Showing posts with label sustainable agriculture. Show all posts
Showing posts with label sustainable agriculture. Show all posts

Monday, 8 September 2025

New Breeding Paradigms to Enhance Jute (Corchorus spp.) Production and Their Achievements | Chapter 4 | Agricultural Sciences: Techniques and Innovations Vol. 4

 

Jute (Corchorus capsularis and Corchorus olitorius), often known as the "golden fibre," is an essential natural bast fibre crop that is important for the environment and economy, especially in South Asia and Southeast Asia. Although it is valuable but it has its own difficulties like biotic and abiotic stresses, as well as the requirement for higher fibre yield and quality to stay competitive. The history of jute, its geographical distribution, important breeding goals, such as increasing fibre yield, improving fibre quality and creating resistance to pests, diseases, and environmental stresses like drought and waterlogging, are all covered in this chapter. Numerous successful jute varieties such as JRC 321, JRC 212, etc., have been developed with the help of conventional breeding techniques, which include mass selection, pedigree selection, bulk breeding, hybridisation, and mutation breeding. The emphasis is then shifted to more recent developments, such as the introduction of unique traits through genetic engineering, the use of molecular markers (such as SSRs and SNPs) for marker-assisted selection, and the potential uses of genomics, bioinformatics and breakthrough tools like CRISPR gene editing. The chapter also covers some of the achievements of jute improvement- from developing high-yielding, pest-resistant varieties to developing varieties that can withstand drought, waterlogging and other climate challenges.  In order to secure the sustainable and competitive future of this vital fibre crop, the chapter concludes by describing future directions of jute breeding, mainly focusing on developing climate-resilient varieties, improving fibre and implementing innovative methods like genomic selection and the study of wild relatives. The blend of traditional breeding methods and newer breeding advancements is shaping a stronger, more sustainable future for this crop.

Author(s) Details

Kumar Aryan
Assam Agricultural University, Jorhat-785013, Assam, India.

 

Bhaswati Saikia
Assam Agricultural University, Jorhat-785013, Assam, India.

 

Meghali Kutum
Assam Agricultural University, Jorhat-785013, Assam, India.

 

R G Phukan
Assam Agricultural University, Jorhat-785013, Assam, India.

 

P K Goswami
Assam Agricultural University, Jorhat-785013, Assam, India.

 

G C Bora
Assam Agricultural University, Jorhat-785013, Assam, India.

 

Please see the book here:- https://doi.org/10.9734/bpi/asti/v4/6117

Monday, 1 September 2025

Ecology of Earthworms in Tropical Agroecosystems: Insights from Pineapple Plantations of Tripura, North-East India | Book Publisher International

 

This book explores earthworms' diversity, distribution, and ecological roles in the pineapple (Ananas comosus) plantations of Tripura, India. Earthworms, recognised as ecosystem engineers, play vital roles in organic matter decomposition, nutrient cycling, and soil structural improvement. The study examines species composition, spatio-temporal dynamics, and functional group organisation of earthworm communities in pineapple monocultures and mixed fruit plantations. It investigates soil–earthworm interactions under varying ecological parameters such as temperature, moisture, pH, and organic matter. Temporal shifts in community structure across plantations of different ages highlight successional trends, from disturbance-tolerant exotics in newly established plantations to complex assemblages dominated by endemic species in mature systems. The application of vermicompost enhances soil fertility, biodiversity, and crop yield, offering a sustainable alternative to chemical inputs. Overall, the findings demonstrate that while monoculture pineapple plantations support a relatively simplified soil fauna, targeted organic management strategies can restore biodiversity and improve agroecosystem sustainability. The work contributes both region-specific insights and broader ecological perspectives on the role of earthworms in tropical agriculture.

 

Author(s) Details

Animesh Dey
Ecology & Biodiversity Laboratory, Department of Zoology, Tripura University (A Central University), Suryamaninagar – 799022, Tripura, India.

