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  <title>Illustrated Physics — physics, drawn</title>
  <subtitle>An illustrated collection of essays about the physics that is best understood by looking at it — every figure generated from the equations it describes.</subtitle>
  <link href="https://www.illustrated-physics.com/feed.xml" rel="self"/>
  <link href="https://www.illustrated-physics.com/"/>
  <id>https://www.illustrated-physics.com/</id>
  <updated>2026-08-03T10:35:40.195Z</updated>
  <entry>
    <title>The pendulum, and the small lie that makes it simple</title>
    <link href="https://www.illustrated-physics.com/essays/the-pendulum-and-its-small-lie/"/>
    <id>https://www.illustrated-physics.com/essays/the-pendulum-and-its-small-lie/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>A pendulum&#39;s period does not depend on how far it swings. This is one of the most useful false statements in physics, and it is worth knowing exactly how false.</summary>
  </entry>
  <entry>
    <title>The angle that throws furthest, and why nobody notices</title>
    <link href="https://www.illustrated-physics.com/essays/the-angle-that-throws-furthest/"/>
    <id>https://www.illustrated-physics.com/essays/the-angle-that-throws-furthest/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>Forty-five degrees is the answer, and the maximum is so flat that a throw ten degrees off loses almost nothing. Both halves of that are worth drawing.</summary>
  </entry>
  <entry>
    <title>The slope, and the two directions that make it easy</title>
    <link href="https://www.illustrated-physics.com/essays/the-slope-and-the-forces-on-it/"/>
    <id>https://www.illustrated-physics.com/essays/the-slope-and-the-forces-on-it/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>An inclined plane looks like a harder problem than a flat one. Split the weight into two components chosen to suit the slope and it becomes an easier one.</summary>
  </entry>
  <entry>
    <title>Collisions are easier than forces, and momentum is the reason</title>
    <link href="https://www.illustrated-physics.com/essays/collisions-are-easier-than-forces/"/>
    <id>https://www.illustrated-physics.com/essays/collisions-are-easier-than-forces/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>Nobody knows what happens inside a collision. Momentum conservation makes that ignorance irrelevant, which is the whole trick — and energy, deliberately, is not conserved.</summary>
  </entry>
  <entry>
    <title>A wave is a shape that travels, and nothing else does</title>
    <link href="https://www.illustrated-physics.com/essays/a-shape-that-travels/"/>
    <id>https://www.illustrated-physics.com/essays/a-shape-that-travels/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>In a wave on water, no water goes anywhere. What moves is the shape — and separating the two motions is the whole of wave physics.</summary>
  </entry>
  <entry>
    <title>When two waves meet, they simply add</title>
    <link href="https://www.illustrated-physics.com/essays/when-two-waves-meet/"/>
    <id>https://www.illustrated-physics.com/essays/when-two-waves-meet/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>Waves pass through each other unchanged and their displacements add point by point. From that one impoverished-sounding rule comes interference, beats, and the evidence that light is a wave at all.</summary>
  </entry>
  <entry>
    <title>Only some notes fit, and that is where discreteness comes from</title>
    <link href="https://www.illustrated-physics.com/essays/only-some-notes-fit/"/>
    <id>https://www.illustrated-physics.com/essays/only-some-notes-fit/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>A string clamped at both ends can vibrate at some frequencies and not others. A continuous object producing a whole-number list is the oldest quantisation in physics.</summary>
  </entry>
  <entry>
    <title>The bend at the boundary, and what it is really about</title>
    <link href="https://www.illustrated-physics.com/essays/the-bend-at-the-boundary/"/>
    <id>https://www.illustrated-physics.com/essays/the-bend-at-the-boundary/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>Light changes direction when it changes speed. Snell&#39;s law is the geometry of that statement, and it can be derived without knowing anything about light at all.</summary>
  </entry>
  <entry>
    <title>What a lens is doing, and why three rays are enough</title>
    <link href="https://www.illustrated-physics.com/essays/what-a-lens-is-doing/"/>
    <id>https://www.illustrated-physics.com/essays/what-a-lens-is-doing/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>A lens bends every ray that reaches it. The construction uses three, because three are all that can be drawn without calculation — and any three that meet prove all the rest do.</summary>
  </entry>
  <entry>
