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Dive into the research topics where Erna Yuliwati is active.

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Featured researches published by Erna Yuliwati.


Applied Mechanics and Materials | 2014

Membrane Processing of Refined Palm Oil Wastewater Using TiO2 Entrapped Nanoporous PVDF Membrane

Erna Yuliwati; Amrifan Saladin Mohruni

An explosive growth of interest has been developed in creating of alternative process of crude palm oil wastewater treatment. Membrane processing offers many advantages as it can be used in almost the stage of oily wastewater treatment. Aim of this study was to investigate nanoporous membrane morphology and performance for refined palm oil wastewater treatment. The comparison of performance and morphology was carried out between neat PVDF and PVDF nanoporous membranes with nanosized TiO2 particles of different compositions. Results of permeability and instrumental analysis illustrated that nanometer size obviously affected the PVDF membranes performance and structure. Smaller nanoparticles could improve the antifouling property of PVDF membrane more remarkably. Cross-section of membranes were observed with a field electronic scanning electron microscope (FESEM). The TiO2/PVDF membrane with smaller nanoparticles had smaller mean pore size on its surface and more apertures inside the membrane. X-ray diffraction (XRD) experiment was also suggested that the addition of 1.0 % TiO2 nanoparticles had stronger effect on crystallization of PVDF molecules, poresize of 34.05 nm, contact angle of 53o and flux of 88.50 L/m2h of poresize. It can be concluded that nanoporous PVDF membrane with adding of TiO2 has better performance for treating refined palm oil wastewater.


3RD ELECTRONIC AND GREEN MATERIALS INTERNATIONAL CONFERENCE 2017 (EGM 2017) | 2017

A comparison RSM and ANN surface roughness models in thin-wall machining of Ti6Al4V using vegetable oils under MQL-condition

Amrifan Saladin Mohruni; Muhammad Yanis; Safian Sharif; Irsyadi Yani; Erna Yuliwati; Ahmad Fauzi Ismail; Zamree Shayfull

Thin-wall components as usually applied in the structural parts of aeronautical industry require significant challenges in machining. Unacceptable surface roughness can occur during machining of thin-wall. Titanium product such Ti6Al4V is mostly applied to get the appropriate surface texture in thin wall designed requirements. In this study, the comparison of the accuracy between Response Surface Methodology (RSM) and Artificial Neural Networks (ANN) in the prediction of surface roughness was conducted. Furthermore, the machining tests were carried out under Minimum Quantity Lubrication (MQL) using AlCrN-coated carbide tools. The use of Coconut oil as cutting fluids was also chosen in order to evaluate its performance when involved in end milling. This selection of cutting fluids is based on the better performance of oxidative stability than that of other vegetable based cutting fluids. The cutting speed, feed rate, radial and axial depth of cut were used as independent variables, while surface roughness is evaluated as the dependent variable or output. The results showed that the feed rate is the most significant factors in increasing the surface roughness value followed by the radial depth of cut and lastly the axial depth of cut. In contrary, the surface becomes smoother with increasing the cutting speed. From a comparison of both methods, the ANN model delivered a better accuracy than the RSM model.Thin-wall components as usually applied in the structural parts of aeronautical industry require significant challenges in machining. Unacceptable surface roughness can occur during machining of thin-wall. Titanium product such Ti6Al4V is mostly applied to get the appropriate surface texture in thin wall designed requirements. In this study, the comparison of the accuracy between Response Surface Methodology (RSM) and Artificial Neural Networks (ANN) in the prediction of surface roughness was conducted. Furthermore, the machining tests were carried out under Minimum Quantity Lubrication (MQL) using AlCrN-coated carbide tools. The use of Coconut oil as cutting fluids was also chosen in order to evaluate its performance when involved in end milling. This selection of cutting fluids is based on the better performance of oxidative stability than that of other vegetable based cutting fluids. The cutting speed, feed rate, radial and axial depth of cut were used as independent variables, while surface roughness ...


