← 🧪 Physics & Mechanics

⏳ Hopper Discharge

Fill height:
Discharge rate:
Grains drained: 0
FPS:
Drag — rotate · Scroll — zoom

⏳ Granular Flow: Why Sand Drains Like a Clock, Not a Liquid

A 3D hopper filled with thousands of tumbling grains drains through an adjustable orifice — watch the discharge rate hold nearly steady even as the fill height drops, the same physics that makes an hourglass keep reliable time.

🔬 What It Demonstrates

Grains arch into self-supporting force chains above the orifice, so the weight pressing on the opening stops growing with fill depth. The result: a discharge rate set almost entirely by orifice size and grain size, not head height — unlike a draining liquid.

🎮 How to Use

Shrink the orifice or enlarge the grains to approach a jam; raise friction to make arching and clogging more likely. Watch the live rate chart stay flat while fill height (shown numerically) falls.

💡 Did You Know?

The Beverloo correlation, Q ∝ (D − k·d)^2.5, has been the engineering standard for sizing silo outlets since 1961 — the same principle that keeps hourglasses accurate for hours at a time.