How Does Radar Work? Pulse, Doppler, Range and Bearing Explained

by | Sep 23, 2026 | Mondo dell'aviazione | 0 comments

Radar does one simple thing extremely fast. It shouts into the dark, listens for an echo, and times how long the echo took to come back. Everything else is refinement.

The shout is a pulse of radio energy. The echo is a vanishingly small fraction of that pulse scattered back off whatever it hit. The timing is the measurement, because radio waves travel at the speed of light and that speed is known to nine significant figures.

From that one measurement, plus where the antenna was pointing and how the echo’s frequency changed, a radar builds range, bearing and closing speed. Here is how each of those falls out.

Informazioni rapide

What radar measures directly: The time between transmitting a pulse and receiving its echo

Range formula: Range = (speed of light × echo time) ÷ 2, halved because the pulse makes a round trip

Speed of light: 299,792,458 metres per second, so a target at 150 km returns its echo in about one millisecond

Bearing: Comes from where the antenna beam was pointing when the echo arrived

Velocità: Comes from the Doppler shift in the returned frequency

The harsh bit: Received power falls off as the fourth power of range

Maximum unambiguous range: Set by the pulse repetition frequency, the distance a pulse can travel out and back before the next one is sent

Main enemy: Clutter, meaning echoes from ground, sea, rain, birds and anything else you did not want to see

Range: a stopwatch, nothing more

The transmitter emits a short burst. A duplexer then switches the antenna over to the receiver, because the same aerial does both jobs and the transmit pulse would destroy a receiver listening at the same moment. The receiver waits.

When an echo arrives, the elapsed time gives the distance. Light covers 300,000 kilometres per second, so the round trip to a target 150 kilometres away takes about one millisecond. At 1.5 kilometres it is ten microseconds. Radar is a stopwatch operating on timescales where a microsecond is 150 metres of error.

Rotating airport surveillance radar antenna
A rotating airport surveillance radar. The narrow bar above the main reflector is the secondary radar that interrogates aircraft transponders. Photo: Wikimedia Commons / CC BY-SA 3.0.

Bearing: you know it because you pointed it there

The echo itself carries no direction information. Bearing comes from the antenna. A dish or planar array concentrates energy into a narrow beam, and if an echo comes back while the beam is pointing at 043 degrees, the target is at 043 degrees, to within the width of the beam.

That is why angular accuracy depends on beam width, and beam width depends on antenna size relative to wavelength. A bigger antenna at a shorter wavelength gives a tighter beam and a sharper picture. It is also why a rotating surveillance radar only updates a given bearing once per sweep, typically every four to twelve seconds.

Speed: the Doppler shift

A target moving towards the radar compresses the returning wave and a target moving away stretches it. The frequency of the echo is therefore slightly different from the frequency transmitted, and the size of that difference gives the component of the target’s velocity along the radar line of sight.

This is far more than a bonus number. Pulse-Doppler processing is the single most effective way to separate real targets from clutter, because the ground does not move and an aircraft does. Filter out everything with zero Doppler shift and most of the ground returns disappear with it. It is what lets a fighter radar look down at a low-flying target without drowning in returns from the terrain behind it.

Why detection range is so hard to buy

The radar equation contains a brutal term: the power that comes back falls off as the fourth power of range. The pulse spreads on the way out and the scattered echo spreads on the way back, and the two inverse-square losses multiply.

In practice that means doubling your detection range needs sixteen times the transmitted power, all else being equal. This is why radar development has focused relentlessly on receiver sensitivity, signal processing and pulse integration rather than simply shouting louder, and why halving a target’s radar cross section only cuts detection range by about sixteen per cent.

Pulses, gaps and the range you cannot see

A radar cannot transmit and listen at the same instant, so it alternates. The rate at which it sends pulses is the pulse repetition frequency, and it forces a trade-off that runs through every radar design.

A high PRF gives excellent Doppler resolution and good performance against fast targets, but the next pulse goes out before distant echoes have returned, so range becomes ambiguous. A low PRF measures long ranges unambiguously but handles Doppler badly. Modern radars solve this by switching PRF constantly and resolving the ambiguities in software.

“Received power falls as the fourth power of range. Everything difficult about radar follows from that one term.”
The radar range equation — Editorial note, not a third-party quotation

Moving the beam without moving the antenna

A mechanically scanned radar physically swings its dish. An active electronically scanned array does not move at all. Its face carries hundreds or thousands of individual transmit and receive modules, and the beam is steered by adjusting the phase of each one so the wavefronts add up in the desired direction.

Face of an AN/APG-81 AESA antenna array
The business end of an AESA: every element on this face transmits and receives independently, and the beam is steered by phase rather than by motors. Photo: Wikimedia Commons / CC0.

Because the beam has no inertia, it can jump across the sky in microseconds, track many targets at once, and split into several beams doing different jobs. It also degrades gracefully: lose a few modules and you lose a little performance, rather than the whole radar.

“Range is a stopwatch. Bearing is where you were pointing. Speed is how the pitch of the echo changed. Everything else is fighting the clutter.”
Afterburner — The short version

Radar is eighty years old and still the only sensor that gives range, bearing and velocity through cloud, darkness and weather, in one box. Nothing else comes close, which is why every serious attempt to hide from it has gone after the echo rather than the physics.

Sources: standard radar theory as set out in Wikipedia’s “Radar”, “Radar equation”, “Pulse-Doppler radar” and “Pulse repetition frequency” articles; IEEE radar band designations; speed of light per the SI definition.

Domande frequenti

How does radar work?
A radar transmits a short pulse of radio energy, then listens for the echo scattered back by anything the pulse hits. The time the echo takes to return gives range, the direction the antenna was pointing gives bearing, and the change in the echo’s frequency gives the target’s speed along the line of sight.
How does radar measure distance?
By timing the echo. Radio waves travel at the speed of light, 299,792,458 metres per second, so range equals the speed of light multiplied by the echo time and divided by two. The division by two is because the pulse makes a round trip. A target 150 km away returns its echo in about one millisecond.
How does radar know which direction a target is in?
From the antenna. The echo itself carries no direction information, so the radar records where its beam was pointing when the echo arrived. Angular accuracy therefore depends on how narrow the beam is, which depends on the size of the antenna relative to the wavelength.
What is Doppler radar?
A radar that measures the frequency shift in the returned echo. A target closing on the radar compresses the wave and raises its frequency; a target moving away lowers it. The shift gives the target’s velocity along the radar line of sight.
What is pulse-Doppler radar used for?
Separating moving targets from clutter. Ground, buildings and terrain return strong echoes with no Doppler shift, so filtering out zero-shift returns removes most of the clutter and leaves the aircraft. It is what allows a fighter radar to look down at a low-flying target.
Why does radar detection range fall off so sharply?
Because received power drops as the fourth power of range. The transmitted pulse spreads on the way out and the scattered echo spreads on the way back, and the two losses multiply. Doubling detection range requires about sixteen times the transmitted power.
What is the difference between an AESA radar and a normal radar?
A conventional radar moves its antenna mechanically to point the beam. An active electronically scanned array has hundreds or thousands of small transmit and receive modules across its face and steers the beam by adjusting the phase of each one. The beam can be repositioned in microseconds, split into multiple beams, and the array degrades gracefully as individual modules fail.
What is radar clutter?
Any echo the operator does not want: returns from the ground, the sea, rain, birds, insects, dust storms and even ionospheric disturbances. Clutter is the main limit on radar performance, and Doppler processing is the most effective way to suppress it.

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