1001Ferramentas
💥 Calculators

Paper Burst Index

Compute the burst index of paper, index = burst strength (kPa) / grammage (g/m²), in kPa·m²/g, normalizing the bursting pressure by the grammage. The Mullen test applies increasing pressure with a rubber diaphragm until the sheet ruptures. It is the most used strength property in packaging papers, sacks and corrugated board, reflecting combined tensile and stretch. Enter the burst strength and the grammage.

Resultado

Índice de arrebentamento do papel

O índice de arrebentamento (estouro, ou burst) = resistência ao arrebentamento (kPa) / gramatura (g/m²), em kPa·m²/g, mede a pressão que faz o papel estourar, normalizada pela gramatura. O ensaio clássico é o de Mullen: prende-se a folha sobre um diafragma de borracha circular e infla-se este com pressão hidráulica crescente até a folha romper; a pressão de ruptura é a resistência ao arrebentamento. É uma propriedade 'multidimensional' — o estouro solicita o papel em todas as direções ao mesmo tempo e combina tração e alongamento (estiramento até a ruptura), por isso é considerado um bom indicador geral da resistência. É a propriedade mais importante e mais especificada em papéis para embalagem: sacos multifolhados (cimento, ração, farinha), papelão ondulado (caixas — o índice de arrebentamento das capas, junto com o ring crush do miolo, determina a resistência da caixa empilhada) e papel-cartão. Quanto mais pesada a embalagem e mais empilhamento ela sofre, maior o índice de arrebentamento exigido — há tabelas normativas (como a regra do transportador) que ligam o peso máximo da caixa ao burst mínimo do papelão. Depende das mesmas variáveis da tração (resistência e ligação das fibras, refino) mais o alongamento (favorecido por fibras não muito refinadas e por certos tratamentos). Informe a resistência ao arrebentamento e a gramatura.

Related Tools

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Paper Tear Index

Compute the paper tear index, index = tear force (mN) / grammage (g/m²), in mN·m²/g, normalizing the tear resistance by the grammage. Tearing depends greatly on fiber length (long fibers resist more) — which is why packaging papers use long softwood fibers. It is a property that often competes with tensile (more refining raises tensile but lowers tear). Enter the tear force and the grammage.

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Paper Breaking Length

Compute the breaking length (self-rupture) of paper, L = tensile index / 9.80665, in km — the length of a paper strip that, hung from one end, would break under its own weight. It is an intuitive, classic way to express tensile strength, independent of grammage. Common papers break around 3–8 km; high-strength papers, more. Enter the tensile index (N·m/g).

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Cobb (Paper Water Absorption)

Compute the Cobb value of a paper, Cobb = mass gain (g) / area (m²), in g/m², the amount of water absorbed by one face of the paper in a standardized time (usually 60 s). It measures resistance to water penetration, crucial in packaging papers, printing (glue/ink control) and products that contact liquids. A low Cobb indicates good sizing. Enter the mass gain and the tested area.

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Paper Tensile Index

Compute the paper tensile index, index = tensile strength (N/m) / grammage (g/m²), in N·m/g, normalizing the strength by the grammage to allow comparing papers of different weights. It is one of the most important mechanical properties, linked to fiber strength, inter-fiber bonding and refining. Packaging and sack papers require a high tensile index. Enter the tensile strength and the grammage.

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Box Compression Strength (McKee)

Estimates the vertical compression strength of a corrugated box with the simplified McKee formula, BCT = 5.87 × ECT × √(board caliper × box perimeter), where ECT — the edge crush resistance measured per TAPPI T 811 (ISO 3037) — is in newtons per millimetre and both dimensions are in millimetres. The result, in newtons, is the load an empty box withstands in the laboratory compression test, with the board conditioned at 23 °C and 50% relative humidity. Because strength grows with the square root of the perimeter and linearly with ECT, doubling the perimeter buys only 41% more, while switching to a flute with 30% higher ECT buys the full 30% — upgrading the board usually beats reshaping the box. For real pallet stacking, divide the BCT by a safety factor of 3 to 5, which covers the stiffness lost to ambient humidity, the creep of board under load over weeks and the misalignment between boxes in the column. Enter the ECT, the board caliper and the box perimeter.

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Grinding Energy (Bond Work Index)

Calculate the specific comminution (grinding/crushing) energy by Bond's law, W = 10 × Wi × (1/√P₈₀ − 1/√F₈₀), from the ore's Bond work index Wi (kWh/t), and the particle sizes passing 80% of the product (P₈₀) and feed (F₈₀), in micrometers. The result, in kWh per tonne, is the energy needed to reduce the ore from feed to product size. Comminution is mining's largest energy consumer (up to 50% of the plant). The Wi index characterizes the ore's resistance to fragmentation. It is the basis for sizing mills and energy consumption. Enter the Wi, P₈₀ and F₈₀.

The results provided by this tool are for general informational and educational purposes only and do not constitute professional, financial, medical, legal, tax or accounting advice. Always confirm important decisions with a qualified professional and official sources.