KMITL

Permanent URI for this communityhttps://dspace.kmitl.ac.th/handle/123456789/1

Browse

Search Results

Now showing 1 - 2 of 2
  • Some of the metrics are blocked by your 
    Item type:Publication,
    Preparation of bacterial cellulose film from rotten fruits for mulching film application
    (2022-01-01)
    Pinpru, Nattapong
    ;
    Intasanta, Varol
    ;
    Charoonsuk, Thitirat
    ;
    Khaisaat, Supharada
    ;
    Sawanakarn, Oubonwan
    This research aims to reduce production capital costs and added value to natural products. The bio-mulching film was prepared by bacterial cellulose (BC) “Acetobacter xylinum”, extracted from three rotten fruits, grape, coconut, and pineapple under standard tests in the laboratory. The analysis from the FTIR technique confirmed to cellulose molecular vibration of BC films. XRD pattern was matched to structure crystallinity of JCPDS standard file which possessed a high percentage of crystallinity. The SEM micrographs were also revealed the 3D nanofiber network structure. The absorption capability of BC films could highly hold water in its structure. In addition, the mechanical properties of BC films came from rotten coconut, given the highest tensile strength (7.2 ± 1.1 MPa) according to nano-fiber symmetric with its dense structure. Nevertheless, the soil burial testing emphasized BC films could reduce soil temperature and increase moisture content in the soil as well. The biodegradation rate of BC films in 30 days was moderately fair. The BC film from rotten coconut had the slowest biodegradation rate (approximately 22.3 4.2%), applicable to biodegradable mulching film.
  • Some of the metrics are blocked by your 
    Item type:Publication,
    Luffa sponge offsets the negative effects of aeration on bacterial cellulose production
    (2016-12-01)
    Krusong, W.
    ;
    Kerdpiboon, S.
    ;
    Pornpukdeewattana, S.
    ;
    Jindaprasert, A.
    Aims: To offset the negative effects of aeration on bacterial cellulose (BC) production by acetic acid bacteria using enmeshed cellulose microfibrils (CM) on luffa sponge matrices (LSM). Methods and Results: The CM were enmeshed on LSM (LSM-CM). The optimal amount of LSM-CM was determined for BC production under aerated conditions. Without LSM-CM, no BC was produced in seven out of nine production cycles at the highest aeration rate (9 l min<sup>−1</sup>). However, with 0·5% LSM-CM and an aeration rate of 3 l min<sup>−1</sup>, a satisfactory oxygen transfer coefficient was achieved, and also a good yield of BC (5·24 g l<sup>−1</sup>). Moreover, the LSM-CM was able to be recycled through nine consecutive BC production cycles. The highest BC yields (from 5·8 ± 0·4 to 6·6 ± 0·4 g l<sup>−1</sup>) were associated with high bacterial biomass and this was confirmed by scanning electron microscopy. Conclusions: We confirm that LSM-CM works well as a starter. Microenvironments low in dissolved oxygen within the matrices of LSM-CM are important for BC production under aeration conditions. Significance and Impact of the Study: The LSM-CM provides a microenvironment which offsets the negative effects of aeration on BC production. A sustainable, economic process for mass BC production is described using recycled LSM-CM with aeration.