 

Please see the link:- https://doi.org/10.9734/bpi/mono/978-81-991363-1-1

Friday, 21 February 2025

Characterization, Breeding and Selection of Rice Germplasm Panels Adapted to Low Soil Phosphorous and Nitrogen Environments in Kenya: An Advanced Study | Chapter 7 | Current Research Progress in Agricultural Sciences Vol. 8

Rice breeding efforts in Kenya have slowly been taking place to develop locally adapted high-yielding varieties with desirable eating qualities. Soil nitrogen (N) and phosphorus (P) deficiencies are among the major constraints constrictive to rice productivity globally, especially in resource-poor farming systems which were traditionally self-sustaining through slash and burn. There is therefore need to develop rice genotypes with enhanced root architecture that help them tolerate low soil N and P conditions. This work aimed at developing rice genotypes with enhanced tolerance to low N and P conditions through targeted breeding approaches that include hybridization, evaluations and recent works on rice research space. A diverse panel of rice germplasm obtained from CIAT Colombia as accessions and breeds for rainfed conditions were screened under controlled and field conditions to identify traits associated with nutrient use efficiency and generate information in this discipline. A total of 389 accessions and a local cultivar Duorado precoce were evaluated in a simple 30 × 13 alpha lattice design with two replications under four soil experimental environments (N⁻P⁻, no N or P application, N⁻P⁺, P applied, N⁺P⁻, N applied and N⁺P⁺, both N and P applied) at the rate of 60 kg P and 90 kg N ha-1. Data was recorded on Days to heading, anthesis and maturity (days), P and N tolerance, plant height (cm), above ground biomass (g), number of panicles (absolute numbers per ten plants), days to maturity (days), 1000 grain weight (g), and grain yield (kg ha-1). The genotypes and environments were highly significant for all the traits studied. The degree of genetic determination (H2) ranged from 6.8% for P tolerance to 36.5% for above ground biomass. The phenotypic coefficient of variation of genotypes ranged from 14.3% for days to maturity to 159.7% for top biomass. The genetic advance (GA) ranged from 0.2 for phosphorous tolerance to 1080.5 for grain yield, while the genetic advance expressed as a percent of the mean was 5.7% for days to maturity and 87.9% for top biomass. The top biomass seems to be a highly heritable trait and simple phenotypic selection is possible. The ten characters studied had wide variability under the four environments with days to maturity ranging from 188 for genotype ARCCU1Fa1-L4P3-HB under N⁺P⁺ to 177 for genotype CT16333(1)-CA-1-M under N⁻P⁻ condition. The highest yielding genotype was CT16328-CA-18-M under N⁻P⁻ with 5916 kg ha-1. The germplasm showed variability for low soil N and P adaptation, and hence improvement was possible to take advantage of the vast unexploited both rainfed lowland and upland environments for increased rice productivity to meet food-feed and nutritional households and national security in Kenya. There was high variability among the genotypes to warrant rice improvement for yield. Field trials conducted at AfricaRice research fields in Senegal have revealed significant yield improvements in the newly developed lines under nutrient deficient, toxic elements and problem soil environmental conditions. This study underscores the potential of breeding for nutrient-efficient rice varieties as a sustainable economic solution that reduces the need for fertilizers used to enhance productivity in nutrient-poor soils, contributing to food-feed and nutritional security in sub-Saharan Africa.

 

Author (s) Details

Kimani J. M
Food Crops and Natural Resource Management Department, Kenya Agricultural and Livestock Research Organization, Industrial Crops Research Institute, P.O. Box 16-80109, Mtwapa, Kenya.

 

Sang Bok Lee
Korea-Africa Food and Agriculture Cooperation Initiative, Africa Rice Training Center, Saint louis Africa Rice (Saint-Louis Senegal) Ndiaye, B.P. 96, Saint-Louis, Senegal.

 

Kang Kyung – HO
Korea-Africa Food and Agriculture Cooperation Initiative, Africa Rice Training Center, Saint louis Africa Rice (Saint-Louis Senegal) Ndiaye, B.P. 96, Saint-Louis, Senegal.

 

Phoebe Anyango Sikuku
Department of Botany, School of Physical and Biological Sciences, Maseno University, P.O. Box Private Bag, Maseno, Kenya.

 

Emily Waringa Gichuhi
Kenya Agricultural and Livestock Research Organization, Industrial Crops Research Centre, P.O BOX 298-10300, Mwea, Kerugoya, Kenya.

 

Mutiga Samuel Kilonzo
International Maize and Wheat Improvement Center (CIMMYT) ICRAF House, United Nations Avenue – Gigiri, PO Box 1041-00621, Nairobi, Kenya.

 

David Mwongera Thuranira
Kenya Agricultural and Livestock Research Organization, Horticultural Research Institute, P.O BOX 220-01000, Thika, Kenya.

 

Clotilda Nekesa Ondiko
Food Crops and Natural Resource Management Department, Kenya Agricultural and Livestock Research Organization, Industrial Crops Research Institute, P.O. Box 16-80109, Mtwapa, Kenya.

 

Lusike Wasilwa
Kenya Agricultural and Livestock Research Organisation, Post Office: P.O.Box 57811, City Square, NAIROBI, 00200, Kenya Kaptagat Rd, Loresho Nairobi, Kenya.

