Aluminum foil thickness reduction rolling technology refers to the systematic engineering process through which aluminiomu materials are reduced from cast slab or strip to their final thin-foil thickness through controlled casting, pre-rolling, continuous rolling, lubrication, annealing, online inspection, and slitting. For ultra-thin products from 6–30 μm—especially 6–9 μm pharmaceutical foil and 10–15 μm food/lamination foil—this technology determines thickness tolerance, surface integrity, darí-ini, and pinhole rate. It is one of the most decisive factors influencing product competitiveness in global markets.
By dividing the line into 5–10 tension zones, each controlled by high-precision load cells and servo-controlled brakes, tension uniformity greatly improves shape stability and reduces thickness fluctuation.
For ultra-thin foil, nanometer-scale changes in oil film thickness affect friction coefficient and heat generation. A typical lubricant system involves:
Low friction enhances elongation, but overly low values increase the risk of roll sticking. Precision balancing of viscosity and EP additives is essential.
Controlled cold reduction + annealing results in fine, uniform grains, low anisotropy, and high deep-draw/lamination performance. Alloying micro-adjustments can enhance crystal stability.
Background Henan Huawei Aluminum Co., Ltd aimed to enter the high-end pharmaceutical foil market and needed to improve the thickness stability and pinhole rate of its 7 μm aluminum foil. The original line used a conventional four-high mill + batch annealing, with outdated AGC and low-resolution thickness measurement.
Technical Upgrade Strategy
Awọn abajade (Quantified)
Ipari Foil-quality improvement is a system-level upgrade across melt cleanliness, mill precision, control algorithms, lubrication chemistry, and annealing technology—not a single-point modification.
A packaging company observed delamination bubbles when laminating 10 μm foil with PET. Analysis showed excessive rolling oil residue incompatible with hot-melt adhesive. After degreasing optimization (<0.5 g/m² residual oil) and lamination temperature curve redesign, bubble rates dropped 94%, and line output increased 18%.
Aami: What causes the main instability in final foil thickness? A: Variations in melt quality, equipment precision (rolls/tension/AGC), and lubrication/annealing inconsistencies.
Q2: Why do small-diameter work rolls improve thickness control? A: They provide higher deformation concentration and allow precise elastic compensation through the backup-roll system—ideal for ultra-thin foil.
Iwe asan: What is the practical advantage of MPC-based AGC? A: MPC predicts and compensates process delays and multi-variable coupling (tension–thickness–temperature), outperforming traditional PID.
Q4: How should final-rolling lubricants be selected? A: Use low-viscosity, shear-stable synthetic oils with micro-filtration (1–5 μm) and controlled residual oil for downstream annealing/lamination.
Q5: What investments are essential to achieve ±0.001 mm tolerance? A: High-resolution thickness gauges, MPC-based AGC, precision roll systems, and a clean melt + advanced lubrication environment.