| Literature DB >> 36013776 |
Mingli Gu1, Waqas Ahmad2, Turki M Alaboud3, Asad Zia4, Usman Akmal5, Youssef Ahmed Awad6, Hisham Alabduljabbar7.
Abstract
Biodegradable materials are appropriate for the environment and are gaining immense attention worldwide. The mechanical properties (such as elongation at break, density, and failure strain) of some natural fibers (such as Coir, Hemp, Jute, Ramie, and Sisal) are comparable with those of some synthetic fibers (such as E glass, aramid, or Kevlar). However, the toughness of coconut fibers is comparatively more than other natural fibers. Numerous studies suggest coconut fibers perform better to improve the concrete mechanical properties. However, the knowledge is dispersed, making it difficult for anyone to evaluate the compatibility of coconut fibers in concrete. This study aims to perform a scientometric review of coconut fiber applications in cementitious concrete to discover the various aspects of the literature. The typical conventional review studies are somehow limited in terms of their capacity for linking different literature elements entirely and precisely. Science mapping, co-occurrence, and co-citation are among a few primary challenging points in research at advanced levels. The highly innovative authors/researchers famous for citations, the sources having the highest number of articles, domains that are actively involved, and co-occurrences of keywords in the research on coconut-fiber-reinforced cementitious concrete are explored during the analysis. The bibliometric database with 235 published research studies, which are taken from the Scopus dataset, are analyzed using the VOSviewer application. This research will assist researchers in the development of joint ventures in addition to sharing novel approaches and ideas with the help of a statistical and graphical description of researchers and countries/regions that are contributing. In addition, the applicability of coconut fiber in concrete is explored for mechanical properties considering the literature, and this will benefit new researchers for its use in concrete.Entities:
Keywords: cementitious composites; coconut fiber; concrete; scientometric analysis
Year: 2022 PMID: 36013776 PMCID: PMC9416716 DOI: 10.3390/ma15165639
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.748
Figure 1Coconut longitudinal section (adapted from [37]).
Figure 2Stepwise procedure for extracting fibers and other products from coconut (adapted from [47]).
Figure 3Research methodology sequence.
Figure 4The subject area of articles.
Figure 5Various types of documents published in the related study field.
Figure 6Annual publication trend of articles.
Publication sources in the related research field up to 2022.
| S/N | Publication Source | Number of Publications | Total Number of Citations |
|---|---|---|---|
| 1 | Construction and Building Materials | 21 | 876 |
| 2 | Materials | 6 | 122 |
| 3 | Materials Today: Proceedings | 8 | 56 |
| 4 | International Journal of Civil Engineering and Technology | 6 | 35 |
| 5 | Jurnal Teknologi | 4 | 32 |
| 6 | MATEC Web of Conferences | 7 | 26 |
| 7 | AIP Conference Proceedings | 5 | 24 |
| 8 | IOP Conference Series: Materials Science and Engineering | 9 | 21 |
| 9 | Key Engineering Materials | 5 | 18 |
| 10 | Scientific Reports | 2 | 17 |
| 11 | Case Studies in Construction Materials | 2 | 10 |
| 12 | International Journal of Mechanical Engineering and Technology | 3 | 10 |
| 13 | International Journal of Engineering and Technology (UAE) | 2 | 7 |
| 14 | Advances in Materials Science and Engineering | 2 | 5 |
Figure 7Scientific visualization of publication sources in the related research area.
The 30 leading frequently employed keywords in the research of coconut-fiber-reinforced concrete.
| S/N | Keyword | Occurrences |
|---|---|---|
| 1 | Fibers | 52 |
| 2 | Compressive Strength | 50 |
| 3 | Reinforced Concrete | 40 |
| 4 | Concretes | 35 |
| 5 | Tensile Strength | 30 |
| 6 | Coconut Fibers | 28 |
| 7 | Concrete | 27 |
| 8 | Fiber-Reinforced Materials | 26 |
| 9 | Coconut Fiber | 23 |
| 10 | Cements | 17 |
| 11 | Mechanical Properties | 15 |
| 12 | Natural Fibers | 15 |
| 13 | Sustainable Development | 14 |
| 14 | Fly Ash | 13 |
| 15 | Aggregates | 12 |
| 16 | Coconut Fiber | 12 |
| 17 | Fiber Reinforced Concrete | 12 |
| 18 | Bending Strength | 10 |
| 19 | Concrete Aggregates | 10 |
| 20 | Construction Industry | 10 |
| 21 | Durability | 10 |
| 22 | Concrete Construction | 9 |
| 23 | Concrete Mixtures | 9 |
| 24 | Flexural Strength | 9 |
| 25 | Light Weight Concrete | 9 |
| 26 | Bridge Decks | 8 |
| 27 | Conventional Concrete | 8 |
| 28 | Fiber Reinforced Concrete | 8 |
| 29 | Agricultural Wastes | 7 |
| 30 | Coconut Shell | 7 |
Figure 8Keywords analysis: (a) Scientific visualization. (b) Density visualization.
