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Cable tray

U-formet bukket pladebakke — bund og to opbukkede sider, evt. med retvendt flange og perforeret bund, i en given længde.

Exact flat patternInside dimensions16 dimensions9 presets
Elektriker · Automatiktekniker …
Electrician
cable tray · kabelrende …
cable tray · kabelrende · føringsvej · installationsbakke · lysbakke · pladebakke · kabelkanal-åben · perforeret bakke · cable tray · U-bakke · elbakke · svagstrømsbakke

How true is the flat pattern?

The surface is developable and the flat pattern is solved in closed form. Cut the part to the drawing and it fits — the whole uncertainty sits in the K-factor, which belongs to the material and the machine, not to the geometry.

Dimensions are entered as: Inside dimensions. The flat pattern itself is always computed on the neutral fibre — at Ø800 in 3 mm sheet the difference between the inside and the outside dimension is 18.8 mm of developed width, and then the seam does not meet.

The vocabulary of bending

The words and formulas the trade uses for a flat pattern. The symbols are the same throughout Discebo: α is the bend angle in degrees, R the inside bend radius, t the sheet thickness and K the K-factor — all in millimetres.

Flat pattern (development)
The part's surface laid out flat as one continuous cutting outline — the way the sheet looks BEFORE it is bent or rolled. Only a developable surface can be unfolded exactly; a doubly curved surface cannot be laid flat without stretching the material.
Flat length
The flat length the part must be cut to so the dimensions come out right once it is bent. It is either the sum of the outside dimensions minus the bend deductions, or the sum of the flat legs plus the bend allowances — both routes must give the same number.L = Σ(udvendige mål) − Σ(BD) = Σ(flade ben) + Σ(BA)
Bend allowance
The length of material that sits in the bend itself, measured along the neutral fibre. The bend allowance is always positive and is added to the flat legs.BA = (π/180) · α · (R + K · t)
Bend deduction
The amount subtracted from the sum of the outside dimensions, because the two outside dimensions between them count the corner twice. Here the bend deduction is taken as POSITIVE and subtracted; DIN 6935 writes the same quantity as the compensation value v with the opposite sign.BD = 2 · OSSB − BA
Outside setback
The distance from the theoretical outside corner point in to where the bend starts. Above 90°, tan(α/2) is clamped to at most 1 per DIN 6935, so the number does not explode towards 180°.OSSB = tan(α/2) · (R + t)
Compensation value v to DIN 6935
The standard's own way of writing the same corner loss: the flat length is a + b + v, where v is negative. Our bend deduction is therefore the same quantity with the opposite sign — never flip one without the other.L = a + b + v ⇒ v = −BD
K-factor
Where the neutral fibre sits in the sheet, given as a fraction of the sheet thickness. DIN 6935 writes the correction factor k, which applies to the neutral line in the form (R + t·k/2); the American CAD convention writes (R + K·t), so K = k/2.k = 0,65 + 0,5 · log₁₀(R/t), k ≤ 1,0 ⇒ K = k/2
Neutral fibre
The layer in the sheet that is neither stretched nor compressed when the part is bent. The flat pattern is always computed on the neutral fibre — which is why it matters whether the drawing's dimensions are inside or outside.
Bend angle
The angle the material is turned through, not the angle between the legs. The bend angle is 180° minus the included angle, so a square corner is 90° and a seam fold is 180°.α = 180° − åbningsvinklen
Inside bend radius
The radius on the inside of the bend. It is set by the tooling and the material, not by the drawing — too small a radius cracks the part in the outer fibre.
Sheet thickness
The thickness of the material. It enters every single bend allowance, so sheet delivered 0.2 mm thicker than ordered shifts the flat length at every bend.
Fold line
The line on the flat pattern where the part is to be bent. It is drawn but never cut through — in a laser file it therefore sits on its own layer.
Test bend
A strip of known raw length, bent in the material and the tooling that production will use. Measure the two outside legs afterwards and the bend deduction and K-factor can be worked back. The machine's own measured bend table beats any table.BD_målt = (A + B) − L₀

DIN 6935 covers only cold bending of flat products in structural steel. Stainless, aluminium, copper, brass and titanium zinc are not included — there the formulas are an extrapolation, and a test bend in the actual material settles it.

