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Dive into the research topics where P. Senthamaraikannan is active.

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Featured researches published by P. Senthamaraikannan.


International Journal of Polymer Analysis and Characterization | 2016

Physico-chemical properties of new cellulosic fibers from the bark of Acacia planifrons

P. Senthamaraikannan; S. S. Saravanakumar; V. P. Arthanarieswaran; P. Sugumaran

ABSTRACT Identification of new natural fibers is growing due to their superior properties and the impetus for researchers to develop high-performance composites. This investigation was aimed at understanding the physico-chemical properties of Acacia planifrons fibers (APFs). The crystalline structure of APFs was analyzed by X-ray diffraction, and the crystallinity index (65.38%) was calculated. The chemical functional group of APFs was confirmed by Fourier transform-infrared spectroscopy, the thermal stability measured by thermogravimetric analysis, and surface characterization established by atomic force microscopy. Taken together, all the properties of APFs can play a vital role in establishing APFs as new reinforcement in polymer composites.


International Journal of Polymer Analysis and Characterization | 2016

Characterization of new natural cellulosic fiber from the Perotis indica plant

M. Prithiviraj; R. Muralikannan; P. Senthamaraikannan; S. S. Saravanakumar

ABSTRACT This investigation summarizes the characteristics of biofiber extracted from the Perotis indica plant. Cellulose content (68.4 wt%), density (785 kg m−3), crystallinity index (48.3%), tensile strength (317–1,608 MPa), and Young’s modulus (8.41–69.61 GPa) properties were identified in the P. indica fibers (PIFs), and thermal stability was studied using thermal gravimetric analysis and derivative thermogravimetric analysis, which revealed its cellulose degradation at a temperature of 339.1°C. Further, the properties of PIFs ensured that it can play an imperative role as new reinforcement as green composites in the manufacturing industries.


Journal of Natural Fibers | 2018

Physicochemical Properties of New Cellulosic Fibers from Azadirachta indica Plant

P. Manimaran; P. Senthamaraikannan; K. Murugananthan; M. R. Sanjay

ABSTRACT This research study was aimed at examining newly identified natural fiber from the bark of Azadirachta indica (AI). The various properties were analyzed and compared with other available bark fibers. The chemical composition of Azadirachta indica fibers (AIFs), high cellulose (68.42 wt.%) content, and low lignin (13.58 wt.%) were discovered. The lower density of 740 kg/m3, and crystallinity index of 65.04% properties were identified. The maximum peak temperature obtained was 321.2 °C in Differential thermogravimetry (DTG) curve. Taken together, all the properties of AIFs indicated that they could be suitable to make green composites for various types of applications.


Journal of Natural Fibers | 2018

Characterization of New Natural Cellulosic Fiber from Heteropogon Contortus Plant

N. Rajesh Jesudoss Hyness; N. J. Vignesh; P. Senthamaraikannan; S. S. Saravanakumar; M. R. Sanjay

ABSTRACT Natural fibers are one of effective substitute for switching artificial fiber and concentrating to reinforce polymer matrixes due to their decomposable character. This study was implied to realize physico-chemical properties of bio fiber obtained from Heteropogon contortus (HC) plant. Heteropogon contortus fibers (HCFs) had cellulose (64.87 wt. %), hemicellulose (19.34 wt. %), lignin (13.56 wt. %), and low density (602 kg/m3). The chemical functional group of HCFs was established by Fourier transform infrared spectroscopy, thermal stability of the fiber up to 220°C discovered by thermogravimetric analysis. Further the assets of HCFs proved that it can act as an excellent reinforcement material as a bio composite. Finally, the tensile properties were carried out through single fiber tensile tests, such as tensile strength, tensile modulus and microfibrillar angle.


International Journal of Polymer Analysis and Characterization | 2016

Physicochemical properties of new cellulosic Artisdita hystrix leaf fiber

M. Kathiresan; P. Pandiarajan; P. Senthamaraikannan; S. S. Saravanakumar

ABSTRACT The characterization of new natural fiber is increasing due to its excellent properties. This drives investigators to create high performance composites. The present investigation was designed to study the physicochemical properties of fibers obtained from the leaf of the Artistida hystrix. The Artistida hystrix fibers (AHFs) had crystallinity index (44.85%), cellulose (59.54 wt%), hemicellulose (11.35 wt%), lignin (8.42 wt%), and density (540 kg m−3). The tensile strength of AHFs was 440 ± 13.4 MPa with an average strain rate of 1.57 ± 0.04%. The calculated microfibril angle of AHFs was 12.64 ± 0.45°, which influenced the mechanical properties.