 

John Kirao Kalume
Food Crops and Natural Resource Management Department, Kenya Agricultural and Livestock Research Organization, Industrial Crops Research Institute, P.O. Box 16-80109, Mtwapa, Kenya.

 

Tongoona P.
African Centre for Crop Improvement, University of Kwa Zulu Natal, Private Bag X01, Scottsville 3209, Republic of South Africa.

 

Derera J.
African Centre for Crop Improvement, University of Kwa Zulu Natal, Private Bag X01, Scottsville 3209, Republic of South Africa and International Institute of Tropical Agriculture (IITA), PMB 5320, Oyo Road, Ibadan 200001, Oyo State, Nigeria.

 

 

Please see the book here:- https://doi.org/10.9734/bpi/crpas/v8/4081

Thursday, 20 February 2025

Organic Farming: Strategies for a Resilient and Sustainable Future | Chapter 5 | Current Research Progress in Agricultural Sciences Vol. 7

Organic farming has emerged as a sustainable alternative to conventional agriculture, emphasizing environmental health, biodiversity, and sustainable resource use. This paper explores the foundational principles of organic farming, its diverse techniques, and the multifaceted benefits it offers. It also highlights the challenges that organic farmers face, especially in scaling and economic viability, and discusses the role of organic practices in enhancing climate resilience. By examining global case studies from different countries like Zimbabwe, Vietnam, Kenya, Himalayan Region, we demonstrate the successful application of organic farming and explore its future potential in fostering food security and ecological harmony.

 

Author (s) Details

 

Ranjita Priyadarshini Biswal
Department of Chemistry, KIIT Polytechnic, Bhubaneswar-751024, Odisha, India.

 

Tanushree Das
Nano Innovation Laboratory, School of IKST, KISS (Deemed to be University), Bhubaneswar-751024, Odisha, India.

 

Bikram Keshari Das
Nano Innovation Laboratory, School of IKST, KISS (Deemed to be University), Bhubaneswar-751024, Odisha, India.

 

Please see the book here:- https://doi.org/10.9734/bpi/crpas/v7/3917

Wednesday, 19 February 2025

Advances in Catalysts for Electrochemical Nitrate Reduction: An Overview of a Sustainable Approach to Mitigating Pollution | Chapter 5 | Geography, Earth Science and Environment: Research Highlights Vol. 5

This study describes the development of catalysts for the electrochemical reduction of nitrate to ammonia, a promising approach for the integration of renewable energy sources and an alternative for ammonia production in agriculture. Nevertheless, nitrate pollution, mainly caused by industrial effluents, wastewater and agricultural runoff, poses a serious environmental and health risk, including eutrophication and groundwater contamination. Electrochemical nitrate reduction (ENR) has proven to be a viable strategy to reduce nitrate pollution by selectively converting nitrates into environmentally friendly products such as nitrogen gas or value-added compounds. Therefore, this study critically analyzes recent advances in ENR catalysts, focusing on metal-organic frameworks (MOFs), bimetallic and alloy systems, carbon-based electrocatalysts, and noble and non-noble metal catalysts. Particular attention is paid to insights into the mechanism, selectivity, stability and efficiency as well as scalability for practical applications. In addition, challenges such as catalyst deactivation, ammonia selectivity and energy efficiency should be investigated to identify strategies to improve performance. Catalytic efficiency is influenced by several factors, including reaction conditions, catalyst structure, loading methods and electrode interfaces. The catalytic activity, selectivity, Faradaic efficiency, current density and durability of different catalysts are compared by examining the structural, compositional and electrochemical properties that determine performance, providing valuable insights for future advances in the field. Ultimately, this study reveals innovative approaches for catalyst development and mechanism understanding, paving the way for a new era of sustainable and cost-effective ammonia production.

 

Author (s) Details

 

Gerald D. S. Quoie Jr.
State Key Laboratory of Pollution Control and Resources Reuse, College of Environmental Science and Engineering, Tongji University, Shanghai, China and Key Laboratory of Yangtze River Water Environment, Ministry of Education, Tongji University, Shanghai, China.

 

Jean Pierre Bavumiragira
State Key Laboratory of Pollution Control and Resources Reuse, College of Environmental Science and Engineering, Tongji University, Shanghai, China and Key Laboratory of Yangtze River Water Environment, Ministry of Education, Tongji University, Shanghai, China.

 

Varney Kromah
Department of Mining Engineering, College of Engineering, University of Liberia, Monrovia, Liberia.

