Calculadora de Zona de Fresnel y Despeje de Línea de Visión - Herramienta Inalámbrica P2P
← Back to Main Calculator

Fresnel Zone & Line-of-Sight Clearance Calculator

Model a point-to-point wireless link, trace the 1st Fresnel zone over real distance, test obstacles against the 60% clearance rule and get the minimum tower height you need — with Earth curvature built in.

Interactive Link Profile & Spectrum Visualizer

Drag the scrubber to inspect the Fresnel radius at any point along the path. Click anywhere on the terrain to drop an obstacle.

←→ scroll to pan on small screens  |  click inside the profile to add an obstacle

1st Fresnel zone (F₁) 60% clearance Line of sight Clear obstacle Obstructed

Link Configuration

Frequency, distance and Earth model for your P2P link.

Frequency band
GHz
km
%
Antenna height mode
m

In Auto mode both towers are set to the recommended height. In Manual mode you set the height and the tool flags any obstacle that breaches the clearance rule.

Terrain & Obstacle Builder

Add trees, buildings or hills along the path to test them against the Fresnel zone. Click the profile to drop an obstacle at that spot.

km
m

Clearance & Tower Height Results

F₁ radius (midpoint)
--
1st Fresnel zone
60% clearance radius
--
critical boundary
Earth bulge (midpoint)
--
K-factor model
Recommended tower height
--
each end, equal height
Worst obstacle: --

1st Fresnel Zone Reference Tables

Maximum 1st Fresnel zone radius (at link midpoint) in meters for common band and distance combinations.

Frequency1 km3 km5 km10 km20 km30 km50 km
0.9 GHz9.13 m15.8 m20.4 m28.9 m40.8 m50.0 m64.5 m
2.4 GHz5.59 m9.68 m12.5 m17.7 m25.0 m30.6 m39.5 m
5.8 GHz3.60 m6.23 m8.04 m11.4 m16.1 m19.7 m25.4 m
11 GHz2.61 m4.52 m5.84 m8.26 m11.7 m14.3 m18.5 m
24 GHz1.77 m3.06 m3.95 m5.59 m7.91 m9.68 m12.5 m
60 GHz1.12 m1.94 m2.50 m3.54 m5.00 m6.12 m7.91 m

Values are the 1st Fresnel zone radius F₁ = 0.5 × √(λ × D) at the midpoint of the link, where λ is the wavelength in meters and D is the link distance in meters. The 60% clearance radius is 0.6 × these values.

Wireless Link Planning

What is a Fresnel Zone in Wireless Networking?

A Fresnel zone is an invisible ellipsoid of radio-frequency energy that exists between a transmitting and a receiving antenna. When a microwave or Wi-Fi signal leaves the transmitter it does not travel as a single thin ray. Instead it expands into a cigar-shaped volume whose surface is defined by the path-length difference between the direct ray and every possible reflected ray. The 1st Fresnel zone (F₁) is the most important of these ellipsoids: roughly half of the signal power is carried inside it, and the center of the zone coincides with the straight line-of-sight beam between the two antenna tips.

If any object — a hill, building, tree, or the ground itself — intrudes into this ellipsoid, it diffracts the signal and robs the receiver of energy. The rule used by wireless engineers is the 60% Clearance Rule: keep at least 60% of the 1st Fresnel zone radius (0.6 × F₁) clear of all obstructions along the entire path. At 60% clearance, diffraction loss stays under roughly 1 dB and the link behaves close to free-space. Below 60%, loss climbs quickly: an obstacle sitting exactly on the line-of-sight path can add 6 dB or more of loss, which is the difference between a working link and a dead one.

How to Calculate Fresnel Zone Clearance

The radius of the n-th Fresnel zone at any point along the link is:

Fₙ = √( n · λ · d₁ · d₂ / D )

Where λ is the wavelength in meters (λ = c / f, with c = 3 × 10⁴ m/s), d₁ is the distance from the transmitter to the point, d₂ is the distance from that point to the receiver, and D = d₁ + d₂ is the total link distance. At the exact midpoint of the path, where d₁ = d₂ = D/2, the formula simplifies to F₁ = 0.5 × √(λ × D). The 60% clearance boundary is simply F₆₀% = 0.6 × F₁.

