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Improper selection of conical grinding discs caused the paper mill to burn so much more electricity?

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Improper selection of conical grinding discs caused the paper mill to burn so much more electricity?
Neueste Unternehmensnachrichten über Improper selection of conical grinding discs caused the paper mill to burn so much more electricity?

As the pulp and paper industry advances toward digitalization and lean manufacturing, precise control of the refining process has become a key benchmark for evaluating a mill's equipment standards and production management capabilities. As critical equipment in the refining section, conical refiners play a decisive role in determining core physical properties such as paper uniformity, ring crush strength, and tensile index.
However, many paper mills have long struggled with high energy consumption, rapid refiner plate wear, and frequent fluctuations in paper quality metrics. The root cause lies in a significant mismatch between the refiner plate's structural design and the characteristics of the pulp being processed.

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Refiner plates are not merely simple consumables; their tooth geometry directly governs the micromechanical behavior of fibers within the refining zone. Pulp fibers from different sources vary vastly in morphology and physical properties, necessitating a differentiated approach to plate selection:

Softwood Pulp (Long Fibers): Long fibers possess immense tensile potential; refining must prioritize "fibrillation and lateral swelling" over "fiber cutting." A design featuring greater groove depth and wider tooth pitch expands flow channels within the refining zone and reduces localized impact loads. This allows long fibers to undergo gentle kneading and fibrillation, thereby maximizing the paper's tear and tensile strength.

Hardwood Pulp (Short Fibers): While abundant in number, short fibers suffer from inherent limitations regarding inter-fiber bonding. To rapidly increase specific surface area and hydrogen bonding, plate designs should combine shallow groove depths with high tooth density. This increases the frequency of micro-kneading actions per unit of time while preventing pulp accumulation and energy dissipation often caused by deep grooves.

Recycled Fiber: Recycled pulp often exhibits severe hornification and contains complex solid impurities, placing dual demands on the refiner plate's mechanical strength and wear resistance. Selecting a medium tooth density paired with highly wear-resistant, impact-tough alloys—alongside optimized feed channels at the inlet—effectively withstands impurity impacts, stabilizes the freeness level, and significantly reduces the frequency of plate replacements. A systematic approach to selecting refining plates must go beyond mere material procurement and consider them within the context of the entire process network. The plate pattern determines the ratio of fiber fibrillation to cutting, while bar density regulates the frequency and intensity of energy input; meanwhile, the material properties dictate geometric stability under high-load and highly corrosive operating conditions. Field experience demonstrates that precisely matching plate parameters to actual process conditions can reduce the total energy consumption of the refining stage by 10%–20% and significantly cut downtime caused by plate wear.

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To address the technical bottlenecks papermakers face in the refining stage, HUATAO Company has moved away from the traditional model of selling standardized parts, instead launching customized refining plate solutions tailored to specific on-site operating conditions. By comprehensively gathering and analyzing data—such as pulp furnish ratios, energy consumption baselines, finished paper quality metrics, and actual conical refiner operating parameters—HUATAO’s technical team can design the optimal combination of plate patterns and materials, helping papermakers achieve a dual advantage in both cost and quality amidst fierce market competition.


Email: Lucy.chai@huataogroup.com

WhatsApp: +86 15373883537

www.refinerdisc.com


Kneipen-Zeit : 2026-09-20 09:21:43 >> Nachrichtenliste
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