 

 

Please see the book here:- https://doi.org/10.9734/bpi/geserh/v5/4431

Saturday, 2 March 2024

The Role of Poultry Manure Slurry from Biogas in Growing Barley | Chapter 3 | Research Advances and Challenges in Agricultural Sciences Vol. 4

This study highlights about role of poultry manure slurry from biogas in growing barley. Manure slurry, a by-product of biogas production generated from   anaerobic digestion of animal waste and crop residues, is often considered a substitute to reduce mineral fertilizer input. Being a cheap source of organic matter and plant nutrients, its application may improve soil fertility and yield quality and quantity. The accumulation of raw poultry residues in enormous quantities causes the release of odors and the leakage of toxic elements into the surface and groundwater, which negatively affects human health and the environment. So the bioreactor named the fixed-dome model as an anaerobic digester was designed and installed in the poultry field at the agricultural advisory office of college of agriculture at the University of Basra in Karmat-Ali, Iraq. Anaerobic organic fertilizer produced from anaerobic digestion pathway when raw poultry manure was fermented an aerobically for 56 days in the designed bioreactor, to study the use efficiency for anaerobic produced organic fertilizer and raw poultry manure when added at 150Kg N ha-1 at 0, 25, 50, 75 and 100 % of the recommended dose which was equal to a chemical recommendation for nitrogen as urea fertilizer while P and K were applied in a field experiment as traditional fertilizers as superphosphate and potassium sulfate respectively) to grow barley plants Hordeum vulgare L. Results showed that doses at 100% of anaerobic organic fertilizer were produced in the bioreactor with a significant increase in plant growth parameters as plant height, dry weight of shoot and amounts and their uptake of N and P elements in plants within 60 days of planting as compared to the rest treatments, so the biogas technology for the production of anaerobic organic fertilizer can help partly or mainly to reduce amounts of traditional doses of fertilizer. Anaerobic digestion has a major beneficial function in enhancing the availability and quality of nutrients like N and P in soil and promoting plant growth. However, it can be mostly or partially replaced by chemical fertilizers that are added to the soil, such as urea and superphosphate.


Author(s) Details:

Zainab K. Hasan,
Department of Soil Science and Water Resources, College of Agriculture, University of Basrah, Iraq.

Ali M. Jaber,
Department of Soil Science and Water Resources, College of Agriculture, University of Basrah, Iraq.

Please see the link here: https://stm.bookpi.org/RACAS-V4/article/view/13319

Friday, 27 January 2023

A Textbook of Integrated Farming Systems for Sustainable Agriculture | Book Publisher International

 India faces a number of difficulties in developing its agricultural sector because it has less than 2.4% of the world's arable land and 16.8% of the world's population. The globe is increasingly concerned about issues including food security, employment, income generation, resource conservation, and environmental protection. The increased production of food grains came at a tremendous cost to the environment and natural resources. Priority focus must be given to the problems of providing adequate employment, energy, sustainable cities, food security and sustainable agriculture, water and ocean management, and catastrophe preparedness. Integrated farming system (IFS) is one of the strategies for making the concept of sustainable development a reality within the context of sustainable agriculture. In an integrated farming system crop production, livestock, horticulture crops, fisheries, and all other aspects of farming are included. The status of these combinations is determined by the dominant modality of these systems in a certain location. These issues with sustainable agriculture must be resolved by the implementation of several reform measures. In order to boost farm output, lessen environmental damage, improve the quality of life for resource-strapped farmers, and ensure sustainability, integrated farming systems must be developed and put into practice. An integrated farming system can guarantee the maximum level of food production with the least amount of environmental effect and enhance the standard of living for farmers. More crucially, IFS makes resources, available to farmers so they may continue to produce food sustainably and productively, even in extremely sensitive climatic situations. In certain nations, notably India, IFS has changed traditional cattle farming, aquaculture, horticulture, agro-industry, and related industries. For the purpose of farming systems for sustainable agriculture, it is required to identify the primary integrated farming systems that are currently in use with internal cost adjustment, return, revenue, and employment.

Author(s) Details:

Shikhar Verma,
Department of Agronomy, Chandra Shekhar Azad University of Agriculture & Technology Nawabganj, Kanpur, Uttar Pradesh, India.

Jyotiprakash Mishra,
District Agro-Met Unit, KVK Mayurbhanj-1, Odisha, India.

Sweekruta Mohapatra,
Department of Agronomy, Sardar Vallabhbhai Patel University of Agriculture and Technology, Modipuram, Meerut, Uttar Pradesh, India.