Quick midpoint examples: at 2.4 GHz a 5 km link has F₁ ≈ 12.5 m and a 10 km link has F₁ ≈ 17.7 m (60% ≈ 7.5 m and 10.6 m). At 5.8 GHz the same 5 km link is F₁ ≈ 8.0 m and the 10 km link is F₁ ≈ 11.4 m. Notice that higher frequencies produce smaller Fresnel zones because the wavelength is shorter — this is why high-frequency links need less antenna height for the same clearance.

Earth Curvature & Refraction Correction (K = 4/3)

Over long paths (roughly beyond 8 km / 5 miles) the curvature of the Earth begins to matter. Even on perfectly flat terrain, the chord between two antenna bases passes above the ground at the midpoint of the link. The height of this bulge is:

hearth = d₁ · d₂ / (12.74 × K)

Where d₁ and d₂ are in kilometers and the result is in meters. The factor K models atmospheric refraction. The standard value is K = 4/3, which assumes a mildly refractive atmosphere that bends the beam slightly toward the ground, making the effective Earth radius larger and the bulge smaller than in a vacuum (K = 1). A 30 km link with K = 4/3 has a midpoint bulge of about 30 × 30 / (12.74 × 1.333) ≈ 13.2 m — a real obstacle to clearance even on flat land.

Putting it together, the minimum antenna height needed at each end (assuming equal heights and a terrain baseline of zero) is Hmin = hobs + hearth + (0.6 × F₁), evaluated at every obstacle on the path and taking the largest result. The calculator above does exactly this: it computes F₁, the 60% boundary and the Earth bulge at every obstacle, colours the obstacle red if the boundary is breached, and reports the recommended tower height automatically.


Frequently Asked Questions
Why is 60% clearance required for the 1st Fresnel Zone?

Radio waves spread into an ellipsoid called the 1st Fresnel zone. If 60% of the F₁ radius (0.6 × F₁) is kept clear, diffraction loss stays below roughly 0.5-1 dB and the link behaves close to free-space. Clearing the entire zone requires much taller towers for a small extra gain, so 60% is the accepted engineering trade-off between cost and reliability. This is the value used by almost all professional wireless link planners.

What is the difference between 2.4 GHz and 5.8 GHz Fresnel zones?

The Fresnel zone shrinks as frequency rises because the wavelength gets shorter. For a 10 km link the midpoint F₁ is about 17.7 m at 2.4 GHz but only about 11.4 m at 5.8 GHz. Higher frequencies need lower antenna heights for the same 60% clearance and are easier to clear, but they are more vulnerable to foliage attenuation, rain fade and reflection from buildings. That is why long unlicensed backhaul links often prefer 5.8 GHz over 2.4 GHz.

What happens if an obstacle enters the 2nd Fresnel Zone?

An obstacle in the 2nd Fresnel zone causes far less damage than one in the 1st zone. Energy arriving via the 2nd zone is a small fraction of the total and often arrives out of phase, adding only fractions of a dB of loss. The 1st zone carries the dominant power, so as long as 60% of F₁ is clear, deeper zones can usually be ignored. In extreme cases a strong 2nd-zone reflection can cause frequency-selective multipath fading, but this is rare on short links.

How do I calculate minimum tower height for a P2P link?

Use Hmin = hobs + hearth + (0.6 × F₁), where hobs is the tallest obstacle height, hearth is the Earth bulge d₁d₂/(12.74 × K) at that obstacle, and F₁ is the 1st Fresnel radius at that distance. Compute it for every obstacle on the path and take the largest value. For a flat 10 km 5.8 GHz link with a 30 m building at the midpoint (hearth ≈ 1.2 m, F₁ ≈ 11.4 m, 60% ≈ 6.8 m) the towers need about 38 m. This tool automates the whole process and switches between metric and imperial units.