Paklausos fonas
Klientas reikalavo a tiesinimo mašina skersmens tiesinimo strypams 20 – 80 mm ir ilgis iki 12 metrų. Būtina, kad tiesumas po tiesinimo pasiektų 0.15 mm/m, o įranga pagaminta iš tokių medžiagų kaip konstrukcinis plienas ir nerūdijantis plienas.
Paklausos analizė
Three requirements drove the design: the bar size – 20 į 80 mm skersmens, iki 12 m length – which pushes frame rigidity, roller spacing and drive sizing; į 0.15 mm/m straightness specification, which makes measurement and support conditions part of the machine specification; and a material mix of structural and stainless steel, which requires requalifiable correction parameters rather than one fixed recipe.
Schemos projektavimas
Remiantis kliento paklausos analizės rezultatais, mūsų inžinieriai sukūrė lygiavimo sprendimų rinkinį, specialiai pritaikytą kliento poreikiams. Plane naudojama didelė ritininio tiesinimo mašina, kuri turi tokias savybes:
(1) Tvirta struktūra: Pagaminta iš didelio stiprumo konstrukcinio plieno ir nerūdijančio plieno medžiagų, jis gali atlaikyti dideles tiesinimo jėgas ir užtikrinti įrangos stabilumą bei patikimumą.
(2) Didelio tikslumo tiesinimas: Naudojant pažangią tiesinimo technologiją ir didelio tikslumo ritinėlių sistemą, juo galima pasiekti didelio tikslumo strypų, kurių skersmuo, tiesinimą 20-80 mm ir ilgis iki 12 metrų, su tiesumu 0.15 mm. / ryžių.
(3) Aukštas automatizavimo laipsnis: Įrengta pažangi valdymo sistema ir perdavimo sistema, jis gali realizuoti automatizuotą veikimą ir pagerinti gamybos efektyvumą.
(4) Lengvas valdymas: Humanizuotas dizainas palengvina ir pagreitina darbą, sumažinti operatorių įgūdžių reikalavimus.
Įrangos pasirinkimas
Po to, kai buvo baigtas plano projektavimas, klientui parinkome jo poreikius atitinkančią didelę ritininio tiesinimo mašiną. Tiesinimo mašina pagaminta iš aukštos kokybės konstrukcinio plieno ir nerūdijančio plieno medžiagų, ir yra aprūpintas pažangiomis valdymo sistemomis ir perdavimo sistemomis, kad atitiktų klientų reikalavimus.


Diegimas ir derinimas
Baigus įrangos pasirinkimą, mes pasirūpiname, kad profesionalūs technikai montuotų ir derintų įrangą klientui. Diegimo ir derinimo proceso metu, Mes griežtai laikomės darbo procedūrų, kad užtikrintume įrengimo kokybę ir įrangos derinimo poveikį. Tuo pačiu metu, taip pat organizuojame mokymus savo klientams’ operatoriams, kad jie įsisavintų įrangos veikimo būdus ir techninės priežiūros įgūdžius.
Aptarnavimas po pardavimo
Baigus įrangos montavimą ir paleidimą, klientams teikiame aukštos kokybės garantinį aptarnavimą. Mūsų aptarnavimo po pardavimo komanda reguliariai prižiūri ir prižiūri klientus’ įrangą ir operatyviai išsprendžia problemas, su kuriomis susiduria klientai naudojimo metu. Tuo pačiu metu, taip pat teikiame techninių konsultacijų ir mokymo paslaugas savo klientams, kad padėtume jiems pagerinti įrangos efektyvumą ir priežiūrą.
Engineering Review: What Makes a 12-Meter Bar Demanding
Looking back at this project as an engineering exercise rather than a sales narrative, the numbers explain why an off-the-shelf machine would not have been the answer. A bar twelve meters long with a diameter in the 20–80 mm range has an extreme length-to-diameter ratio at the thin end. At that slenderness, the bar is not a rigid body — it sags under its own weight between any two supports, and the sag itself is a large fraction of the straightness budget. Everything about the machine concept follows from that one fact: the support and roller layout must carry the bar along its length instead of letting it droop, the measurement must be interpreted in a defined support state, and handling between stations must not introduce fresh bends that the machine then has to remove.