Mausmi Rastogi,
Department of Agronomy, Sardar Vallabhbhai Patel University of Agriculture and Technology, Modipuram, Meerut, Uttar Pradesh, India.

Vikash Singh,
Department of Agronomy, Acharya Narendra Deva University of Agriculture & Technology, Kumarganj, Ayodhya, Uttar Pradesh, India.

Please see the link here: https://stm.bookpi.org/ATIFSSA/article/view/9154

Monday, 31 January 2022

Characterization of Soybean Genotypes on the Basis of Yield Attributing Traits and SSR Molecular Markers | Chapter 07 | Innovations in Science and Technology Vol. 3

 Soybean is well-designed to be a main crop and a vital source of nutrition for both humans and animals. The current study was carried out to distinguish between different soybean genotypes based on morpho-physiological parameters and SSR genetic markers. Data for various morpho-physiological variables were collected from experiments carried out in the field using the RBD design, while molecular work was carried out in the lab using 32 microsatellite markers to see whether there was any conceivable variation among different soybean genotypes. The incidence of significant magnitude of variability was discovered by morphophysiological inquiry. The genotypes were sorted into major and minor clusters using a phylogenetic tree based on morpho-physiological features. There were fifty genotypes in the major cluster, but only three genotypes in the smaller cluster. The marker Satt520 had the most genetic diversity (0.66) and the lowest genetic diversity (0.037) across polymorphic 32 microsatellite markers, with an average of 0.35. The highest PIC value was 0.59, which was planned by the same marker, Satt520, and the lowest was 0.036, which was prearranged by marker Satt557. The average PIC value was 0.32, while the average major allele frequency was 0.69. Data based on microsatellite markers also grouped the genotypes into one major and one minor cluster. The presence of genetic variability among genotypes under examination is confirmed by a molecular analysis based on microsatellite markers. The results of this study could help to improve soybean genotypes and promote high-yielding varieties by incorporating a variety of genotypes with good agronomical qualities into a breeding plan.


Author(S) Details

Nishi Mishra
Department of Plant Molecular Biology and Biotechnology, College of Agriculture, Rajmata Vijayraje Scindia Agricultural University, Gwalior 474002, India

Manoj Kumar Tripathi
Department of Plant Molecular Biology and Biotechnology, College of Agriculture, Rajmata Vijayraje Scindia Agricultural University, Gwalior 474002, India.

Sushma Tiwari
Department of Plant Molecular Biology and Biotechnology, College of Agriculture, Rajmata Vijayraje Scindia Agricultural University, Gwalior 474002, India.

Niraj Tripathi
Jawaharlal Nehru Agricultural University, Jabalpur 482004, India.

Neha Gupta
Department of Plant Molecular Biology and Biotechnology, College of Agriculture, Rajmata Vijayraje Scindia Agricultural University, Gwalior 474002, India.

Akash Sharma
Department of Plant Molecular Biology and Biotechnology, College of Agriculture, Rajmata Vijayraje Scindia Agricultural University, Gwalior 474002, India.

Ravindra Singh Solanki
Department of Plant Molecular Biology and Biotechnology, College of Agriculture, Rajmata Vijayraje Scindia Agricultural University, Gwalior 474002, India.

Sharad Tiwari
Biotechnology Centre, Jawaharlal Nehru Agricultural University, Jabalpur 482004, India.

View Book:- https://stm.bookpi.org/IST-V3/article/view/5458

Screening of Soybean Genotypes against Drought on the Basis of Gene-Linked Microsatellite Markers | Chapter 04 | Innovations in Science and Technology Vol. 3

 Because of its enormous contribution as a vegetable oil and protein in the human diet, soybean is considered an important crop. Nonetheless, because to the usual occurrence of drought-related stress, its output has been exaggeratedly reduced. In this study, a total of 12 SSR molecular markers were used to screen 53 soybean genotypes in order to assess the efficacy of existing markers in genetic diversity analysis as well as their validation based on their association with drought tolerant genes. The largest genetic diversity (0.6629) was observed with marker Satt520, while the lowest (0.0370) was observed with marker Satt557, with an average of 0.3746. With a mean worth of 0.3063, the greatest PIC value was 0.5887, which was prearranged by related markers such as Satt520, and the lowest 0.0363 by Satt557. Some potential drought resistant genotypes, such as JS97-52 and JS95-60, were able to be distinguished from the rest of the genotypes using a dendrogram created using the banding profile of utilised markers. The current study's findings may aid in the development of drought-tolerant soybean to bread cultivars in the future.


