimensions?

This calculator estimates raw carry distance in open air, not whether a specific ball clears a specific wall, since that also depends on the ball's trajectory shape and the wall's exact height and distance at that point of the outfield. Compare your estimated distance against a park's listed fence distances as a general guide rather than a precise home run or out determination.

โ„น๏ธ
Disclaimer

This tool is for educational purposes only. Always verify important results with a qualified professional.

Mizan โ€” Founder, CalcMora
Founder, CalcMora

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