Land-use and soil-quality dynamics in an agricultural area of Nakhon Ratchasima province, Northeast Thailand (Record no. 68102)

MARC details
000 -LEADER
fixed length control field 09052nas|a2200421 i 4500
005 - DATE AND TIME OF LATEST TRANSACTION
control field 20260818145142.0
008 - FIXED-LENGTH DATA ELEMENTS--GENERAL INFORMATION
fixed length control field 010704s2003 th uzm rtt 00| a1eng d
035 ## - SYSTEM CONTROL NUMBER
System control number .b11932156
099 #9 - LOCAL FREE-TEXT CALL NUMBER (OCLC)
Classification number AIT Diss. no.AS-03-02
100 0# - MAIN ENTRY--PERSONAL NAME
Personal name Khin Mar Cho
245 10 - TITLE STATEMENT
Title Land-use and soil-quality dynamics in an agricultural area of Nakhon Ratchasima province, Northeast Thailand
260 ## - PUBLICATION, DISTRIBUTION, ETC.
Place of publication, distribution, etc. Pathum Thani, Thailand :
Name of publisher, distributor, etc. Asian Institute of Technology,
Date of publication, distribution, etc. 2003
300 ## - PHYSICAL DESCRIPTION
Extent 146 p. :
Other physical details ill. +
Accompanying material 1 online resource
490 1# - SERIES STATEMENT
Series statement Dissertation ;
Volume/sequential designation no. AS-03-02
500 ## - GENERAL NOTE
General note A dissertation submitted in partial fulfillment of the requirements for the degree of Doctor of Technical Science, School of Environment, Resources and Development
502 ## - DISSERTATION NOTE
Dissertation note Thesis (Ph.D.) - Asian Institute of Technology, 2003
520 ## - SUMMARY, ETC.
Summary, etc. The study addresses the interrelationships between land-use successions and soil-quality in a typical rainfed agricultural area of Nakhon Ratchasima Province, northeastern Thailand. The two main aims of the study were (i) to characterize typical land-use types in the area in the context of their history and the driving forces behind land-use changes, and (ii) to assess the soil-quality differences that can be associated with these land uses. For the first part of the study, the typical land-use successions were identified through detailed land-use history profiles based on interviews and discussions with the farmers in the area. The second part comprises detailed soil characterization for selected land uses and the development of a compound soil quality index (SQI) that can be used to detect overall changes in soil quality between the different types of land use in the area, including undisturbed forest Land-use successions: From the 1960s onward, people started to settle in the area and began to clear-cut the forest to grow subsistence crops, such as upland rice and castor beans. After a relatively short period dominated by subsistence crops, the land use rapidly developed into maize-based cash-crop systems. Maize is still the main crop. Since the beginning of agriculture in the area, the farmers practiced continuous cropping. Shifting cultivation was never practiced. Initially, the soil was not tilled, and dibbling of seeds was exclusively practiced. All soil and crop husbandry practices were carried out manually. Due to the influx of more people, the agricultural land area expanded rapidly. Six typical land-use successions, from the initial forest clearing to the present land»-use, have been identified, i.e., (i) Forest {u2014}> maize-maize (2 crops per year) rotation (ii) Forest {u2014}> maize-fallow (1 crop per year) rotation (iii) Forest {u2014}> maize-maize {u2014}> mungbean-maize rotation (iv) Forest {u2014}> maize-maize {u2014}> orchard (v) Forest {u2014}> maize-maize -> orchard maize-maize and (vi) Forest {u2014}> maize-maize {u2014}> orchard {u2014}> vegetables. With the change of the land-use systems over time, the agronomic practices also changed adapting to the requirements of the new crops. The application of inorganic fertilizers, herbicides and pesticides became standard practice. The use of these inputs led to a significant increase in land productivity. However, most farmers do not have sufficient capital to purchase all required inputs for cultivation and they largely depend on private money lenders and middlemen for input supply at extremely high interest rates. There is a general perception amongst farmers of a considerable soil-fertility decline and that more and more fertilizer needs to be applied to maintain the current yield levels. Soil-quality changes: For a comparative assessment of soil quality, 37 sites representing 7 typical land uses (including 3 forest types) were selected for detailed investigations. At each site, the soil was characterized and samples from all soil layers (up to a depth of about 1.2 - 1.4 m) were analyzed for 20 different chemical and physical characteristics. A direct comparison of individual soil properties could not conclusively explain soil-quality differences. As expected, the forest soils generally exhibited significantly higher levels of soil organic matter and lower bulk density than the arable soils. Clay dispersion was generally high and nutrient levels were generally low, pointing to highly leached and inherently low-fertility highly erodible soils, typical for the region. The comprehensive analysis of soil quality followed a three-step approach, i.e., (i) the identification of a minimum dataset (MDS) of indicators that contains those soil properties which best represent the soil functions; (ii) scoring of the indicators according to their performance within the dataset; and (iii) integration of the indicator scores into a comparative soil-quality index (SQI). The main analytical tools used to develop the SQIs were principal components analysis, factor correlation and analysis of variance. The main soil properties (i.e., soil-quality indicators) that characterize the different land-use systems and their successions were different for the topsoil and the rooted subsoil. For the topsoil, 13 significant soil-quality indicators were identified. Most of these indicators related to the physical characteristics and the organic matter content of the soils. For the rooted subsoil, 5 indicators were found of which all were related to soil structure and organic matter content. These indicators were used for the minimum dataset to develop compound soil-quality indices (SQIs). The indices clearly showed that, overall, forest land uses maintain higher soil quality than agricultural land uses, both in the topsoil and rooted subsoil. However, not all associated SQIs were significantly different from each other. For the topsoil 4 distinctive ranks of SQI were identified for the land-use types studied (i.e., 1{u2014} secondary forest; 2{u2014} reforested land and mungbean-maize rotation; 3{u2014} maize-maize rotation and orchards; 4{u2014} maize-fallow rotation). For the rooted subsoil 3 ranks were identified (i.e., 1{u2014} secondary forest; 2{u2014} maize-fallow rotation; 3{u2014} reforested land, orchards, mungbean-maize rotation, maize-maize rotation). Soil quality -as addressed in this study- describes the essential soil conditions that set the limiting frame for long-term soil use. In the study area, the nutrient status is obviously not an indicator of soil quality as there is no nutrient build-up over time in any of the land uses. Soil quality is, however, strongly correlated with soil structure. The two decisive indicators in the SQIs, i.e., those indicators that can most clearly reveal soil»-quality changes, are soil organic matter and aggregate strength. Therefore, approaches to maintain and enhance soil quality in the study area must be linked to better recycling of organic materials and on-farm organic matter management. To achieve sustainable soil use in the study area, land-use technologies need to be adopted at the farm level that increase the efficiency of organic matter cycling, maintain favorable soil structure and reduce soil-degradation risks. This should include the incorporation of crop residues. Rotations with legumes, such as mungbean, will produce additional easily decomposable organic matter, with the favorable side effect of nitrogen fixation. Another option to improve organic-matter management would be the integration of livestock and introduction of {u2018}organic farming' into the farming systems. Simultaneously, an enabling environment needs to be developed based on appropriate extension services and adequate credit facilities for the farmers. With improved land management, the decreasing trends of soil quality in the study area can probably be reversed in the long run.