Author(S) Details

Nishi Mishra
Department of Plant Molecular Biology & Biotechnology, College of Agriculture, Rajmata Vijayraje Scindia Agricultural University, Gwalior 474002,India.

M. K. Tripathi
Department of Plant Molecular Biology & Biotechnology, College of Agriculture, Rajmata Vijayraje Scindia Agricultural University, Gwalior 474002,India.

Niraj Tripathi
Directorate of Research Services, Jawaharlal Nehru Agricultural University, Jabalpur 482004, India.

Sushma Tiwari
Department of Plant Molecular Biology & Biotechnology, College of Agriculture, Rajmata Vijayraje Scindia Agricultural University, Gwalior 474002,India.

Neha Gupta
Department of Plant Molecular Biology & Biotechnology, College of Agriculture, Rajmata Vijayraje Scindia Agricultural University, Gwalior 474002,India.

Akash Sharma
Department of Plant Molecular Biology & Biotechnology, College of Agriculture, Rajmata Vijayraje Scindia Agricultural University, Gwalior 474002,India.

View Book:- https://stm.bookpi.org/IST-V3/article/view/5455

Tuesday, 16 November 2021

Role of Biochemical and Antioxidant Enzymes Activities in Drought Tolerance in Soybean: A Recent Study | Chapter 8 | Current Topics in Agricultural Sciences Vol. 3

 Biochemical profiling, anti-oxidant enzyme activity, and protein profiling were used to split soybean genotypes into two groups. Based on several biochemical and antioxidant enzyme activity investigation among 53 genotypes, drought tolerance traits were found in three genotypes: JS97-52, RVS-14, and JS95-60. The findings could help enhance soybean genotypes by allowing for the development of drought-tolerant genotypes using both conventional and molecular breeding methods. These findings also laid the groundwork for more research into the drought tolerance mechanism in soybean crops using modern biotechnological technology.


Author(S) Details

N. Mishra
Department of Plant Molecular Biology and Biotechnology, College of Agriculture, Rajmata Vijayaraje Scindia Agricultural University, Gwalior 474002, India.

M. K. Tripathi
Department of Plant Molecular Biology and Biotechnology, College of Agriculture, Rajmata Vijayaraje Scindia Agricultural University, Gwalior 474002, India.

N. Tripathi
Directorate of Research Services, Jawaharlal Nehru Agricultural University, Jabalpur 482004, India.

S. Tiwari
Department of Plant Molecular Biology and Biotechnology, College of Agriculture, Rajmata Vijayaraje Scindia Agricultural University, Gwalior 474002, India.

N. Gupta
Department of Plant Molecular Biology and Biotechnology, College of Agriculture, Rajmata Vijayaraje Scindia Agricultural University, Gwalior 474002, India.

A. Sharma
Department of Plant Molecular Biology and Biotechnology, College of Agriculture, Rajmata Vijayaraje Scindia Agricultural University, Gwalior 474002, India.

M. K. Shrivastav
Department of Plant Breeding & Genetics, Jawaharlal Nehru Agricultural University, Jabalpur 482004, India.

View Book:- https://stm.bookpi.org/CTAS-V3/article/view/4629


Saturday, 9 October 2021

Economic Impact of Water Management Practices for Onion Production in Quebec, Canada | Chapter 3 | Modern Perspectives in Economics, Business and Management Vol. 10

 On-farm climate change adaptation measures can be excellent solutions to strengthen a farm's resilience and inherently ensure its output sustainability. In agricultural production in Canada, additional water is critical. Climate change and greater competition from other users may result in declining water supplies in Eastern Canada (including Quebec) in the future. We focus on a Canadian case study — a farm cultivating onions in the province of Quebec — to investigate the degree to which adoption of enhanced water management practises can lead to more sustainable production. In terms of economical, social, and environmental implications, the existing technology of surface irrigation was compared to the new technology of sprinkler irrigation. By implementing such an irrigation system, the onion grower was able to boost crop yields while also lowering annual operational expenses by saving electricity and water. In addition to these accomplishments, the producer reduced greenhouse gas emissions and improved nutrient utilisation efficiency. With the new technology, there were more recruited staff, but there was also more time given to managerial decision-making. From an economic sense, net present value calculations show that the new technology was desirable. The multi-criteria study revealed new information about how to increase the long-term viability of sprinkler irrigation in onion farming in Quebec. However, more effort is needed to collect knowledge on the new technology's spillover costs or advantages to the rest of society, which could help policymakers design appropriate policies for long-term agricultural systems.


