Skip to main content

Main menu

  • Home
  • Content
    • Current Issue
    • Early Online
    • Archive
    • Subject Collections
  • Info For
    • Authors
    • Reviewers
    • Subscribers
    • Advertisers
  • About
    • About JSWC
    • Editorial Board
    • Permissions
    • Alerts
    • RSS Feeds
    • Contact Us

User menu

  • Register
  • Subscribe
  • My alerts
  • Log in
  • My Cart

Search

  • Advanced search
Journal of Soil and Water Conservation

  • Register
  • Subscribe
  • My alerts
  • Log in
  • My Cart
Journal of Soil and Water Conservation

Advanced Search

  • Home
  • Content
    • Current Issue
    • Early Online
    • Archive
    • Subject Collections
  • Info For
    • Authors
    • Reviewers
    • Subscribers
    • Advertisers
  • About
    • About JSWC
    • Editorial Board
    • Permissions
    • Alerts
    • RSS Feeds
    • Contact Us
  • Follow SWCS on Twitter
  • Visit SWCS on Facebook
Research ArticleResearch Section

Soil loss due to harvesting of peanut and cassava under traditional farming systems: Cost implications of soil nutrient loss

S.O. Oshunsanya, V.M. Samson and H. Yu
Journal of Soil and Water Conservation May 2022, 77 (3) 240-248; DOI: https://doi.org/10.2489/jswc.2022.00111
S.O. Oshunsanya
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
V.M. Samson
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
H. Yu
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
  • Article
  • Figures & Data
  • References
  • Info & Metrics
  • PDF
Loading