Top 20 authors in the research of coconut-fiber-reinforced concrete up to 2022.
| S/N | Author | Number of Publications | Total Number of Citations |
|---|---|---|---|
| 1 | Ali M. | 17 | 600 |
| 2 | Chouw N. | 18 | 569 |
| 3 | Khan M. | 5 | 216 |
| 4 | Ramli M. | 3 | 142 |
| 5 | Wang W. | 6 | 106 |
| 6 | Aslam F. | 4 | 74 |
| 7 | Othuman Mydin M.A. | 8 | 74 |
| 8 | Chen J. | 5 | 62 |
| 9 | Prakash R. | 3 | 53 |
| 10 | Raman S.N. | 3 | 53 |
| 11 | Subramanian C. | 3 | 53 |
| 12 | Thenmozhi R. | 3 | 53 |
| 13 | Ahmad J. | 3 | 26 |
| 14 | Khedher K.M. | 3 | 26 |
| 15 | Gunasekaran K. | 3 | 15 |
| 16 | Mydin M.A.O. | 3 | 14 |
| 17 | Lumingkewas R.H. | 3 | 10 |
| 18 | Singh J. | 3 | 10 |
| 19 | Lv Y. | 3 | 7 |
| 20 | Hadiwardoyo S.P. | 3 | 6 |
Figure 9Scientific visualization of authors that published articles in the related research area.
Top 10 highly cited published articles up to 2022 in the research of coconut-fiber-reinforced concrete.
| S/N | Article | Title | Total Number of Citations Received |
|---|---|---|---|
| 1 | Ali, et al. [ | Mechanical and dynamic properties of coconut fibre reinforced concrete | 221 |
| 2 | Ramli, et al. [ | Strength and durability of coconut-fiber-reinforced concrete in aggressive environments | 96 |
| 3 | Khan and Ali [ | Improvement in concrete behavior with fly ash, silica-fume and coconut fibres | 81 |
| 4 | Wang and Chouw [ | The behaviour of coconut fibre reinforced concrete (CFRC) under impact loading | 60 |
| 5 | Ali and Chouw [ | Experimental investigations on coconut-fibre rope tensile strength and pullout from coconut fibre reinforced concrete | 51 |
| 6 | Khan and Ali [ | Effect of super plasticizer on the properties of medium strength concrete prepared with coconut fiber | 50 |
| 7 | Ahmad, et al. [ | Effect of coconut fiber length and content on properties of high strength concrete | 48 |
| 8 | Ali, et al. [ | Capacity of innovative interlocking blocks under monotonic loading | 39 |
| 9 | Ali, et al. [ | Dynamic response of mortar-free interlocking structures | 36 |
| 10 | Majid [ | Coconut fibre—A versatile material and its applications in engineering | 36 |
Figure 10Scientific mapping of published articles in the related research area up to 2022: (a) Connected articles in terms of citations. (b) Density of connected articles.
Leading countries based on published documents in the present research area until 2022.
| S/N | Country | Number of Publications | Total Number of Citations |
|---|---|---|---|
| 1 | India | 41 | 265 |
| 2 | Malaysia | 28 | 473 |
| 3 | New Zealand | 20 | 603 |
| 4 | Pakistan | 16 | 367 |
| 5 | Indonesia | 13 | 46 |
| 6 | China | 10 | 225 |
| 7 | Saudi Arabia | 6 | 109 |
| 8 | Brazil | 4 | 21 |
| 9 | Italy | 4 | 11 |
| 10 | Nigeria | 4 | 39 |
Figure 11Scientific visualization of countries in the related research area up to 2022: (a) Network visualization. (b) Density visualization.