Author(S) Details

Ana-Maria Bogdan
Canadian Hub for Applied and Social Research, University of Saskatchewan, Saskatoon, SK, Canada.

Suren Kulshreshtha
Department of Agricultural and Resource Economics, University of Saskatchewan, Saskatoon, S7N 5A8, Canada.

View Book:- https://stm.bookpi.org/MPEBM-V10/article/view/4044

Tuesday, 2 March 2021

Advanced Study on Soil Quality Response to Long-Term Nutrients and Management Practice to Potato Production in Ultisols of Subtropical China | Chapter 5 |International Research in Environment, Geography and Earth Science Vol. 8

The creation of a sustainable agricultural system necessitates an understanding of soil quality, the degree and effect of degradation processes, and the existing land use management strategy. Soil response to management and inputs are important factors that are based on soil quality, and this study looked at Ultisols in subtropical China. Long-term studies in Asia have shown that over-exploitation of soils has resulted in the exhaustion of intensive agricultural production systems, with gradually decreasing productivity. From 2000 to 2009, improvements in soil quality were calculated using acceptable indicators in a long-term experiment at the Taoyuan Station in Hunan Province, China. The data was analysed using the SAS statistical package for ANOVA, and the means were separated using DNMRT and graphically matched to establish threshold limits for a minimum threshold data collection. The soils responded favourably with the Sweet potato-rape/NP+straw treatment (7.18 g kg-1) contributing significantly (P0.05) higher total carbon, while the Sweet potato-rape/nil fertiliser and Fallow/nil fertiliser application treatments contributed the least total carbon. Sweet potato-rape/NP+ straw contributed the most total nitrogen (0.882 g kg-1) and was slightly (P0.05) higher than the other treatments. The sweet potato-rape/NPK+stalk treatment created substantially more biomass carbon (132.66 mg kg-1) than the other treatments, suggesting that it is a stronger biomass carbon contributor. Sweet potato-rape/NPK+stalk added 23.96 mg kg-1 of biomass nitrogen to the Ultisols, which was substantially higher than Sweet potato-rape/NPK (18.34 mg kg-1), Sweet potato-rape/nil fertiliser (16.36 mg kg-1) or Fallow/nil fertiliser (14.92 mgkg-1). In contrast to Sweet potato-rape/NPK, treatments with stalk amendments resulted in increases of 3.6 to 5.7 percent biomass carbon and 15.8 to 23.5 percent biomass nitrogen. Organic matter inputs as complement fertiliser materials were blamed for increasing trends in biomass carbon, nitrogen, and phosphorus in the Ultisols. In the Ultisols, the study found that the Sweet potato-rape/NP+straw treatment (7.18 g kg-1) contributed significantly more total carbon than the other treatments (P0.05), followed by Peanut-broadbean/NP+straw (6.81 g kg-1) that contributed significantly more total carbon than the other treatments (P0.05), and the least total carbon was contributed by Sweet potato-rape/nil fertiliser and Fallow/nil fertiliser application treatments. Potato yields have declined by as much as 65.57 percent since 2007, necessitating further study to determine the cause of the decline and avoid possible yield depressions. To improve future soil quality monitoring in support of sustainable crop production and national food security, threshold limits for a selected minimum data set for the subtropical China area Ultisols on sweet potato production were established.

Author (s) Details

A. C. Odunze
Key Laboratory of Agro-ecological Processes in Subtropical Region, Institute of Subtropical Agriculture, Chinese Academy of Sciences, Changsha 410125, China and Department of Soil Science/IAR, Ahmadu Bello University, P.M.B. 1044, Zaria, Nigeria.


Jinshui Wu
Key Laboratory of Agro-ecological Processes in Subtropical Region, Institute of Subtropical Agriculture, Chinese Academy of Sciences, Changsha 410125, China.

Shoulong Liu
Key Laboratory of Agro-ecological Processes in Subtropical Region, Institute of Subtropical Agriculture, Chinese Academy of Sciences, Changsha 410125, China.

Hanhua Zhu
Key Laboratory of Agro-ecological Processes in Subtropical Region, Institute of Subtropical Agriculture, Chinese Academy of Sciences, Changsha 410125, China.

Tida Ge
Key Laboratory of Agro-ecological Processes in Subtropical Region, Institute of Subtropical Agriculture, Chinese Academy of Sciences, Changsha 410125, China.

Yi Wang
Key Laboratory of Agro-ecological Processes in Subtropical Region, Institute of Subtropical Agriculture, Chinese Academy of Sciences, Changsha 410125, China.

