Coil Geometry Calculator
Before ordering wire, it pays to know what a winding actually becomes: how far it builds out radially, how many meters of conductor it swallows, what it weighs, and what resistance the power supply will see hot. This calculator models a conventional layer-wound solenoid coil. A cyclotron magnet uses two such coils, one per pole — the results below are for one coil.
Results
| Winding pitch (insulated size) | — |
| Turns per layer | — |
| Coil outer diameter | — |
| Coil axial height | — |
| Conductor length | — |
| Resistance at 20 °C | — |
| Resistance at operating temperature | — |
| Copper mass | — |
The math
The winding pitch is the bare size plus insulation on both sides: s = sbare + 2tins. With N turns in nL layers, each layer carries ⌈N/nL⌉ turns; layer k (counting from 0) winds at mean diameter
Conductor length is the layer-by-layer sum ℓ = Σ (turns in layer k) · πDk, the outer diameter is Dinner + 2nLs, and the axial height is (turns per layer) · s. Resistance and mass follow from the bare copper cross-section A (side² for square, πd²/4 for round):
with annealed-copper values ρ₂₀ = 1.724 × 10⁻⁸ Ω·m (100% IACS), α = 0.00393 K⁻¹, δ = 8960 kg/m³. Magnet coils run warm: expect roughly +24% resistance at 80 °C over the nameplate 20 °C value, and size the power supply for the hot resistance.
Assumptions and limits
- Ideal square-packed winding: every turn lands at exactly one pitch. Real coils wind slightly proud — add a few percent to the radial build, more for round wire wound loose.
- Round-wire orthocyclic (hexagonal) packing, bobbin flanges, leads, and interlayer cooling plates are not modeled.
- Length uses the mean diameter of each layer; helical pitch adds a negligible √(1 + (s/πD)²) correction for any sane geometry.
Worked check
300 mm ID, 500 turns of 2 mm square wire with 0.1 mm insulation per side (pitch 2.2 mm) in 10 layers: 50 turns/layer, OD = 344 mm, height = 110 mm, ℓ = 506 m, R₂₀ = 2.18 Ω, R₈₀ = 2.69 Ω, mass = 18.1 kg. (Cross-check the mass: 4 mm² × 506 m × 8960 kg/m³ = 18.1 kg.)
Sources
- Copper properties: International Annealed Copper Standard (IACS); CRC Handbook of Chemistry and Physics, resistivity of metals.
- Winding geometry: standard practice, e.g. D. B. Montgomery, Solenoid Magnet Design, Wiley-Interscience, 1969, ch. 1.