    <title>The angle past which light cannot leave</title>
    <link href="https://www.illustrated-physics.com/essays/the-angle-light-cannot-escape/"/>
    <id>https://www.illustrated-physics.com/essays/the-angle-light-cannot-escape/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>Snell&#39;s law asks for the sine of an angle greater than one, and no such angle exists. What happens instead is a perfect mirror made out of nothing but a change of speed.</summary>
  </entry>
  <entry>
    <title>Field lines are a choice, not a discovery</title>
    <link href="https://www.illustrated-physics.com/essays/field-lines-are-a-choice/"/>
    <id>https://www.illustrated-physics.com/essays/field-lines-are-a-choice/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>Nothing in space is arranged in lines. The lines are a drawing convention — and an unusually good one, because three separate facts about the field survive the translation.</summary>
  </entry>
  <entry>
    <title>The field before the lines were drawn on it</title>
    <link href="https://www.illustrated-physics.com/essays/the-field-before-the-lines/"/>
    <id>https://www.illustrated-physics.com/essays/the-field-before-the-lines/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>A field is a vector attached to every point of space. Drawing it as arrows on a grid is honest and ugly; drawing it as lines is beautiful and throws information away.</summary>
  </entry>
  <entry>
    <title>Counting what comes out, and never looking inside</title>
    <link href="https://www.illustrated-physics.com/essays/counting-what-comes-out/"/>
    <id>https://www.illustrated-physics.com/essays/counting-what-comes-out/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>Draw any closed surface. The field crossing it depends only on the charge enclosed — not on where that charge sits, not on its shape, not on anything outside.</summary>
  </entry>
  <entry>
    <title>The speeds in a still room</title>
    <link href="https://www.illustrated-physics.com/essays/the-speeds-in-a-still-room/"/>
    <id>https://www.illustrated-physics.com/essays/the-speeds-in-a-still-room/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>The air in a quiet room is not still. Every molecule in it is moving at hundreds of metres per second, and temperature is a single number summarising an entire distribution.</summary>
  </entry>
  <entry>
    <title>Entropy is a count, and the arrow of time is arithmetic</title>
    <link href="https://www.illustrated-physics.com/essays/entropy-is-a-count/"/>
    <id>https://www.illustrated-physics.com/essays/entropy-is-a-count/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>Nothing in mechanics prefers a direction. Entropy is not a force pushing things toward disorder — it is the observation that some outcomes have vastly more ways of happening than others.</summary>
  </entry>
  <entry>
    <title>The ceiling on every engine, set before it was designed</title>
    <link href="https://www.illustrated-physics.com/essays/the-ceiling-on-every-engine/"/>
    <id>https://www.illustrated-physics.com/essays/the-ceiling-on-every-engine/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>There is a maximum efficiency no heat engine can exceed, and it depends on nothing but two temperatures. Not the fuel, not the working substance, not the cleverness of the engineer.</summary>
  </entry>
  <entry>
    <title>Two axes, one speed, and a diagram that does the arguing</title>
    <link href="https://www.illustrated-physics.com/essays/two-axes-and-one-speed/"/>
    <id>https://www.illustrated-physics.com/essays/two-axes-and-one-speed/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>Put position across and time up, insist that light travels at forty-five degrees for everyone, and nearly every result in special relativity becomes something to read off rather than derive.</summary>
  </entry>
  <entry>
    <title>The clock that has to slow, and why no clock can refuse</title>
    <link href="https://www.illustrated-physics.com/essays/the-clock-that-has-to-slow/"/>
    <id>https://www.illustrated-physics.com/essays/the-clock-that-has-to-slow/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>One constant speed and one right-angled triangle force a moving clock to tick slower. The argument is Pythagoras, which is what makes it inescapable rather than merely surprising.</summary>
  </entry>
  <entry>
    <title>Now is a choice of slicing</title>
    <link href="https://www.illustrated-physics.com/essays/now-is-a-choice-of-slicing/"/>
    <id>https://www.illustrated-physics.com/essays/now-is-a-choice-of-slicing/</id>
    <updated>2026-08-03T10:35:40.195Z</updated>
    <summary>Two events happening at the same time is not a fact about the events. It is a fact about who is asking, and different observers slice spacetime at different angles.</summary>
  </entry>
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