Qiao Luo
Key Laboratory of Agro-ecological Processes in Subtropical Region, Institute of Subtropical Agriculture, Chinese Academy of Sciences, Changsha 410125, China.

View Book :- https://stm.bookpi.org/IREGES-V8/issue/view/37

Wednesday, 30 December 2020

Assessment of Soil Fertility Status for Sustainable Productivity: A Study in Some Tea Garden Belts of Assam, India | Chapter 11 | Current Perspectives on Chemical Sciences Vol. 6

Conventional farming has posed a significant challenge to the quality of food, the climate and the quality of water. The key cause of soil quality deterioration in irrigated areas is insufficient and unbalanced application of agrochemicals (fertilisers, pesticides, herbicides and insecticides) to the soil and intensive soil tillage practises, resulting in stagnating or even declining crop productivity and quality. As population growth rises, there is a rapid demand for rising food production to promote the use of high yielding varieties and the need to use inorganic chemicals to satisfy market demand. The development became plateau with the use of the inorganic fertiliser during the late 60s; at the same time it produced many adverse effects such as the degradation of soil quality and environmental quality; eventually the quality of food. The need for an hour is to achieve, on a sustainable basis, greater crop yield from our limited land resources. Organic farming for sustainable agriculture is now gaining traction around the world in order to provide customers with a healthier climate and a better quality of food. It is important to evaluate the status of soil quality for the traditional agricultural system as a sustainable agricultural system, because fertile soil is the fundamental resource for higher crop production, better food quality and the climate. A research was carried out in the paddy fields of tea garden belts viz. maintaining on this mind. Rungagora, Balijan, Banwaripur, Khomtai, Rungajaun, Lattakoojan, Borjan, Behora, Negheriting and Borsapori of Golaghat district of Assam for pH, electrical conductance (EC), soil organic matter (SOM), accessible nitrogen (AN), exchangeable potassium (EK), available phosphorous (AP) and bulk density (BD) soil fertility status investigations during 2008-2010. The study area was divided into six fertility groups (MMML, MMHL, MMMM, MHHL, MHHM and MMHM) based on the SOM, available N, available P and exchangeable K in the soil. No changes in the soil fertility group were found for the majority of soil samples observed under the MMML group and soils of the Rungagora, Negheriting, Borsapori, Behora and Khomtai TE belt. During the study, Borjan TE belts were found to shift from MMHL to MMML, Balijan TE belts from MMHL to MHHL, Rungajaun TE belts from MHHM to MMHM and Lattakoojan TE belts from MMMM to MMML.


Author(s) Details

Bhupen Kumar Baruah
Department of Chemistry, Jagannath Barooah College, Jorhat, Assam, India.

Dr. Bhanita Das
Department of Statistics, North Eastern Hill University, Shillong, Meghalaya, India.

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https://bp.bookpi.org/index.php/bpi/catalog/book/355

Friday, 13 November 2020

Frontier Technologies for Climate Resilient and Sustainable Agriculture | Chapter 14 | New Perspectives in Agriculture and Crop Science Vol. 3

 


Climate-related problems pose a significant threat to agriculture and its dependent subsistence population. The rising population, hunger and food demand are troubling the agricultural system in order to meet the needs of future generations. The economy is seriously impacted by excessive rainfall and temperatures, recurrent floods, droughts and cyclones, and such devastating events also have a direct effect on agricultural development. Technological innovations must be implemented to farmers in order to make farming environment resilient and more productive and show the advantages of the valuable instruments and tools. Modern farming system innovations, such as sensors, robotics, automated and digital manmade devices, play an important role in improving agricultural production by forecasting weather changes and enabling farmers to make perfect decisions about immediate and required modifications. Food protection and environmental safety are maintained by the preservation of sustainability in agricultural production through the implementation of available technologies.

Author(s) Details

Dr. S. Rakesh
ICAR-National Academy of Agricultural Research Management, Rajendranagar, Hyderabad, India.

G. Ranjith Kumar
ICAR-National Academy of Agricultural Research Management, Rajendranagar, Hyderabad, India.


J. Ravinder
Department of Soil Science & Agricultural Chemistry, Agricultural College, Aswaraopet, PJTSAU, Telangana State, India.


J. Kamalakar
Department of Soil Science & Agricultural Chemistry, Agricultural College, Warangal, PJTSAU, Telangana State, India.


R. Manasa

ICAR-National Academy of Agricultural Research Management, Rajendranagar, Hyderabad, India.

View Book
:- https://bp.bookpi.org/index.php/bpi/catalog/book/293