References

  1. ↵
    1. M.O. Akoroda
    1. Alabi, R.T., and
    2. A.G. Ibiyemi
    . 2000. Rainfall in Nigeria and food crop production. In Agronomy in Nigeria, 1st edition, ed. M.O. Akoroda, 63–66. Ibadan, Nigeria: University of Ibadan.
  2. ↵
    1. Alabi, O.F.,
    2. B. Owonibi,
    3. S.O. Olafemi, and
    4. S. Olagunju
    . 2013. Production analysis of groundnut in Birnin Gwari local government area of Kaduna State. Production and Agricultural Technology 9(2):102–113.
    OpenUrl
  3. ↵
    1. A. Klute
    1. Blake, G.R., and
    2. K.H. Hartge
    . 1986. Bulk density. In Methods of Soil Analysis, Part 1. Agronomy Monograph 9, ed. A. Klute, 363–375. Madison, WI: American Society of Agronomy.
    OpenUrl
  4. ↵
    1. A.L. Page,
    2. P.H. Miller, and
    3. D.R. Keeney
    1. Bremner, J.M., and
    2. C.S. Mulvaney
    . 1982. Nitrogen-Total. In Methods of Soil Analysis, Part 2 Chemical and Microbiological Properties, 2nd edition, ed. A.L. Page, P.H. Miller, and D.R. Keeney, 539–579. Madison, WI: American Society of Agronomy.
  5. ↵
    1. Dada, P.O.O.,
    2. O.R. Adeyanju,
    3. O.J. Adeosun, and
    4. J.K. Adewumi
    . 2016. Effects of soil physical properties on soil loss due to manual yam harvesting under a sandy loam environment International Soil and Water Conservation Research 4:121–125.
    OpenUrl
  6. ↵
    1. Downie, H.F.,
    2. T.A. Valentine,
    3. W. Otten,
    4. A.J. Spiers, and
    5. L.X. Dupuy
    . 2014. Transparent soil microcosms allow 3D spatial quantification of soil microbiological processes in vivo. Plant Signaling & Behavior 9:e970421. https//doi.org/10.4161/15592316.2014.970421.
    OpenUrl
  7. ↵
    1. FAO (Food and Agricultural Organization)
    . 2016. FAOSTAT database. Rome: FAO.
  8. ↵
    1. FAO and ITPS (Intergovernmental Technical Panel on Soils)
    . 2017. Global Soil Organic Carbon Map - GSOCmap. Version 1.0. Rome: FAO.
  9. ↵
    1. Faraji, M.,
    2. A. Amirian-Chakan,
    3. M. Jafarizadeh, and
    4. A.M. Behbahani
    . 2017. Soil and nutrient losses due to root crops harvesting: A case study from southwestern Iran. Archives of Agronomy and Soil Science 63(11):1523–1534.
    OpenUrl
  10. ↵
    1. Fustec, J.,
    2. F. Lesuffleur,
    3. S. Mahieu, and
    4. J.B. Cliquet
    . 2010. Nitrogen rhizodeposition of legumes: A review. Agronomy and Sustainable Development 30:57–66.
    OpenUrl
  11. ↵
    1. Gabarron, G.M.A.,
    2. J.A. Hannam,
    3. T. Mayr, and
    4. P.J. Jarvis
    . 2019. BEET SOIL: A decision support tool for forecasting the impact of soil conditions on sugar beet harvest. Soil Tillage Research 191:131–141.
    OpenUrl
  12. ↵
    1. J.H. Dane and
    2. G.C. Topp
    1. Gee, G.W., and
    2. D. Or
    . 2002. Particle size analysis. In Methods of Soil Analysis, Part 4 Physical Methods, 2nd edition, ed. J.H. Dane and G.C. Topp, 225–294. Madison, WI: Soil Science Society of America.
  13. ↵
    1. J.H. Dane and
    2. G.C. Topp
    1. Grossman, R.B., and
    2. T.G. Reinsch
    . 2002. Bulk density and linear extensibility: Core method. In Methods of Soil Analysis, Part 4 Physical Methods, 2nd edition, ed. J.H. Dane and G.C. Topp, 208–228. Madison, WI: Soil Science Society of America.
  14. ↵
    1. Hillel, D.
    2004. Introduction to Environmental Soil Physics. London: Academic Press Limited.
  15. ↵
    1. Hossain, A.,
    2. S.K. Gunri,
    3. M. Barman,
    4. A.E.L. Sabagh, and
    5. J.A. Teixeira da Silva
    . 2019. Isolation, characterization and purification of Rhizobium strain to enrich the productivity of groundnut (Arachis hypogaea L.). Open Agriculture (4):400–409.
    OpenUrl
  16. ↵
    1. Isabirye, M.,
    2. G. Ruysschaert,
    3. L. Van linden,
    4. J. Poesen,
    5. M.K. Magunda, and
    6. J. Deckers
    . 2007. Soil losses due to cassava and sweet potato harvesting: A case study from low input traditional agriculture. Soil and Tillage Research 92:96–103.
    OpenUrl
  17. ↵
    1. Jackson, M.L.
    1962. Soil Chemical Analysis. Englewood Cliffs, NJ: Prentice Hall, Inc.
  18. ↵
    1. Lebot, V.
    2009. Tropical Root and Tuber Crops: Cassava, Sweet Potato, Yams and Aroids. Wallingford, UK: CAB Books.
  19. ↵
    1. Muoni, T.,
    2. E. Koomson,
    3. I. Oborn,
    4. C. Marohn,
    5. C.A. Watson,
    6. G. Bergkvist,
    7. A. Barnes,
    8. G. Cadisch, and
    9. A. Duncan
    . 2019. Reducing soil erosion in smallholder farming systems in east Africa through the introduction of different crop types. Experimental Agriculture 56(2). https://doi.org/10.1017/S0014479719000280.
  20. ↵
    1. Mwango, S.B.,
    2. B.M. Msanya,
    3. P.W. Mtakwa,
    4. D.N. Kimaro,
    5. J. Deckers,
    6. J. Poesen,
    7. S. Lilanga, and
    8. R. Sanga
    . 2015. Soil loss due to crop harvesting in Usambara Mountains, Tanzania: The case of carrot, onion and potato. International Journal of Plant and Soil Science 4(1):18–28.
    OpenUrl
  21. ↵
    1. A.L. Page
    1. Olsen, S.R., and
    2. L.E. Sommers
    . 1982. Phosphorus. In Methods of Soil Analysis, Part 2 Chemical and Microbiological Properties, ed. A.L. Page, 403–430. Madison, WI: American Society of Agronomy, Soil Science Society of America.