The dimensions you type

16 fields. The starting values belong to the figure itself — they live in one place in the code, so the tool, the share link and the smoke test can never disagree about what «default» means.

Dimension in mmIntervalStandardExplanation
Sidernes topkantkanttypeSkarp topkant (afgratet) · Sikkerhedssik (ombukket topkant, 90°) · Retvendt flange (opadvendt kant-ombuk)Skarp topkant (afgratet)Skarp kant afgrates blot; sikken bukkes 90° om på den frie kant; den retvendte flange er en opadvendt kant-ombuk der stiver toppen af og beskytter kablerne.
Indvendig bredde (bund)bredde_bund50–1.000 mm · step size 10200 mmDet frie kabelrum på tværs. Kæden regnes på ydermålet bredde + 2·t.
Indvendig sidehøjdesidehoejde25–200 mm · step size 560 mmDet frie kabelrum i højden, fra bundens inderside til topkanten.
Bakkelængdelaengde200–6.000 mm · step size 503.000 mmStandardsektioner er ofte 3.000 mm. Blanketten er tværprofilets udfoldning × denne længde.
Sik-/flangehøjdeconditionalkant_hoejde6–40 mm · step size 115 mmSikkens ombuk eller flangens indvendige højde. Den retvendte flange stiver topkanten af.
Perforeret bundperforeringon / offoffHuller/slidser i bunden til ventilation, kabelbindere og afvanding. De lægges i bundens flade felt.
Hulformconditionalperf_formRunde huller · Langhuller (slidser langs bakken)Langhuller (slidser langs bakken)
Huldiameter / slidsbreddeconditionalperf_diameter3–40 mm · step size 0,57 mmRunde huller: diameteren. Langhuller: slidsens bredde.
Slidslængdeconditionalperf_slids6–80 mm · step size 125 mmLanghullets længde langs bakken. Skal være mindst lig slidsbredden.
Rækker på tværs af bundenconditionalperf_raekker1–12 stk. · step size 13 stk.Antal hulrækker fordelt jævnt over bundens flade bredde, symmetrisk om midten.
c/c langs bakkenconditionalperf_cc8–200 mm · step size 138 mmHulafstand langs bakkens længde. Standard-perforeringer bruger ofte 38 mm deling.
Goods thicknessgodstykkelse0,7–3 mm · step size 0,051 mmBakkeplade. Hvilken tykkelse lasten KRÆVER står i EN 61537 — det er et input her.
MaterialmaterialevalgSom værkstedets (fra opsætningen) · Varmforzinket stålplade (DX51D+Z) · Stainless steel · AluminumSom værkstedets (fra opsætningen)

Advanced fields

3

Hidden by default — they have a sensible default, and most parts do not need them.

Dimension in mmIntervalStandardExplanation
Kantafstandconditionalperf_kant5–100 mm · step size 120 mmFri kant om perforeringen, mod både bukkelinjer og bakkeender. Mindst 2,5·t + R fra et buk.
Inside bend radiusbukkeradius0–5 mm · step size 0,10 mm0 = R sættes lig godstykkelsen, som luftbukning selv giver. Maskinens bukketabel vinder over enhver formel.
Coil-/pladebreddecoilbredde600–2.000 mm · step size 501.250 mmBakkeplade roll-formes/skæres af bånd. Blanketten skal kunne ligge inden for bredden i mindst én af sine to retninger.

Ready-made presets

A preset sets every dimension at once. The name is often the word the part goes by in the workshop — the library's search knows them all.

