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Productivity benefits from integrating Acacia auriculiformis and agricultural cropping in Java, Indonesia

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Abstract

Agroforestry systems provide smallholder farmers with opportunities to broaden their income base. However, as planting trees can come at the cost of reduced crop yield because of competition for resources, farmers need to understand the consequences of tree growing on crop productivity. This paper explores the impacts of Acacia auriculiformis on agricultural crop productivity during the first three cropping seasons in Gunungkidul, Java, Indonesia; maize then soybean was planted in each season. We also sought to understand whether water competition was a factor in determining productivity in this agroforestry system, as this environment is characterised by a long (~ 6-month) dry season. A randomised complete block design with five replications was used, with three treatments, monoculture A. auriculiformis trees, monoculture agricultural crops, and an agroforestry plot that combined the trees and crop. At the final measure, at age 27 months, the trees were 7.4 and 6.9 m in height and 7.2 and 7.1 cm in diameter in the monoculture and in the agroforestry systems respectively, and treatment had no significant effect on the tree height or diameter. Grain yield of soybean was not affected by treatment in any of the three growing seasons, but both grain and stover yields of maize were significantly lower in the agroforestry system than in the monoculture in the third growing season. Differences in soil water deficit, and pre-dawn and mid-day leaf water potentials in A. auriculiformis and soybean were generally not significant between treatments in all three growing seasons. land equivalent ratios for the A. auriculiformis agroforestry system decreased from the 1st to the 3rd growing seasons but remained > 1.3. As fertilizer was applied it was assumed that there was no nutrient limitation. It was therefore concluded that tree shading was primarily responsible for reductions in productivity, and that this affect was greater on maize than soybean grain yield.

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References

  • Australian Centre for International Agricultural Research (2015) Acacia auriculiformis demonstration trial at Gunungkidul, Central Java. Technical report

  • Batzle M, Han DH, Hofmann R (2006) Rock properties. In: Fanchi JR (ed) Petroleum engineering handbook. Society of Petroleum Engineers, Richardson, p 864

    Google Scholar 

  • Bertomeu M (2012) Growth and yield of maize and timber trees in smallholder agroforestry systems in Claveria, northern Mindanao, Philippines. Agrofor Syst 84:73–87

    Google Scholar 

  • Boyer J (1970) Differing sensitivity of photosynthesis to low leaf water potentials in corn and soybean. Plant Physiol 46:236–239

    CAS  PubMed  PubMed Central  Google Scholar 

  • Brisson N, Olioso A, Clastre P (1993) Daily transpiration of field soybeans as related to hydraulic conductance, root distribution, soil potential and midday leaf potential. Plant Soil 154:227–237

    Google Scholar 

  • Buck MG (1986) Concepts of resource sharing in agroforestry systems. Agrofor Syst 4:191–203

    Google Scholar 

  • Campbell GS (1985) Physical properties of soil. Soil physics with basic: transport models for soil-plant systems. Elsevier, Amsterdam, pp 6–11

    Google Scholar 

  • Chirwa PW, Ong CK, Maghembe J, Black CR (2007) Soil water dynamics in cropping systems containing Gliricidia sepium, pigeonpea, and maize in southern Malawi. Agrofor Syst 69:29–43

    Google Scholar 

  • Core Team R (2015) R: a language and environment for statistical computing. R Foundation for Statistical Computing, Vienna

    Google Scholar 

  • Datta M, Singh N (2007) Growth characteristics of multipurpose tree species, crop productivity and soil properties in agroforestry systems under subtropical humid climate in India. J For Res 18:261–270

    Google Scholar 

  • de Wit CT (1960) On competition. Verslag Landbouwkundige Onderzoek 66:1–81

    Google Scholar 

  • Dilla A, Smethurst PJ, Barry K et al (2018) Potential of the APSIM model to simulate impacts of shading on maize productivity. Agrofor Syst 92:1699–1709

    Google Scholar 

  • Droppelmann K, Lehmann J, Ephrath JE, Berliner PR (2000) Water use efficiency and uptake patterns in a runoff agroforestry system in an arid environment. Agrofor Syst 49:223–243

    Google Scholar 

  • Dubiez E, Freycon V, Marien J-N et al (2019) Long term impact of Acacia auriculiformis woodlots growing in rotation with cassava and maize on the carbon and nutrient contents of savannah sandy soils in the humid tropics (Democratic Republic of Congo). Agrofor Syst 93:1167–1178

    Google Scholar 

  • Duguma B, Tonye J (1994) Screening of multipurpose tree and shrub species for agroforestry in the humid lowlands of Cameroon. For Ecol Manag 64:135–143

    Google Scholar 

  • Duguma B, Tonye J, Kanmegne J et al (1994) Growth of ten multipurpose tree species on acid soils in Sangmelima, Cameroon. Agrofor Syst 27:107–119

    Google Scholar 

  • Eamus D, Cole S (1997) Diurnal and seasonal comparisons of assimilation, phyllode conductance and water potential of three Acacia and one Eucalyptus species in the wet-dry tropics of Australia. Aust J Bot 45:275–290

    Google Scholar 

  • Fadl KEM, Sheikh SEE (2010) Effect of Acacia senegal on growth and yield of groundnut, sesame and roselle in an agroforestry system in North Kordofan state, Sudan. Agrofor Syst 78:243–252

