Praktische tools voor nauwkeurig werk
Vierkant/Rechthoek naar Rond Overgang Ontwikkelaar
Ontwikkel de afwikkelingspanelen voor een vierkant- of rechthoek-naar-rond overgangsstuk (kanaal of pijp) met behulp van triangulatie.
Bereken de indeling, controleer het diagram en druk het resultaat af voor de werkplaats of bouwplaats.
0 = concentric. Positive moves the round top toward the right edge.
0 = concentric. Positive moves the round top toward the back edge.
More lines = a smoother approximation of the curve, at the cost of a busier diagram. 3-6 is typical.
Each of the 4 panels is developed independently from true 3D triangle edge lengths. Cut all 4 (opposite panels are identical for a concentric/centered transition) and join at the seams.
How it works
How to use it: enter the base rectangle's width and depth, the round top's diameter, and the vertical height between the two planes. Leave the offset fields at 0 for a concentric (centered) transition, or set them for an eccentric transition where the round top sits off to one side. The diagram shows the flat pattern for all 4 side panels, laid out separately.
Transition piece development: this is also called a duct transition development, rectangle-to-round layout, or square-to-round flat pattern. The calculator returns true-length panels rather than a projected elevation, so the printed pieces can be transferred to sheet material.
Method: triangulation. A square/rectangle-to-round transition is not a simple cone, so it can't be developed with the cone formula. Instead each side is divided into small flat triangular facets that approximate the curved surface above it - the standard sheet-metal "triangulation" or "radial line" layout method. Each side panel spans from one base corner to the next, fanning out to the corresponding quarter-arc of the round top. At each step, the calculator picks whichever of the two possible next triangles has the shorter diagonal, which keeps the developed pattern as close as possible to the true curved surface. Every triangle is then placed in 2D using its real (true) edge lengths, computed in 3D - not projected lengths - so the printed pattern folds up into the correct 3D shape.
Why 4 separate panels, not one continuous pattern. This surface is only approximately developable (unlike a true cone), so unrolling all 4 sides as one continuous strip back to the start accumulates a small closing error. Developing each side independently avoids that entirely and matches how many fabrication references present transition patterns - as 4 (or 2, using symmetry) separate face templates to cut and join at the seams.
Current-input example
The result above uses these exact values. This snapshot is included when the page is printed so the output can be checked against the original measurements.
- Base width
- 300 mm
- Base depth
- 200 mm
- Round top diameter
- 200 mm
- Vertical height
- 350 mm
- Round top offset (X)
- 0 mm
- Round top offset (Y)
- 0 mm
- Development lines per side
- 4
Primary result: Base perimeter: 1000.0 mm.
Before using the result
- Measure from the datum or reference edge described by this tool, and do not mix inside, outside and centerline dimensions.
- Keep inputs in the displayed units and preserve more precision than the final cutting or purchasing tolerance requires.
- When the result is close to a limit, verify it with a test piece, field measurement, manufacturer drawing or qualified project professional.
Limitations
This is a triangulated approximation of the true surface, not an exact analytical development; standard practice for square/rectangle-to-round transitions, since (unlike a cone) they are not exactly developable. More development lines per side reduce the approximation error.
The pattern is the bare developed geometry only - it does not add seam allowance, hem, or lap. Add those separately, on the outside of the printed outline, before cutting.
Height is the vertical (axial) distance between the base and round-top planes, not a slant length. Offsets must keep the round top reasonably within the base footprint; extreme offsets can produce a self-intersecting (unbuildable) transition that this tool does not detect.
Frequently asked questions
Why are opposite panels identical?
For a concentric transition (offsets at 0), the shape is symmetric, so the front and back panels (both spanning the width) are identical, and the left and right panels (both spanning the depth) are identical. Set an offset to break that symmetry for an eccentric transition.
What do the dashed lines in each panel mean?
They are the internal triangulation fold lines used to develop the panel. They aren't cut lines - only the solid outer outline is cut. Light score/fold marks along the dashed lines can help the panel seat correctly when rolling it into shape.
Can I use this for a rectangle-to-round or only a square-to-round transition?
Both - enter different width and depth values for a rectangle-to-round transition, or equal values for a square-to-round transition. The panel diagram and metrics both update automatically.
Gerelateerde tools
Kegel Afwikkeling
Genereer de afwikkeling (ontwikkelde vorm) van een afgeknotte kegel op basis van de boven-/onderdiameter en hoogte.
Buigtoeslag Calculator
Bereken buigtoeslag, buigaftrek en terugzet voor een plaatwerkbuiging, met een diagram.
Verloopstuk Layout
Ontwikkel de afwikkelingssjabloon voor een pijpverloopstuk, concentrisch of excentrisch, inclusief het volledig vlakke geval.
Gesegmenteerde Bocht
Zet de verstekhoeken en de afwikkeling per segment uit voor een gesegmenteerde (kreeftenrug) bocht, op basis van diameter, buigradius, hoek en aantal segmenten.
