2022
DOI: 10.1021/acsomega.2c04255
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Batch-to-Batch Adaptive Iterative Learning Control─Explicit Model Predictive Control Two-Tier Framework for the Control of Batch Transesterification Process

Abstract: To harness energy security and reduce carbon emissions, humankind is trying to switch toward renewable energy resources. To this extent, fatty acid methyl esters, also known as biodiesel, are popularly used as a green fuel. Fatty acid methyl esters can be produced by a batch transesterification reaction between vegetable oil and alcohol. Being a batch process, fatty acid methyl esters production is beset with issues such as uncertainties and unsteady state behavior, and therefore, adequate process control meas… Show more

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Cited by 7 publications
(4 citation statements)
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“…The configuration of SLFN shown in Figure 3 has 'L' hidden neurons as a single layer mapping of 'n' input neurons to 'm' output neurons. The input−output data set of length 'N' is represented as (22) where w i = [w i1 , w i2 ,•••w in ] is the input weight vector passing 'n' inputs to ith hidden neuron and…”
Section: Learning Algorithm Of the Multilayer Neural-based Hammerstei...mentioning
confidence: 99%
See 1 more Smart Citation
“…The configuration of SLFN shown in Figure 3 has 'L' hidden neurons as a single layer mapping of 'n' input neurons to 'm' output neurons. The input−output data set of length 'N' is represented as (22) where w i = [w i1 , w i2 ,•••w in ] is the input weight vector passing 'n' inputs to ith hidden neuron and…”
Section: Learning Algorithm Of the Multilayer Neural-based Hammerstei...mentioning
confidence: 99%
“…Gupta et al 22 presented the iterative learning control (ILC)�explicit model predictive control two-tier framework design for the batch reactor transesterification process for biofuel production in simulation. Authors have considered the multiple uncertainties in activation energy and input concentration of triglyceride.…”
Section: Introductionmentioning
confidence: 99%
“…Even when the controller is appropriately tuned, variations in the process parameters over time may hurt their performance. To address these issues, a variety of model-based advanced control systems and optimization strategies have been reported in the literature, including model predictive control (MPC), model-based iterative learning control, nonlinear MPC (NMPC), among others. However, model-based controllers necessitate thorough model understanding, which happens infrequently and frequently leads to the issue of mismatch of plant output and model output. Furthermore, solving optimization-based control problems online may require heavy computational overheads.…”
Section: Introductionmentioning
confidence: 99%
“…Further, organizing the relevant information also needs the involvement of significant human labor with domain knowledge. Also, it is worth noting that much of this information is not structured in the form of text, tables, and graphs. Therefore, the very idea of developing an automated recommendation system to abstract the important studies in this area for easy access is keenly motivating. To this extent, natural language processing (NLP) has recently risen to the forefront as a major field of machine learning as it is an enabler for synthesizing relevant information while dealing with nonstructural data.…”
Section: Introductionmentioning
confidence: 99%