Bend allowance & deduction
API · /sheetmetal-api
Sheet Metal API
Sheet-metal bending maths as an API, computed locally and deterministically. The bend-allowance endpoint computes the bend allowance, bend deduction and outside setback for a single bend from the material thickness, the inside bend radius, the bend angle and the K-factor: the bend allowance is BA = θ·(r + K·t), the outside setback is OSSB = (r + t)·tan(θ/2) and the bend deduction is BD = 2·OSSB − BA, with the neutral-axis position reported too. The flat-length endpoint computes the flat blank length you need to cut: from a list of outside (mold-line) flange lengths, or two flanges, or a total, it subtracts the bend deduction for each bend. The kfactor endpoint lists typical K-factors by material — aluminium around 0.33, mild steel 0.44, stainless 0.45 — and estimates a K-factor from the inside-radius-to-thickness ratio. The K-factor can be given directly or chosen by material, and if the inside radius is omitted it defaults to the thickness. Lengths are unit-agnostic — the output matches whatever unit you supply. Everything is computed locally and deterministically, so it is instant and private. Ideal for sheet-metal CAD/CAM and press-brake tools, fabrication and unfolding apps, maker and prototyping projects, and manufacturing calculators. Pure local computation — no key, no third-party service, instant. Live, nothing stored. 3 endpoints. This is sheet-metal bend development; for the weight of the blank use a metal-weight API.
API salute
salutare- Tempo di attività
- 100.00%
- Sondaggi del server · 24 ore su 24
- Latenza media
- 76 ms
- Sondaggi del server · 24 ore su 24
- Abbonati
- 4,393
- attiva
- Chiamate totali
- 76
- ultimi 7 giorni
Prezzi
Scegli un livello: fatturazione mensile, annullamento in qualsiasi momento.
Free
Gratis
- 2,000 chiamate/mese
- 2 richieste/secondo
- Tetto rigido (429 sopra la quota, nessuna eccedenza)
- 14,635 calls/month
- 2 req/sec
- Bend allowance + flat length + K
- No credit card
Starter
€9.00 /mese
- 18,000 chiamate/mese
- 5 richieste/secondo
- Tetto rigido (429 sopra la quota, nessuna eccedenza)
- 24.65k calls/month
- 8 req/sec
- Multi-bend blank, material K
- Email support
Pro
€24.00 /mese
- 90,000 chiamate/mese
- 15 richieste/secondo
- Tetto rigido (429 sopra la quota, nessuna eccedenza)
- 293.5k calls/month
- 20 req/sec
- CAD/CAM / press-brake pipelines
- Priority support
Mega
€74.00 /mese
- 400,000 chiamate/mese
- 40 richieste/secondo
- Tetto rigido (429 sopra la quota, nessuna eccedenza)
- 1.51M calls/month
- 50 req/sec
- Platform scale
- Dedicated SLA
Costruito da
Correlato APIs
Altro APIs con tag sovrapposti.
Riveted Joint API
Riveted-joint strength maths as an API, computed locally and deterministically — the shear, bearing and rivet-count numbers a structural, sheet-metal or aircraft fitter checks a riveted connection by. The shear-capacity endpoint gives the load a rivet group carries across its shanks = the rivet area (π/4·d²) × the shear strength × the number of rivets × the shear planes — a rivet in single shear is cut on one plane, in double shear (the centre plate of a butt joint with cover plates) on two, so it carries twice. The bearing-capacity endpoint gives the load the rivets can press against the sides of their holes before the plate crushes = the projected contact area (diameter × plate thickness) × the bearing strength × the number of rivets; thin plates fail in bearing long before the rivet shears, which is exactly why both must be checked — the joint strength is the lesser of the two. The rivets-required endpoint inverts it: the rivets a design load needs = the load ÷ the allowable load per rivet (area × allowable shear × planes), rounded up to a whole rivet, using the working shear (strength ÷ safety factor) not the raw value. Everything is computed locally and deterministically, so it is instant and private. Ideal for structural and sheet-metal estimating, mechanical-design and fastener tools, and engineering calculators. Pure local computation — no key, no third-party service, instant. Shank-shear and bearing only — also confirm edge tear-out and minimum pitch. 3 compute endpoints. For bolt preload and torque use a bolt-torque API; for thread geometry a thread API; for welded joints a welding API.
