Mechano‐Optical Characterization of Extrusion Flow Instabilities in Styrene‐Butadiene Rubbers: Investigating the Influence of Molecular Properties and Die Geometry
Механооптическая характеристика неустойчивостей течения при экструзии бутадиен-стирольных каучуков: исследование влияния молекулярных свойств и геометрии формующего канала
2021-03-03
SCID: 54.1/gkwf2d35
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die geometryextrusion flow instabilitiesmolecular architectureslip velocitystyrene-butadiene rubber
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Abstract (AI)
Abstract The extrusion flow instabilities of two commercial styrene‐butadiene rubbers are investigated as they vary in isomer content (1,4‐cis, 1,4‐trans, and 1,2 conformation) of the butadiene monomer and the molecular architecture (linear, branched). The investigated samples have similar multimodal molecular weight distribution. Two geometries of extrusion dies, slit and round capillary, are compared in terms of the type and the spatial characteristics of the flow instabilities. The latter are quantified using three methods: a highly pressure sensitive slit die, online and offline optical analysis. The highly pressure‐sensitive slit die has three piezoelectric pressure transducers (Δt ≈ 10−3 s and Δp ≈ 10−5 bar) placed along the die length. The characteristic frequency (fChar.) of the flow instabilities follows a power law behavior as a function of shear rate to a 0.5 power for both materials, . A qualitative model is used to predict the spatial characteristic wavelength (λ) of the flow instabilities from round capillary to slit dies and vice versa. Slip velocities (Vs) are used to quantify the slippage at slit and round capillary dies as well.
Key Findings
1
A qualitative model predicted the characteristic instability wavelength when translating between round-capillary and slit-die geometries.
2
Extrusion instabilities were investigated in two styrene-butadiene rubbers differing in butadiene isomer content and molecular architecture, while having similar multimodal molecular-weight distributions.
3
Instability frequencies measured by pressure-sensitive and optical methods followed a power-law dependence on shear rate with an exponent of 0.5 for both materials.
4
Slip velocities quantified material slippage at both slit and round-capillary dies, alongside pressure and optical measurements.
5
Slit and round-capillary dies produced different types and spatial characteristics of extrusion-flow instabilities, demonstrating a strong influence of die geometry.
Research Object
Extrusion flows of two commercial styrene-butadiene rubbers through slit and round-capillary dies
Research Subject
Flow-instability characteristics and their dependence on rubber molecular properties, die geometry, shear rate, and wall slip
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2021-03-03
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