3RD ELECTRONIC AND GREEN MATERIALS INTERNATIONAL CONFERENCE 2017 (EGM 2017) | 2017

Membrane technology for treating of waste nanofluids coolant: A review

Amrifan Saladin Mohruni; Erna Yuliwati; Safian Sharif; Ahmad Fauzi Ismail

The treatment of cutting fluids wastes concerns a big number of industries, especially from the machining operations to foster environmental sustainability. Discharging cutting fluids, waste through separation technique could protect the environment and also human health in general. Several methods for the separation emulsified oils or oily wastewater have been proposed as three common methods, namely chemical, physicochemical and mechanical and membrane technology application. Membranes are used into separate and concentrate the pollutants in oily wastewater through its perm-selectivity. Meanwhile, the desire to compensate for the shortcomings of the cutting fluid media in a metal cutting operation led to introduce the using of nanofluids (NFs) in the minimum quantity lubricant (MQL) technique. NFs are prepared based on nanofluids technology by dispersing nanoparticles (NPs) in liquids. These fluids have potentially played to enhance the performance of traditional heat transfer fluids. Few researchers have studied investigation of the physical-chemical, thermo-physical and heat transfer characteristics of NFs for heat transfer applications. The use of minimum quantity lubrication (MQL) technique by NFs application is developed in many metal cutting operations. MQL did not only serve as a better alternative to flood cooling during machining operation and also increases better-finished surface, reduces impact loads on the environment and fosters environmental sustainability. Waste coolant filtration from cutting tools using membrane was treated by the pretreated process, coagulation technique and membrane filtration. Nanomaterials are also applied to modify the membrane structure and morphology. Polyvinylidene fluoride (PVDF) is the better choice in coolant wastewater treatment due to its hydrophobicity. Using of polyamide nanofiltration membranes BM-20D and UF-PS-100-100, 000, it resulted in the increase of permeability of waste coolant filtration. Titanium dioxide is nanomaterials additive to modify the Nanopores of the surface membrane. Contact angle and average pore size were used in the investigation of the surface morphology of membranes. An adequate choice in modifying the membrane surface in waste coolant filtration may bring a promised alternative as a solution in waste coolant remediation.The treatment of cutting fluids wastes concerns a big number of industries, especially from the machining operations to foster environmental sustainability. Discharging cutting fluids, waste through separation technique could protect the environment and also human health in general. Several methods for the separation emulsified oils or oily wastewater have been proposed as three common methods, namely chemical, physicochemical and mechanical and membrane technology application. Membranes are used into separate and concentrate the pollutants in oily wastewater through its perm-selectivity. Meanwhile, the desire to compensate for the shortcomings of the cutting fluid media in a metal cutting operation led to introduce the using of nanofluids (NFs) in the minimum quantity lubricant (MQL) technique. NFs are prepared based on nanofluids technology by dispersing nanoparticles (NPs) in liquids. These fluids have potentially played to enhance the performance of traditional heat transfer fluids. Few researchers ha...


Desalination | 2011

Effect of additives concentration on the surface properties and performance of PVDF ultrafiltration membranes for refinery produced wastewater treatment

Erna Yuliwati; Ahmad Fauzi Ismail


Desalination | 2011

Effect of modified PVDF hollow fiber submerged ultrafiltration membrane for refinery wastewater treatment

Erna Yuliwati; Ahmad Fauzi Ismail; T. Matsuura; Mohd. Azraai Kassim; Mohd Sohaimi Abdullah


Desalination | 2012

Effects of process conditions in submerged ultrafiltration for refinery wastewater treatment: Optimization of operating process by response surface methodology

Erna Yuliwati; Ahmad Fauzi Ismail; Woei Jye Lau; Be Cheer Ng; A. Mataram; Mohd. Azraai Kassim


Desalination | 2011

Characterization of surface-modified porous PVDF hollow fibers for refinery wastewater treatment using microscopic observation

Erna Yuliwati; Ahmad Fauzi Ismail; T. Matsuura; Mohd. Azraai Kassim; Mohd Sohaimi Abdullah


MATEC Web of Conferences | 2018

Optimum parameters for treating coolant wastewater using PVDF-membrane

Erna Yuliwati; Ahmad Fauzi Ismail; Amrifan Saladin Mohruni; A. Mataram


Journal of Engineering and Applied Sciences | 2017

Mathematical model of optimum composition on membrane fabrication parameters for treating batik palembang wastewater

Muhammad Izman Herdiansyah; Erna Yuliwati; Mahyudin; Ahmad Fauzi Ismail


Jurnal Teknologi | 2016

STAND-ALONE WATER TREATMENT: PERFORMANCE OF ELECTROSPUN NANOFIBERS

A. Mataram; Ahmad Fauzi Ismail; Erna Yuliwati; T. Matsuura; S. Rizal; A. Zamheri

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Ahmad Fauzi Ismail

Universiti Teknologi Malaysia

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Mohd. Azraai Kassim

Universiti Teknologi Malaysia

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T. Matsuura

Universiti Teknologi Malaysia

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A. Mataram

Universiti Teknologi Malaysia

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Mohd Sohaimi Abdullah

Universiti Teknologi Malaysia

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Safian Sharif

Universiti Teknologi Malaysia

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Be Cheer Ng

Universiti Teknologi Malaysia

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T. Matsuura

Universiti Teknologi Malaysia

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Woei Jye Lau

Universiti Teknologi Malaysia

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