Abstract
Danfeng Xiong, Zimu Li, Longbao Yu, Lewen Zhang
Abstract
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Institutions
Provenance
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Coke deposition and run length in industrial naphtha thermal cracking furnaces via a quasi-steady state coupled CFD model
10.1002/cjce.24741 · doi-reference
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10.1016/1359-4311(95)00013-4 · doi-reference
Heat transfer and friction in turbulent pipe flow with variable physical properties
10.1016/s0065-2717(08)70153-9 · doi-reference
Real-time reconstruction of coke-layer thickness in ethylene cracking furnaces using a radiometrically calibrated heat-transfer model
10.1016/j.measurement.2026.120976 · doi-reference
Estimation of fouling resistance in a phosphoric acid/steam heat exchanger using inverse method
10.1016/j.applthermaleng.2021.116935 · doi-reference
Inverse estimation of hot-wall heat flux using nonlinear artificial neural networks
10.1016/j.measurement.2021.109648 · doi-reference
Heat flux estimation in an infrared experimental furnace using an inverse method
10.1016/j.applthermaleng.2009.03.014 · doi-reference
Vision-based measurement of temperature distribution in a 500-kW model furnace using the two-colour method
10.1016/s0263-2241(00)00010-5 · doi-reference
Review of temperature measurement
10.1063/1.1305516 · doi-reference
A method for measuring tube metal temperature of ethylene cracking furnace tubes based on machine learning and neural network
10.1109/access.2019.2950419 · doi-reference
Joint domain knowledge graph and attention-based decision trees for coke prediction in ethylene cracking furnace tube
10.1016/j.measurement.2026.121467 · doi-reference
Simulation of the run length of an ethane cracking furnace
10.1021/ie00100a022 · doi-reference
Incident radiative heat flux based method for the coupled run length simulation of steam cracking furnaces
10.1021/acs.iecr.6b05013 · doi-reference
Steam cracking coke properties and their influence on furnace run length predictions: experimental and modeling study
10.1021/acs.iecr.0c04727 · doi-reference
State-of-the-art of coke formation during steam cracking: anti-coking surface technologies
10.1021/acs.iecr.8b03221 · doi-reference
Impact of initial surface roughness and aging on coke formation during ethane steam cracking
10.1021/acs.iecr.7b02479 · doi-reference
Coke Formation in the thermal cracking of hydrocarbons. 4. Modeling of coke formation in naphtha cracking
10.1021/ie00035a009 · doi-reference
Relative rates of coke formation from hydrocarbons in steam cracking of naphtha. 3. Aromatic hydrocarbons
10.1021/ie00023a027 · doi-reference
Relative rates of coke formation from hydrocarbons in steam cracking of naphtha. 2. Paraffins, naphthenes, mono-, di-, and cycloolefins, and acetylenes
10.1021/ie00013a009 · doi-reference
Modeling of thermal cracking kinetics. 3. Radical mechanisms for the pyrolysis of simple paraffins, olefins, and their mixtures
10.1021/i160067a006 · doi-reference
Kinetic modeling of coke formation during steam cracking
10.1021/ie010822k · doi-reference
Coke Formation mechanisms and coke inhibiting methods in pyrolysis furnaces
10.1252/jcej.35.923 · doi-reference
Standards for fired heater design: analysis of two dominant heat flux variation factors
10.1016/j.applthermaleng.2017.07.062 · doi-reference
Analytical models for heat transfer in the tube bundle of convection section in a steam cracking furnace
10.1016/j.applthermaleng.2019.113947 · doi-reference
Thermal/catalytic cracking of hydrocarbons for the production of olefins: a state-of-the-art review I: thermal cracking review
10.1016/j.fuel.2014.09.034 · doi-reference
Kinetics and reactor design in the thermal cracking for olefins production
10.1016/0009-2509(92)87033-m · doi-reference
Thermal cracking for olefins production. Fundamentals and their application to industrial problems
10.1016/0009-2509(81)80161-3 · doi-reference