Lysbakke 100 × 60 (perforeret)

100 mm bred, 60 mm høj, langhulsperforeret bund — 1,0 mm varmforzinket

Also known as: lysbakke · kabelbakke lille · 100x60 · installationsbakke · perforeret bakke

Perforeret bakke 200 × 60

Klassisk 200 × 60 installationsbakke — tre rækker langhuller, retvendt flange, 1,0 mm

Also known as: 200x60 · kabelbakke standard · perforeret bakke · installationsbakke · gitterløs bakke

Kraftig bakke 400 × 110

Bred bæreevnebakke 400 × 110 med retvendt flange og 1,5 mm plade — perforeret bund

Also known as: 400x110 · kraftig bakke · bæreevnebakke · hovedføringsvej · bred kabelbakke

Ubrudt bund 150 × 50 (EMC-skærm)

Uperforeret bund til støjfølsomme installationer — hel plade giver bedre skærmvirkning

Also known as: ubrudt bakke · emc bakke · tæt bund · skærmet bakke · 150x50

Rustfri bakke 200 × 60

Rustfrit 1,5 mm til fugtige og korrosive miljøer — retvendt flange, ubrudt bund

Also known as: rustfri kabelbakke · syrefast bakke · 1.4301 bakke · korrosionsfast bakke · vådrumsbakke

Fordelingsbakke 600 × 100

Bred hovedføringsvej 600 × 100, 2,0 mm — tværblanketten ca. 806 mm skal gå i coilbredden

Also known as: 600x100 · fordelingsbakke · hovedvej · bred føringsvej · storbakke

Datakabelbakke 100 × 50 (fintperforeret)

Smal bakke til svagstrøm/data med runde huller og sik — 1,0 mm

Also known as: datakabelbakke · svagstrømsbakke · netværksbakke · 100x50 · signalbakke

Aluminium letbakke 200 × 60

Let, korrosionsfast aluminium 1,5 mm — 2,70 mod stålets 7,85 kg/dm³, retvendt flange

Also known as: aluminiumbakke · alubakke · letbakke · korrosionsfast bakke · offshore bakke

Kort pasbakke 200 × 60 (500 mm)

Kort tilpasningsstykke på 500 mm — samme profil, skåret i længden på pladsen

Also known as: pasbakke · passtykke · kort bakke · tilpasningsstykke · mellembakke

Reservation

Read them before the part is cut. They are here because they cannot be calculated away — not as legal text, but as craft.

  • Bæreevne og spænd mellem bæringer er IKKE dækket. Hvor langt en bakke må spænde med en given kabellast afhænger af bredde, godstykkelse og bæringstype og er klassificeret ved typeprøvning efter EN 61537 — en udfoldning er ikke en bæreevnedokumentation.
  • Jordforbindelse og potentialudligning er IKKE dækket. En metalkabelbakke er en fremmed, ledende del og skal jordforbindes efter DS/HD 60364-5-54; hver sektionssamling skal have dokumenteret ledningsevne.
  • Figuren er ikke et certificeret bæresystem. EN 61537 klassificerer bakkens bæreevne, sikkerhedsfaktor og montageafstande — de er et input her, ikke et resultat af mønstret.
  • Brandklasse og funktionssikring (fx E30/E90) er IKKE dækket. Kabelanlæg med krav om funktionsbevarelse under brand skal udføres som et certificeret system efter EN 50577 / DIN 4102-12.
  • Perforeringens indflydelse på bæreevnen er ikke regnet. Huller nedsætter tværsnittets inertimoment; den tilladte last for en perforeret bakke står i bakkens egen typeprøvning.
  • Fastgørelse, ophæng, dilatation og lastfordeling er ikke dækket. Afstanden mellem ophæng og valg af bæringer hører til føringsvejsprojektet.
  • Springback er ikke kompenseret. Udfoldningen regnes på de ønskede 90°-buk; hvor meget der skal overbukkes afhænger af materiale, tykkelse og V-åbning og hører til på maskinen.
  • Kun geometrien er sporbar. Godstykkelse, hulmønster og materiale er input; de skal svare til et rigtigt bakkeprogram — værktøjet opfinder hverken bæreevne eller hulbillede.

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