650 #0 - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name entry element Land use
Geographic subdivision Thailand
-- Nakhon Ratchasima
650 #0 - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name entry element Soils
Geographic subdivision Thailand
-- Nakhon Ratchasima
General subdivision Quality
700 1# - ADDED ENTRY--PERSONAL NAME
Personal name Zoebisch, Michael A.,
Relator term Chairperson
700 1# - ADDED ENTRY--PERSONAL NAME
Personal name Ranamukhaarachchi, S.L.,
Relator term Examination Committee
700 1# - ADDED ENTRY--PERSONAL NAME
Personal name Clemente, Roberto S.,
Relator term Examination Committee
700 1# - ADDED ENTRY--PERSONAL NAME
Personal name Hurni, Huns,
Relator term Examination committee
710 2# - ADDED ENTRY--CORPORATE NAME
Corporate name or jurisdiction name as entry element Dr. Gunnar Kjer Hansen Memorial Scholarship Prospect-Burma,
Relator term Scholarship donor
710 2# - ADDED ENTRY--CORPORATE NAME
Corporate name or jurisdiction name as entry element Asian Institute of Technology Joint Scholarship,
Relator term Scholarship donor
810 2# - SERIES ADDED ENTRY--CORPORATE NAME
Corporate name or jurisdiction name as entry element Asian Institute of Technology.
Title of a work Dissertation ;
Volume/sequential designation no. AS-03-02
856 ## - ELECTRONIC LOCATION AND ACCESS
Materials specified Full-Text
Uniform Resource Identifier <a href="http://203.159.5.9/ait-thesis/detail.php?q=B00224">http://203.159.5.9/ait-thesis/detail.php?q=B00224</a>
907 ## - LOCAL DATA ELEMENT G, LDG (RLIN)
a .b11932156
b mnait
c u
902 ## - LOCAL DATA ELEMENT B, LDB (RLIN)
a 240417
998 ## - LOCAL CONTROL INFORMATION (RLIN)
Operator's initials, OID (RLIN) 0
Cataloger's initials, CIN (RLIN) 040701
First date, FD (RLIN) m
-- a
-- u
-- 0
945 ## - LOCAL PROCESSING INFORMATION (OCLC)
l mnait
945 ## - LOCAL PROCESSING INFORMATION (OCLC)
l mnarc
942 ## - ADDED ENTRY ELEMENTS (KOHA)
Koha item type 22-AIT Thesis (Replacement)
942 ## - ADDED ENTRY ELEMENTS (KOHA)
Koha item type 40-Archives
909 ## - LOCAL ITEMS USED
Barcode Barcode : 30050120563308
CREATED CREATED : 2004-01-07
RECORD Id RECORD # : i12403519
LPATRON LPATRON : 1015151
LCHKIN LCHKIN : 2019-03-27
RENEWALS # RENEWALS : 0
-- # OVERDUE : 0
-- IUSE3 : 1
-- TOT CHKOUT : 9
-- TOT RENEW : 17
909 ## - LOCAL ITEMS USED
Barcode Barcode : 30050160038351
CREATED CREATED : 2016-01-20
RECORD Id RECORD # : i12870742
LPATRON LPATRON : 0
LCHKIN LCHKIN : -
RENEWALS # RENEWALS : 0
-- # OVERDUE : 0
-- IUSE3 : 0
-- TOT CHKOUT : 0
-- TOT RENEW : 0
Holdings
Withdrawn status Lost status Damaged status Not for loan Home library Current library Shelving location Date acquired Cost, normal purchase price Total checkouts Full call number Barcode Date last seen Copy number Price effective from Koha item type
      Available for Loans Asian Institute of Technology Library Asian Institute of Technology Library AIT Publications 18/08/2026 15.00   AIT Diss. no.AS-03-02 30050120563308 18/08/2026 3 18/08/2026 22-AIT Thesis (Replacement)
      Available for Loans Asian Institute of Technology Library Asian Institute of Technology Library Archives 18/08/2026     AIT Diss. no.AS-03-02 30050160038351 18/08/2026   18/08/2026 40-Archives
คัดลอกแล้ว!