  22. ↵
    1. Oni, P.J.
    2015. A market survey of soils transported with groundnuts. A project report submitted to the Department of Agronomy, University of Ibadan, Ibadan, Nigeria.
  23. ↵
    1. Oshunsanya, S.O.
    2016a. Alternative method of reducing soil loss due to harvesting of sweet potato: A case study of low input agriculture in Nigeria. Soil and Tillage Research 158:49–56.
    OpenUrl
  24. ↵
    1. Oshunsanya, S.O.
    2016b. Quantification of soil loss due to white cocoyam (Colocasia esculentus) and red cocoyam (Xanthosoma sagittifolium) harvesting in traditional farming system. Catena 137:134–143.
    OpenUrl
  25. ↵
    1. Oshunsanya, S.O.,
    2. Y. Hanqing, and
    3. Y. Li
    . 2018a. Soil loss due to root crop harvesting increases with tillage operations. Soil and Tillage Research 181:93–101.
    OpenUrl
  26. ↵
    1. Oshunsanya, S.O.,
    2. Y. Hanqing,
    3. Y. Li, and
    4. S. Surinder
    . 2018b. Root hairs and cortex contribute to soil loss due to root crop harvesting. Catena 174:514–523.
    OpenUrl
  27. ↵
    1. Panagos, P.,
    2. P. Borrelli, and
    3. J. Poesen
    . 2019. Soil loss due to crop harvesting in the European Union: A first estimation of an underrated geomorphic process. Science of the Total Environment 664:487–498.
    OpenUrl
  28. ↵
    1. Parlak, M., and
    2. H. Blanco-Canqui
    . 2015. Soil losses due to potato harvesting: A case study in western Turkey. Soil Use Management 31:525–527.
    OpenUrl
  29. ↵
    1. Parlak, M.,
    2. G. Cicek, and
    3. H. Blano-Canqui
    . 2018. Celery harvesting causes losses of soil: A case study in Turkey. Soil and Tillage Research 180:204–209.
    OpenUrl
  30. ↵
    1. Parlak, M.,
    2. T. Everest, and
    3. H. Blanco
    . 2021. Soil loss due to sugar beet harvesting in Northwestern Turkey. Journal of Soil Science and Plant Nutrition 21:2993–3001. https://doi.org/10.1007/s42729-021-00584-z.
    OpenUrl
  31. ↵
    1. Parlak, M.,
    2. T. Everest,
    3. S.J. Ruis, and
    4. H. Blanco
    . 2020. Impact of urbanization on soil loss: A case study from sod production. Environmental Monitoring and Assessment 192:588.
    OpenUrl
  32. ↵
    1. Parlak, M.,
    2. C. Palta,
    3. S. Yokus,
    4. H. Blanco-Canqui, and
    5. D.A. Carkaci
    . 2016. Soil losses due to carrot harvesting in south central Turkey. Catena 140:24–30.
    OpenUrl
  33. ↵
    1. Poesen, J.
    2018. Soil erosion in the anthropocene: Research needs. Earth Surface Processes and Landforms 43:64–84.
    OpenUrl
  34. ↵
    1. Poesen, J.W.A.,
    2. G. Verstraeten,
    3. R. Soenens, and
    4. L. Seynaeve
    . 2001. Soil losses due to harvesting of chicory roots and sugar beet: An underrated geomorphic process? Catena 43:35–47.
    OpenUrlGeoRef
  35. ↵
    1. Rüscher, D.,
    2. J.M. Corral,
    3. A.V. Carluccio,
    4. P.A.W. Klemens,
    5. A.G.L. Stavolone,
    6. H.E. Neuhaus,
    7. F. Ludewig,
    8. U. Sonnewald, and
    9. W. Zierer
    . 2021. Auxin signaling and vascular cambium formation enable storage metabolism in cassava tuberous roots. Journal of Experimental Botany 72(10):3688–3703.
    OpenUrl
  36. ↵
    1. Ruysschaert, G.,
    2. J. Poesen,
    3. G. Verstraeten, and
    4. G. Govers
    . 2004. Soil loss due to crop harvesting: Significance and determining factors. Progress in Physical Geography 28:467–501.
    OpenUrlCrossRefGeoRef
  37. ↵
    1. Ruysschaert, G.,
    2. J. Poesen,
    3. G. Verstraeten, and
    4. G. Govers
    . 2006. Soil losses due to mechanized potato harvesting. Soil and Tillage Research 86(1):52–72.
    OpenUrl
  38. ↵
    1. Ruysschaert, G.,
    2. J. Poesen,
    3. A. Wauters,
    4. G. Govers, and
    5. G. Verstraeten
    . 2007. Factors controlling soil loss during sugar beet harvesting at the field plot scale in Belgium. European Journal Soil Science 58:1400–1409.
    OpenUrl
    1. Soil Survey Staff
    . 2014. Keys to soil Taxonomy, 12th edition. Washington, DC: USDA Natural Resources Conservation Service. http://soilsusda.gow/technical/classification/tax-keys/keyspdf.
  39. ↵
    1. Sumithra, R.,
    2. M. Thushyanthy, and
    3. T. Srivaratharasan
    . 2013. Assessment of soil loss and nutrient depletion due to cassava harvesting: A case study from low input traditional agriculture. International Soil and Water Conservation Research 1(2):72–79.
    OpenUrl
  40. ↵
    1. Thomaz, E.Z., and
    2. J. Bereze
    . 2021. Soil loss due to crop harvest in Southern Brazil: Effect of potato morphology. Plant Soil 468:67–76. https://doi.org/10.1007/s11104-021-05114-5.
    OpenUrl
  41. ↵
    1. Vermeulen, G.D.
    2001. Reduction of soil tare by improved uprooting of sugar beet: A soil dynamic approach. PhD thesis, Wageningen University, Wageningen, The Netherlands.
  42. ↵
    1. Yu, H.,
    2. Y. Li,
    3. A. Chappel, and
    4. J. Poesen
    . 2016. Soil nutrient loss due to tuber crop harvesting and its environmental impact in the north China plain. Journal of Integrated Agriculture 15:1612–1624.
    OpenUrl
PreviousNext
Back to top

