Response Surface Methodology (RSM) For Process Parameters Optimization Of LiFePO4 Using Flame Spray Reactor For Li-ION Batteries

Lithium iron phosphate, LiFePO4 (LFP) is widely used due to the advantages it offers such as excellent reversibility, relatively safer than other lithium-ion batteries and its abundancy, which at the same time is inexpensive. In this final year project, the optimization of the process parameters for...

Full description

Bibliographic Details
Main Author: Na, Yong Sik
Format: Monograph
Language:English
Published: Universiti Sains Malaysia 2021
Subjects:
Online Access:http://eprints.usm.my/55024/1/Response%20Surface%20Methodology%20%28RSM%29%20For%20Process%20Parameters%20Optimization%20Of%20LiFePO4%20Using%20Flame%20Spray%20Reactor%20For%20Li-ION%20Batteries_Na%20Yong%20Sik_K4_2021_ESAR.pdf
_version_ 1825907211269832704
author Na, Yong Sik
author_facet Na, Yong Sik
author_sort Na, Yong Sik
collection USM
description Lithium iron phosphate, LiFePO4 (LFP) is widely used due to the advantages it offers such as excellent reversibility, relatively safer than other lithium-ion batteries and its abundancy, which at the same time is inexpensive. In this final year project, the optimization of the process parameters for the synthesis of LFP via flame spray pyrolysis was done by implementing response surface methodology (RSM), a collection of mathematical and statistical techniques Which is a well-established method useful for approximating and optimizing processes. Design expert V11 was the software utilized for RSM. The first design used was the 1-factor D-optimal design to optimize the precursor concentration and obtain the statistical data of the available data, in which the optimum concentration of precursor was 0.35 M it would form a large particle which will then indirectly affect the discharge capacity. Then, effect of the two process parameters, namely calcination temperature and glucose content on the discharge capacity were studied, and its significance was determined based on the analysis of variance (ANOVA). Central composite design (CCD) was applied for the simulation of it and the optimized discharge capacity based on no specific criteria of the parameters was 160.417 mAh g-1 at a calcination temperature of 689.395 ℃ and the glucose content 26.2079 % and there are another 99 unique solutions. Then, as the criteria was set as minimum calcination temperature, minimum glucose content and minimum of both factors, the discharge capacity was 158.447 mAh g-1, 153.103 mAh g-1, 151.515 mAh g-1 respectively, all with only one unique solution. Lastly, three types of RSM, specifically, CCD, D-optimal design and historical data design were implemented and compared on which method would yield the best results, statistically.
first_indexed 2024-03-06T16:00:48Z
format Monograph
id usm.eprints-55024
institution Universiti Sains Malaysia
language English
last_indexed 2024-03-06T16:00:48Z
publishDate 2021
publisher Universiti Sains Malaysia
record_format dspace
spelling usm.eprints-550242022-09-30T03:12:52Z http://eprints.usm.my/55024/ Response Surface Methodology (RSM) For Process Parameters Optimization Of LiFePO4 Using Flame Spray Reactor For Li-ION Batteries Na, Yong Sik T Technology TP Chemical Technology Lithium iron phosphate, LiFePO4 (LFP) is widely used due to the advantages it offers such as excellent reversibility, relatively safer than other lithium-ion batteries and its abundancy, which at the same time is inexpensive. In this final year project, the optimization of the process parameters for the synthesis of LFP via flame spray pyrolysis was done by implementing response surface methodology (RSM), a collection of mathematical and statistical techniques Which is a well-established method useful for approximating and optimizing processes. Design expert V11 was the software utilized for RSM. The first design used was the 1-factor D-optimal design to optimize the precursor concentration and obtain the statistical data of the available data, in which the optimum concentration of precursor was 0.35 M it would form a large particle which will then indirectly affect the discharge capacity. Then, effect of the two process parameters, namely calcination temperature and glucose content on the discharge capacity were studied, and its significance was determined based on the analysis of variance (ANOVA). Central composite design (CCD) was applied for the simulation of it and the optimized discharge capacity based on no specific criteria of the parameters was 160.417 mAh g-1 at a calcination temperature of 689.395 ℃ and the glucose content 26.2079 % and there are another 99 unique solutions. Then, as the criteria was set as minimum calcination temperature, minimum glucose content and minimum of both factors, the discharge capacity was 158.447 mAh g-1, 153.103 mAh g-1, 151.515 mAh g-1 respectively, all with only one unique solution. Lastly, three types of RSM, specifically, CCD, D-optimal design and historical data design were implemented and compared on which method would yield the best results, statistically. Universiti Sains Malaysia 2021-07-01 Monograph NonPeerReviewed application/pdf en http://eprints.usm.my/55024/1/Response%20Surface%20Methodology%20%28RSM%29%20For%20Process%20Parameters%20Optimization%20Of%20LiFePO4%20Using%20Flame%20Spray%20Reactor%20For%20Li-ION%20Batteries_Na%20Yong%20Sik_K4_2021_ESAR.pdf Na, Yong Sik (2021) Response Surface Methodology (RSM) For Process Parameters Optimization Of LiFePO4 Using Flame Spray Reactor For Li-ION Batteries. Project Report. Universiti Sains Malaysia, Pusat Pengajian Kejuruteraan Kimia. (Submitted)
spellingShingle T Technology
TP Chemical Technology
Na, Yong Sik
Response Surface Methodology (RSM) For Process Parameters Optimization Of LiFePO4 Using Flame Spray Reactor For Li-ION Batteries
title Response Surface Methodology (RSM) For Process Parameters Optimization Of LiFePO4 Using Flame Spray Reactor For Li-ION Batteries
title_full Response Surface Methodology (RSM) For Process Parameters Optimization Of LiFePO4 Using Flame Spray Reactor For Li-ION Batteries
title_fullStr Response Surface Methodology (RSM) For Process Parameters Optimization Of LiFePO4 Using Flame Spray Reactor For Li-ION Batteries
title_full_unstemmed Response Surface Methodology (RSM) For Process Parameters Optimization Of LiFePO4 Using Flame Spray Reactor For Li-ION Batteries
title_short Response Surface Methodology (RSM) For Process Parameters Optimization Of LiFePO4 Using Flame Spray Reactor For Li-ION Batteries
title_sort response surface methodology rsm for process parameters optimization of lifepo4 using flame spray reactor for li ion batteries
topic T Technology
TP Chemical Technology
url http://eprints.usm.my/55024/1/Response%20Surface%20Methodology%20%28RSM%29%20For%20Process%20Parameters%20Optimization%20Of%20LiFePO4%20Using%20Flame%20Spray%20Reactor%20For%20Li-ION%20Batteries_Na%20Yong%20Sik_K4_2021_ESAR.pdf
work_keys_str_mv AT nayongsik responsesurfacemethodologyrsmforprocessparametersoptimizationoflifepo4usingflamesprayreactorforliionbatteries