Printing Press Drive Architecture — Where Helical Gears Drive the Process
A modern sheet-fed or web-offset printing press contains multiple spiraalne käik drive trains, each with distinct accuracy and noise requirements:
The plate cylinder, blanket cylinder, and impression cylinder of each printing unit are synchronised by a chain of spiraalsed hammasrattad driven by the main press motor. Registration accuracy is set entirely by the transmission error of these gears — any periodic velocity variation at the cylinder pitch equals a colour-register deviation on the printed sheet. Module M3–M5, DIN Class 4–5, anti-backlash specification.
The ink rollers are driven from the cylinder gear train through a reduction spiraalne käik pair. The ink train tolerate slightly higher transmission error than the cylinder train (ink layer averaging smooths small velocity variations), but must maintain the set roller-to-cylinder speed ratio accurately for consistent ink density. M2–M4, DIN Class 5–6, standard backlash.
Conventional dampening systems use spiraalsed hammasrattad to drive the water form and metering rollers at precisely set speed ratios relative to the plate cylinder. Stainless steel or SS316L gears are used where dampening solution contamination or corrosion is a concern. M2–M3, DIN Class 6–7.
Registration Accuracy — Translating Print Quality to Gear Specification
Colour registration is the alignment of successive ink layers — in a four-colour press, cyan, magenta, yellow, and black are printed in separate units and must align to within the human eye’s resolution limit for sharp, accurate colour reproduction. The registration error budget is typically:
Total registration tolerance (typical commercial): ±0.05–0.10 mm
Budget allocation:
Mechanical plays (sheet grip, deliveries): ±0.02–0.03 mm
Temperature/humidity sheet growth: ±0.01–0.02 mm
Gear transmission error contribution: ±0.01–0.02 mm
The gear transmission error (TE) contribution limit of ±0.01–0.02 mm translates directly to an angular velocity variation at the cylinder shaft. For a printing cylinder of diameter D = 400 mm rotating at 120 RPM (typical for a medium-speed sheet-fed press):
Allowable angular position error at cylinder = 0.01 mm / (π × 400 mm) × 360° = 0.00286°
At the main cylinder gear (M4, z=100, d=426mm, pitch-line velocity 2.67 m/s):
Equivalent transmission error TE ≤ 0.01 × π × 426 / (π × 400) × Mn = 2.6 µm at pitch circle
A transmission error of 2.6 µm or below at the pitch circle of the main cylinder spiraalne käik is achievable with DIN Class 4–5 precision ground gears with correctly specified tip relief — but not with hobbed DIN Class 7–8 gears (TE typically 15–25 µm), which would cause visible colour misregister on high-quality print jobs.
DIN Accuracy Class Requirements for Printing Press Helical Gears

DIN Class 4–5 precision ground spiraalne käik for printing press cylinder drive — the HÖFLER ground tooth flanks (Ra ≤ 0.2 µm) with parabolic tip relief (C_α = 8–12 µm for typical printing press load level) reduce transmission error to 2–5 µm at the pitch circle, meeting the colour registration tolerance budget for high-quality commercial and packaging printing
| Press Type | Print Quality Target | Register Tolerance | Required DIN Class | Tip Relief C_α |
|---|---|---|---|---|
| High-speed web offset (newspaper) | Screen ruling 60–85 lpi | ±0.15–0.25 mm | Class 6–7 (hobbed acceptable) | 10–20 µm (standard) |
| Commercial sheet-fed offset | Screen ruling 150–175 lpi | ±0.05–0.10 mm | Class 5–6 (ground mandatory) | 8–15 µm parabolic |
| Premium packaging gravure / flexo | Screen ruling 175–200 lpi | ±0.02–0.05 mm | Class 4–5 (HÖFLER ground) | 5–10 µm parabolic |
| Security and banknote printing | Fine line and microtext | ±0.01–0.02 mm | Class 3–4 (premium ground) | 3–8 µm precision parabolic |
Anti-Backlash Design for Printing Press Helical Gears
Why Backlash Is Critical in Printing Drives
Modern printing presses reverse the main drive direction for plate washing, blanket washing, and sheet-path clearing operations. At the moment of direction reversal, a conventional spiraalne käik pair with standard backlash (DIN 3967 class ef: 0.08–0.16 mm for M4) produces a brief impact as the tooth flanks change from the drive side to the coast side. At the cylinder pitch circle, this backlash impact represents a position step of up to 0.16 mm — catastrophic for colour registration on any print produced immediately after a reversal event.
Split Scissor Gear Anti-Backlash Solution
The standard anti-backlash solution for printing press spiraalsed hammasrattad is the split “scissor” gear (Tandempaar in German terminology): two identical gear wheels are mounted coaxially on the cylinder shaft, pre-twisted relative to each other by a torsion spring. The spring preload keeps one half pressed against the left flank of the mating pinion, and the other half pressed against the right flank — maintaining continuous contact on both flanks simultaneously. At direction reversal, the transition from drive flank to coast flank is continuous (no impact) because both flanks are already loaded by the spring. The spring stiffness must be set above the maximum breakaway torque of the drive but below the rated torque — typically 5–15% of the rated torque at the cylinder gear.
Alternative for lower-cost presses: specifying DIN 3967 tooth thickness class g or h (tight backlash, 0.02–0.06 mm for M4) combined with very precise housing centre distance (±0.005 mm tolerance). This reduces backlash impact to below 0.06 mm — acceptable for commercial quality printing but not for packaging or security printing.