Carbohydrate Polymers | 2018

Study on characterization of Furcraea foetida new natural fiber as composite reinforcement for lightweight applications

P. Manimaran; P. Senthamaraikannan; M. R. Sanjay; M.K. Marichelvam; Mohammad Jawaid

The exploration of new natural fibers in the field of polymer composites can contribute to increase the invention of natural reinforcements and expand their use in possible applications. In the present work, the physico-chemical, thermal, tensile and morphological properties of Furcraea foetida (FF) fiber are presented for the first time. Chemical analysis results shows that FF has relatively higher cellulose (68.35%) with lower hemicelluloses (11.46%) and lignin (12.32%). Structural analysis of FF was conducted by Fourier transform infrared and 13C (CP-MAS) nuclear magnetic resonance spectroscopy. X-ray diffraction (XRD) analysis evidenced that FF has crystallinity index of 52.6% with crystalline size of 28.36nmThe surface morphology of FF was investigated by scanning electron microscopy (SEM), energy dispersive X-ray micro analyzer (EDX) and atomic force microscopy (AFM). The thermogravimetric analysis (TGA) reveals thermal constancy of the fiber upto 320.5°C with the kinetic activation energy of 66.64kJ/mol, which can be used as reinforcements in thermoplastic green composite whose working temperatures is below 300°C. The FF results were compared with those of other natural fibers, and indicated as a suitable alternative source for composite manufacture.


International Journal of Polymer Analysis and Characterization | 2016

Physicochemical properties of new cellulosic fibers from the bark of Acacia arabica

P. Manimaran; S. S. Saravanakumar; N. K. Mithun; P. Senthamaraikannan

ABSTRACT With the growing environmental consciousness toward carbon emissions, natural fibers are the best alternative and act as a substitute for synthetic fibers due to their potential properties. New cellulosic fibers were identified from Acacia arabica bark. This study aimed at understanding the characteristics of Acacia arabica fibers (AAFs) extracted from the bark of the A. arabica, and its physicochemical properties were examined by thermal stability analyses, X-ray diffraction, chemical constitutions, and Fourier transform infrared spectroscopy analysis. Cellulose content (68.1 wt%), density (1028 kg m−3), and crystallinity index (51.72%) properties were identified.


Journal of Natural Fibers | 2018

Characterization of New Natural Cellulosic Fiber from the Bark of Dichrostachys Cinerea

P. G. Baskaran; M. Kathiresan; P. Senthamaraikannan; S. S. Saravanakumar

ABSTRACT The increasing environmental awareness has directed attention of the researchers towards the field of natural fiber composites. The aim of this investigation is to understand the physico-chemical properties of fibers extracted from the bark of the Dichrostachys Cinerea (DC) plant. Dichrostachys Cinerea fibers (DCFs) has cellulose (72.4 wt. %), hemicellulose (13.08 wt. %), lignin (16.89 wt. %), density (1240 kg/m3), crystallinity index (57.82%), and tensile strength (873 ± 14 MPa). Besides the cellulose degradation of DCFs at 359.3° vide by the thermo-gravimetric analysis and chemical groups are identified by Fourier transform analysis. Eventually the characterization results of DCFs strongly show the possibility of reinforcement in polymer matrices.


Carbohydrate Polymers | 2018

Characterization of raw and alkali treated new natural cellulosic fiber from Coccinia grandis.L

P. Senthamaraikannan; M. Kathiresan

The physical, chemical, tensile, crystalline, thermal, and surface morphological properties of raw and alkali treated Coccinia Grandis.L Fibers (CGFs) were characterized for the first time in this work. The results of the chemical analysis indicate that, after alkali treatment, the cellulose content of CGFs increased whereas hemicelluloses, lignin and wax contents decreased. This directly influenced the tensile strength, crystallinity index, thermal stability and the roughness of alkali-treated CGFs. The thermal stability and activation energy of the CGFs improved from 213.4 °C to 220.6 °C and 67.02 kJ/mol to 73.43 kJ/mol, respectively, due to alkali treatment. The statistical approach, Weibull distribution was adopted to analyze the tensile properties. The improved properties of the alkali treated CGF indicate that it could be an appropriate material for reinforcement in polymer composites.


Journal of Natural Fibers | 2018

Physicochemical and Thermal Properties of Ceiba pentandra Bark Fiber

R. Kumar; N. Rajesh Jesudoss Hynes; P. Senthamaraikannan; S. S. Saravanakumar; M. R. Sanjay

ABSTRACT Owing to their low weight-to-high strength ratio and recyclable features, the natural fibers are the most potential choice in place of synthetic fibers and been used as reinforcement materials in polymer matrix composites. Characterization of Ceiba pentandra bark fibers (CPFs) such chemical analysis, Fourier Transform-Infrared Analysis (FTIR), X-ray diffraction, thermogravimetric analysis, and Differential thermogravimetric analysis (DTG) analysis has analyzed. CPFs contain 60.9% (w/w) of cellulose, 17.5% (w/w) of hemicellulose, and 23.5% (w/w) of lignin. Besides, its density and crystallinity index are 682 kg m−3 and 57.94%, respectively. TG and DTG analysis discovered that CPFs are thermally stable up to 342.1°C. Further, all the resources of CPFs ensured that it can be an excellent alternative for synthetic fibers in polymer matrix composites.

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M. R. Sanjay

Visvesvaraya Technological University

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S. S. Saravanakumar

Kamaraj College of Engineering and Technology

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P. Manimaran

Kamaraj College of Engineering and Technology

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B. Yogesha

Malnad College of Engineering

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M. Kathiresan

Thiagarajar College of Engineering

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Mohammad Jawaid

Universiti Putra Malaysia

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P. Madhu

Malnad College of Engineering

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S. Pradeep

Malnad College of Engineering

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M. Prithiviraj

Kamaraj College of Engineering and Technology

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