api.oanor.com/rivet-api
Welding Settings API
Schweißeinstellungen und Verbrauchsmaterialberechnungen als API, lokal und deterministisch berechnet – die Stromstärke-, Draht- und Gaswerte, die ein Schweißer oder Hersteller an der Maschine einstellt. (Für die Verbindungsfestigkeit gibt es eine separate Schweißfestigkeitsberechnung.) Der Stromstärke-Endpunkt liefert einen Startstrom aus der Materialdicke unter Verwendung der Faustregel für Baustahl von etwa einem Ampere pro 0,001 Zoll – eine Achtel-Zoll-Platte läuft also mit etwa 125 A, plus/minus zehn Prozent – und schlägt eine passende Elektroden- oder Drahtgröße vor. Der Abscheidungs-Endpunkt führt die MIG-Arithmetik exakt durch: Abscheidungsrate (lb/h) = Drahtvorschubgeschwindigkeit × Drahtgewicht pro Zoll × 60 × Wirkungsgrad, wobei das Gewicht pro Zoll = (π/4 · d²) × 0,284 lb/in³ für Stahl ist, also legt 0,035-Zoll-Draht bei 300 in/min etwa 4,9 lb/h zu, 4,8 abgeschieden bei 98 % – und aus einer Zielabscheidung werden die Lichtbogenzeit und die zu kaufenden Pfund Draht zurückgegeben. Der Gas-Endpunkt dimensioniert das Schutzgas: Gasverbrauch (ft³) = Durchfluss in CFH × Lichtbogenzeit in Stunden, und die Lichtbogenzeitdauer einer Flasche, also entleert 35 CFH eine 80-ft³-Flasche in etwa 2,3 Stunden tatsächlicher Lichtbogenzeit. Alles wird lokal und deterministisch berechnet, daher ist es sofort und privat. Ideal für Entwickler von Schweiß-, Metallverarbeitungs-, Fertigungs- und Werkstattverwaltungs-Apps, Tools zur Auftragskalkulation und Verbrauchsplanung sowie Schweißausbildungssoftware. Reine lokale Berechnung – kein Key, kein Drittanbieterdienst, sofort. Maschineneinstellungen, nicht Verbindungsfestigkeit. Live, nichts wird gespeichert. 3 Compute-Endpunkte.
api.oanor.com/welding-api
Weld Strength API
Weld design maths as an API, computed locally and deterministically. The fillet endpoint sizes an equal-leg fillet weld: from the leg size, the weld length and an allowable shear stress it returns the effective throat (leg ÷ √2), the effective area, the load capacity and the strength per millimetre of weld; give a design force instead of a leg and it returns the required throat and leg size, and if you also pass a provided leg it reports the utilization and whether the weld is adequate. The butt endpoint handles a full-penetration butt (groove) weld, where the effective throat equals the plate thickness, returning the area and capacity. The throat endpoint converts between leg and throat — equal-leg (throat = leg ÷ √2), unequal legs (throat = a·b ÷ √(a²+b²)) and throat back to leg. Lengths are in millimetres, stress in megapascals and force in newtons. Everything is computed locally and deterministically, so it is instant and private. An estimating aid, not a code-stamped design — use the allowable stress and electrode from your governing code (AISC, Eurocode). Ideal for structural and fabrication tools, weld-design and estimating apps, maker and metalwork projects, and engineering calculators. Pure local computation — no key, no third-party service, instant. Live, nothing stored. 3 endpoints. This is weld strength sizing; for bolt tightening torque use a torque API and for the weight of the steel use a metal-weight API.
api.oanor.com/weld-api
Metal Weight API
Metal stock weight and cost as an API, computed locally and deterministically. The weight endpoint computes the mass of a length of metal stock from its shape, dimensions and material: round bar, square bar, flat bar or plate, sheet, hexagonal bar, round tube or pipe and rectangular (box) tube. It works out the cross-sectional area, multiplies by the length and the material density, and returns the weight per piece and the total for a quantity — in kilograms, pounds, grams and tonnes — along with the volume. Material density is looked up from a built-in table of metals (steel, stainless, aluminium, copper, brass, bronze, lead, zinc, titanium, nickel, gold, silver and more) or you can pass an explicit density. The cost endpoint multiplies that weight by a price per kilogram, pound or tonne to give the material cost per piece and in total. The materials endpoint lists the densities. Dimensions accept millimetres, centimetres, metres, inches or feet. Everything is computed locally and deterministically, so it is instant and private. Ideal for metal fabrication and machine-shop tools, engineering and CAD apps, scrap and stock quoting, and shipping-weight estimates. Pure local computation — no key, no third-party service, instant. Live, nothing stored. 3 endpoints. This is metal stock weight from geometry and density; for beam reactions and deflection use a beam API and for live metal spot prices use a commodities API.
api.oanor.com/metalweight-api
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Frammenti di codice
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curl https://api.oanor.com/sheetmetal-api/SOME_PATH \
-H "x-oanor-key: oanor_test_..."
const res = await fetch("https://api.oanor.com/sheetmetal-api/SOME_PATH", {
headers: { "x-oanor-key": "oanor_test_..." }
});
const data = await res.json();
$ch = curl_init("https://api.oanor.com/sheetmetal-api/SOME_PATH");
curl_setopt($ch, CURLOPT_RETURNTRANSFER, true);
curl_setopt($ch, CURLOPT_HTTPHEADER, ["x-oanor-key: oanor_test_..."]);
$response = curl_exec($ch);
import requests
r = requests.get(
"https://api.oanor.com/sheetmetal-api/SOME_PATH",
headers={"x-oanor-key": "oanor_test_..."},
)
print(r.json())
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