Noise Specification for Printing Press Helical Gear Drives
Printing halls are regulated workplaces with noise exposure limits. The EU Machinery Directive and national noise at work regulations typically require that press operators do not exceed 80 dB(A) time-weighted average. For a large printing press with 8–12 printing units and ancillary equipment, the total press noise budget allocates approximately 68–72 dB(A) to the main spiraalne käik cylinder drives. This is achievable with DIN Class 4–5 ground gears with parabolic tip relief — but not with hobbed gears, which typically produce 78–85 dB(A) at the cylinder train speeds of 1–3 m/s pitch-line velocity.
Material and Lubrication for Printing Press Helical Gears
Most printing press main cylinder spiraalsed hammasrattad use 20CrMnTi or 17CrNiMo6 gas carburized and HÖFLER ground, in M3–M5, with the following specific requirements:
- Food-safe/indirect food contact lubricant: For food packaging presses, the lubricant must be NSF H2 or equivalent indirect food contact rated. ISO VG 150–220 PAO synthetic oil is standard — it also provides lower traction coefficient (better efficiency) and longer service interval than mineral oil.
- Corrosion resistance for dampening system gears: Spiraalsed hammasrattad in direct contact with dampening solution (isopropanol / water / fountain concentrate) must be in SS316L stainless steel or have a corrosion-resistant coating. Korea Ever-Power supplies SS316L printing gears to DIN Class 5–6 (SS316L is softer than carburized steel — maximum DIN Class 5 achievable with current grinding practice).
- Low-noise grease option: For small printing press ink train gears (M2–M3) that run in open configuration rather than oil bath, a lithium-complex grease with fine particle size and low noise additive package is specified. Avoid standard open-gear lubricants (too viscous, absorbs paper dust into the tooth mesh).
Korea Ever-Power — Printing Press Helical Gear Supply

Korea Ever-Power DIN Class 4–5 hard tooth flank spiraalne käik for printing press cylinder train — transmission error measured and reported on gear analyser before shipment; parabolic tip relief verified at the specified roll angle; tooth thickness within DIN 3967 class g–h for anti-backlash assembly
Korea Ever-Poweri plokid spiraalsed lõigatud hammasrattad for printing press cylinder drives, ink train gears, and dampening system gears in M2–M8, DIN Class 3–6. The gear analyser report for every precision printing gear includes the transmission error (TE) curve derived from the profile deviation measurement — giving the press engineer the actual expected registration contribution from the gear, not a class estimate. For split scissor gear (anti-backlash) sets, Korea Ever-Power produces the matched pair with confirmed W_k range for both halves to ensure equal spring preload on both flanks. As a direct spiraalhammasrataste tootja, Korea Ever-Power’s engineering team reviews the registration tolerance budget and recommends the correct DIN class, tip relief magnitude, and tooth thickness class for the specific press speed and cylinder diameter. Browse the spiraalkäigukasti tootevalik for printing and precision applications.
Korduma kippuvad küsimused
Thermal expansion of the press frame and cylinder bearings changes the effective centre distance between mating spiraalsed hammasrattad as the press warms from cold start to operating temperature. For a press frame of 2 m length in cast iron, a temperature rise from 20°C to 45°C expands the frame by approximately 0.25 mm (α_cast iron ≈ 11 µm/m·°C × 2 m × 25°C). This 0.25 mm centre distance change affects backlash and slightly changes the tooth pair overlap — producing a temporary register shift during warm-up that stabilises once the press reaches thermal equilibrium (typically 20–40 minutes after start). This is a press frame and thermal management issue, not a gear specification issue — correctly ground spiraalsed hammasrattad actually show less temperature sensitivity than hobbed gears because their lower transmission error is less sensitive to small centre distance changes.
A well-specified carburized and ground DIN Class 4–5 printing press spiraalne käik maintained in a clean oil bath should reach 15,000–25,000 operating hours before tooth wear causes the transmission error to increase above the registration tolerance. In practice, many press manufacturers schedule gear inspection (and replacement if register is affected) at 10-year intervals for moderate-duty presses (single shift, ~4,000 hours/year) — the 40,000 hour inspection interval often sees very little measurable wear on the tooth flanks of correctly specified and lubricated gears. The most common reason for early replacement is not fatigue — it is operator-induced damage from running plates dry (no ink, no dampening solution), which removes lubrication from the exposed gear sections and causes scuffing within hours.
Yes — provided the tooth flank wear is uniform (not pitting, which would require removal of more material than the case allows) and the remaining case depth after re-grinding exceeds the minimum specified (ECD ≥ 0.6 × Mn). Korea Ever-Power re-grinds printing press spiraalsed hammasrattad by measuring the existing tooth profile on the gear analyser, determining the material removal needed to restore the profile to the nominal involute within DIN Class 4–5 limits, and performing the corrective grinding pass. Re-grinding is typically 40–60% of the cost of a new gear and produces a result with the same accuracy class — making it worthwhile when the remaining case depth allows.
Yes — indirectly. A higher helix angle β gives a higher overlap contact ratio ε_β, which reduces the transmission error amplitude for the same profile deviation. At ε_β ≥ 2 (achieved at β = 25° with adequate face width), the transmission error is reduced to approximately 30–50% of its value at ε_β = 1 — a direct register improvement without any change in profile accuracy class. This is why printing press spiraalsed hammasrattad typically use β = 20–25° rather than the minimum 15° that would be adequate for an industrial drive: the extra 5–10° of helix angle provides a 30–50% TE reduction that directly translates to improved colour register, for the same DIN Class grinding cost.
Precision Printing Press Helical Gear Enquiry
Provide the press cylinder diameter, module, tooth count, and register tolerance. Korea Ever-Power calculates the required transmission error limit, specifies DIN class and tip relief, and produces the gear with TE measured and reported on the gear analyser certificate.
DIN Class 3–6 · TE curve from analyser · Parabolic tip relief · Anti-backlash scissor pairs · SS316L available · MOQ 1 piece
Toimetaja: Cxm