The material mix — structural steel alongside stainless steel — matters just as much. The two families differ in yield behavior and in how they respond to repeated bending, so a roller setting that is appropriate for one can over- or under-work the other. In practice this means the correction parameters are material-specific, and changeover between material families is a controlled setup change, not a dial adjustment. Readers who face the same mix will recognize the underlying issue from reverse-loading behavior in straightening: bars arrive with mill and handling history, and the process must respect it.
What the Straightness Requirement Actually Governs
The specification in this case — straightness of 0.15 mm per meter — is expressed per unit length, which is worth unpacking because it drives both the machine design and the acceptance method. A per-meter limit constrains local curvature, not only the total deviation between two end points: a bar can show a modest overall bow and still fail the per-meter requirement wherever a short-radius kink sits, and conversely a gentle long-wave bow can stay within it. That distinction determines where the correction effort goes. Multi-roller straightening addresses it by working the bar continuously along its length rather than concentrating correction at discrete peaks, the route compared in presas prieš tiesinimą voleliu.
The same requirement also governs measurement. On a twelve-meter bar, verifying straightness is meaningful only in a stated support condition — the bar must either be supported so that sag is removed from the reading, or measured on centers with rotation, or measured in the same state the customer will use at acceptance. This is the general lesson of loaded versus released measurement applied at unusual scale: on long bars, the setup is not a detail of the measurement, it is half of it.
Process Discipline Behind Long-Bar Correction
Roller straightening of long bars is a sequence, not a single pass to a number. The incoming bars are mapped — where the worst bows sit, whether the error is a single long wave or multiple short kinks — and the roller passes are then run incrementally, with the bar re-measured between passes in a consistent support state. Adjustments converge toward the requirement rather than trying to reach it in one aggressive pass, because over-rolling a slender bar introduces helical shape and end effects that are harder to remove than the original bow. Between material families, the setup is requalified on sample bars, and the operating record keeps the pass count and settings per material and diameter so that the next lot starts from evidence rather than from memory.
Handling deserves a paragraph of its own, because on parts of this length it is a quality process, not logistics. Lifting a 12-meter bar at the wrong points bends it; letting one end drop during transfer writes a new kink near the tip. Bars of this class are supported along their length during load and unload, and the infeed and outfeed tables are treated as part of the straightening system. Readers running similar long sections — long steel bar roller straightening ir elevator guide rail production follow the same logic — will find that half the achieved straightness is decided before the bar ever reaches the rollers.
What This Case Establishes
The engineering sections above are the durable content of this case: a per-meter straightness specification constrains local curvature everywhere along the bar, not just end-to-end bow; the support and measurement conditions define what the number means at twelve meters; handling is a quality process in its own right; and the material mix makes correction parameters a requalification item rather than a set-and-forget recipe.
If you are evaluating a tiesinimo mašinos gamintojas for long-bar work, susisiekite su mumis with the bar cross-sections, lengths and straightness specification.
DUK
Why is a per-meter straightness spec harder than a total bow limit?
Because it constrains local curvature everywhere along the bar, not just the deviation between two measured end points. A bar with one short-radius kink fails a per-meter limit even when its overall bow looks small, so the correction method must work the full length — and the measurement method must sample enough of the length to catch local violations.
Does bar sag under its own weight count against straightness?
It depends entirely on the support state in which the drawing defines straightness. That is why long-bar projects specify the measurement condition — on centers, on defined supports, or in the customer’s inspection state — before anyone argues about numbers. A reading taken with the bar drooping between distant supports measures the setup as much as the part.
Can one roller setup serve both structural steel and stainless bars?
Not without requalification. The two material families differ in yield and springback behavior, so the same roller adjustment produces different permanent set in each. Production practice is to treat a material change as a controlled setup change with a sample-bar confirmation, keeping the settings per material and diameter on record.
What portion of long-bar straightness is decided outside the machine?
A large one. Incoming bar condition, transport support, load and unload handling, and the infeed and outfeed table state all write bends into the bar before and after correction. Projects that treat handling as part of the quality system consistently spend less correction effort per bar than projects that treat it as logistics.