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Fresnel Lens
Penny

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Penny

20. Kanama 2026DK
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Fresnel Lens

A lens with the glass taken out of the middle. Only the curved surface of a lens bends light; the thickness behind it does nothing optically except absorb light and add weight. Augustin-Jean Fresnel saw that you could slice a lens into concentric rings and collapse each ring back to a flat plate, keeping every surface angle and discarding the bulk between them. A lighthouse lens that would have been a metre-thick block of glass — impossible to cast without cracking and too heavy to turn — becomes a stepped shell a few centimetres thick. He built the first for the Cordouan lighthouse in 1822, and its light was visible more than thirty kilometres out to sea. Before Fresnel, lighthouses threw away most of their light into the sky and the ground; after him, they aimed nearly all of it at the horizon.
Utangiye
45 minutes

Amabwiriza

1

Prove only the surface matters

Test the assumption the whole design rests on.

  1. Focus sunlight or a lamp with a thick convex lens and note the focal length.
  2. Look at where the light actually changes direction — at the two surfaces, not inside.
  3. Inside the glass the rays travel in straight lines.
Refraction happens at boundaries. The glass between the surfaces sets the spacing, but does no bending of its own — so if you can keep the surface angles and remove the middle, the optics survives.

Materials for this step:

Convex LensConvex Lens1 igice
2

Slice a lens into rings on paper

Draw the transformation before making it.

  1. Draw a convex lens in cross-section.
  2. Divide it into concentric annular zones.
  3. Slide each zone down onto a common flat plane, keeping its surface ANGLE unchanged.
Each zone now sits on a flat base and presents the same slope to the incoming light as before. The steps between zones are optically dead — that is where the wasted glass went, and the price is a small amount of scattered light at every step.

Materials for this step:

ProtractorProtractor1 igice
Steel RulerSteel Ruler1 igice
3

Compare a real Fresnel against a solid lens

A credit-card magnifier is a Fresnel lens. Put it up against glass.

  1. Focus a lamp with each and compare focal length and brightness.
  2. Weigh them.
  3. Look closely at the image quality of each.
The Fresnel is dramatically lighter and gathers similar light, but the image is softer and slightly hazy. Every step edge scatters, so a Fresnel is excellent when you want to COLLECT or PROJECT light and poor when you want to form a sharp image — which is exactly why they light lighthouses and stage lamps but are not used in cameras.

Materials for this step:

Digital Kitchen ScaleDigital Kitchen Scale1 igice
4

Aim the beam at the horizon

A lighthouse does not want light everywhere — it wants it in a flat sheet.

  1. Put a small bright source at the focus and observe the emerging beam.
  2. Move the source slightly toward and away from the lens.
  3. Watch the beam converge, go parallel, then spread.
Parallel output is the goal. Light sent upward is wasted on clouds and light sent downward is wasted on rocks; a lighthouse lens compresses the source's output into a narrow vertical band aimed at the horizon, which is why its range is so much greater than the lamp alone would suggest.
5

History and context

Augustin-Jean Fresnel (1788-1827) was a French civil engineer and one of the people who established that light behaves as a wave. Appointed to the Commission des Phares, he applied himself to lighthouses and produced the stepped lens in 1822, first installed at Cordouan. The idea of stepping a lens had been floated before — Buffon and Condorcet had both suggested something like it — but Fresnel made it work, added the reflecting prisms that catch light escaping at high and low angles, and turned it into a practical system.

The improvement in efficiency was extraordinary. A polished metal reflector of the period returned a modest fraction of the lamp's light usefully; the full Fresnel apparatus with refracting centre and reflecting prisms captured the great majority of it. Lighthouses were graded into orders by lens size — a first-order lens stands over two metres high and its rings are the size of dinner plates.

He died at 39, of tuberculosis, five years after Cordouan. The wave theory of light he helped establish and the lens named after him both outlived him by two centuries.

Where they went: the same shape, moulded in plastic instead of ground in glass, is now in overhead projectors, car headlamps, traffic signals, theatre lanterns and solar concentrators. It is one of the few pieces of nineteenth-century precision optics that got cheaper and more common rather than rarer — and many surviving lighthouse lenses are now museum pieces, replaced by small LED arrays that need no lens at all.

Ibikoresho

4

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