In this issue

Journal of Soil and Water Conservation: 77 (3)
Journal of Soil and Water Conservation
Vol. 77, Issue 3
May/June 2022
  • Table of Contents
  • Table of Contents (PDF)
  • About the Cover
  • Index by author
  • Front Matter (PDF)
Print
Download PDF
Article Alerts
Sign In to Email Alerts with your Email Address
Email Article

Thank you for your interest in spreading the word on Journal of Soil and Water Conservation.

NOTE: We only request your email address so that the person you are recommending the page to knows that you wanted them to see it, and that it is not junk mail. We do not capture any email address.

Enter multiple addresses on separate lines or separate them with commas.
Soil loss due to harvesting of peanut and cassava under traditional farming systems: Cost implications of soil nutrient loss
(Your Name) has sent you a message from Journal of Soil and Water Conservation
(Your Name) thought you would like to see the Journal of Soil and Water Conservation web site.
CAPTCHA
This question is for testing whether or not you are a human visitor and to prevent automated spam submissions.
9 + 4 =
Solve this simple math problem and enter the result. E.g. for 1+3, enter 4.
Citation Tools
Soil loss due to harvesting of peanut and cassava under traditional farming systems: Cost implications of soil nutrient loss
S.O. Oshunsanya, V.M. Samson, H. Yu
Journal of Soil and Water Conservation May 2022, 77 (3) 240-248; DOI: 10.2489/jswc.2022.00111

Citation Manager Formats

  • BibTeX
  • Bookends
  • EasyBib
  • EndNote (tagged)
  • EndNote 8 (xml)
  • Medlars
  • Mendeley
  • Papers
  • RefWorks Tagged
  • Ref Manager
  • RIS
  • Zotero
Request Permissions
Share
Soil loss due to harvesting of peanut and cassava under traditional farming systems: Cost implications of soil nutrient loss
S.O. Oshunsanya, V.M. Samson, H. Yu
Journal of Soil and Water Conservation May 2022, 77 (3) 240-248; DOI: 10.2489/jswc.2022.00111
del.icio.us logo Digg logo Reddit logo Twitter logo Facebook logo Google logo Mendeley logo
  • Tweet Widget
  • Facebook Like
  • Google Plus One

Jump to section

  • Article
    • Abstract
    • Introduction
    • Materials and Methods
    • Results and Discussion
    • Summary and Conclusions
    • References
  • Figures & Data
  • Info & Metrics
  • References
  • PDF

Related Articles

  • No related articles found.
  • Google Scholar

Cited By...

  • No citing articles found.
  • Google Scholar

More in this TOC Section

  • Phytoremediation and high rainfall combine to improve soil and plant health in a North America Northern Great Plains saline sodic soil
  • Combining a saltation impact sensor and a wind tunnel to explore wind erosion processes–A case study in the Zhundong mining area, Xinjiang, China
  • Cover crops may exacerbate moisture limitations on South Texas dryland farms
Show more Research Section

Similar Articles

Keywords

  • crop harvesting
  • financial cost
  • nutrient loss
  • soil degradation
  • soil loss

Content

  • Current Issue
  • Early Online
  • Archive
  • Subject Collections

Info For

  • Authors
  • Reviewers
  • Subscribers
  • Advertisers

Customer Service

  • Subscriptions
  • Permissions and Reprints
  • Terms of Use
  • Privacy

SWCS

  • Membership
  • Publications
  • Meetings and Events
  • Conservation Career Center

© 2022 Soil and Water Conservation Society