    Google Scholar 

  • Filius A (1997) Factors changing farmers willingness to grow trees in Gunung Kidul (Java, Indonesia). NJAS Wagening J Life Sci 45:329–345

    Google Scholar 

  • Figyantika A (2020) Tree crop interactions in an Acacia auriculiformis agroforestry system in Gunungkidul, Java, Indonesia. Doctoral Thesis

  • Friday J, Fownes J (2002) Competition for light between hedgerows and maize in an alley cropping system in Hawaii, USA. Agrofor Syst 55:125–137

    Google Scholar 

  • Garcia Barrios L, Ong C (2004) Ecological interactions, management lessons and design tools in tropical agroforestry systems. Agrofor Syst 61:221–236

    Google Scholar 

  • Garrity DP (2004) Agroforestry and the achievement of the millennium development goals. Agrofor Syst 61:5–17

    Google Scholar 

  • Hellinga G (1950) Tree species for reforestation on practical scale. Tectona 40:179–229

    Google Scholar 

  • Holzworth D, Huth NI, Fainges J et al (2018) APSIM Next Generation: overcoming challenges in modernising a farming systems model. Environ Model Softw 103:43–51

    Google Scholar 

  • Huong VD, Mendham DS, Close DC (2016) Growth and physiological responses to intensity and timing of thinning in short rotation tropical Acacia hybrid plantations in South Vietnam. For Ecol Manag 380:232–241

    Google Scholar 

  • Imo M (2009) Interactions amongst trees and crops in taungya systems of western Kenya. Agrofor Syst 76:265–273

    Google Scholar 

  • Jones HG (1990) Physiological aspects of the control of water status in horticultural crops. HortScience 25:19–26

    Google Scholar 

  • Karim A, Savill P, Rhodes E (1991) The effect of young Leucaena leucocephala (Lam) De Wit hedges on the growth and yield of maize, sweet potato and cowpea in an agroforestry system in Sierra Leone. Agrofor Syst 16:203–211

    Google Scholar 

  • Lawson T, Kang B (1990) Yield of maize and cowpea in an alley cropping system in relation to available light. Agric For Meteorol 52:347–357

    Google Scholar 

  • Lott J, Khan A, Black C, Ong C (2003) Water use in a Grevillea robusta-maize overstorey agroforestry system in semi-arid Kenya. For Ecol Manag 180:45–59

    Google Scholar 

  • Maghembe JA, Prins H (1994) Performance of multipurpose trees for agroforestry two years after planting at Makoka, Malawi. For Ecol Manag 64:171–182

    Google Scholar 

  • Manceur AM, Boland GJ, Thevathasan NV, Gordon AM (2009) Dry matter partitions and specific leaf weight of soybean change with tree competition in an intercropping system. Agrofor Syst 76:295–301

    Google Scholar 

  • Mbaya N, Mwange K, Luyindula N (1998) Nitrogen fixation in Acacia auriculiformis and Albizia lebbeck and their contributions to crop-productivity improvement. Int Atomic Energy Agency 29:79–96

    Google Scholar 

  • Mead R, Willey R (1980) The concept of a “land equivalent ratio”and advantages in yields from intercropping. Exp Agric 16(3):217–228

    Google Scholar 

  • Mineral Resource Department Yogyakarta Province (2015) Climate data on Playen District, Gunungkidul Regency, Yogyakarta Province 2011 to 2015

  • Mineral Resource Department Yogyakarta Province (2017) Climate data on Playen District, Gunungkidul Regency, Yogyakarta Province 2016–2017

  • Montagu K, Woo K (1999) Recovery of tree photosynthetic capacity from seasonal drought in the wet-dry tropics: the role of phyllode and canopy processes in Acacia auriculiformis. Funct Plant Biol 26:135–145

    Google Scholar 

  • Morgan JM (1984) Osmoregulation and water stress in higher plants. Annu Rev Plant Physiol 35:299–319

    Google Scholar 

  • Nadler A, Heuer B (1997) Soil moisture levels and their relation to water potentials of cotton leaves. Aust J Agric Res 48:923–932

    Google Scholar 

  • Nambiar ES, Sands R (1993) Competition for water and nutrients in forests. Can J For Res 23:1955–1968

    Google Scholar 

  • Nasielski J, Furze JR, Tan J et al (2015) Agroforestry promotes soybean yield stability and N 2-fixation under water stress. Agron Sustain Dev 35:1541–1549

    Google Scholar 

  • Ngugi MR, Doley D, Hunt MA et al (2004) Physiological responses to water stress in Eucalyptus cloeziana and E. argophloia seedlings. Trees 18:381–389

    Google Scholar 

  • Ngulube MR, Chapola GB, Mwabumba L (1993) The potential of Australian dry zone Acacias for agroforestry in Malawi. For Ecol Manag 56:83–97

    Google Scholar 

  • Nibbering J (1999) Tree planting on deforested farmlands, Sewu Hills, Java, Indonesia: impact of economic and institutional changes. Agrofor Syst 46:65–82

    Google Scholar 

  • Oliver Y, Lefroy E, Stirzaker R, Davies C (2005) Deep-drainage control and yield: the trade-off between trees and crops in agroforestry systems in the medium to low rainfall areas of Australia. Aust J Agric Res 56:1011–1026

    Google Scholar 

  • Paris P, Olimpieri G, Todaro L et al (1998) Leaf-water potential and soil-water depletion of walnut mulched with polyethylene and intercropped with alfalfa in central Italy. Agrofor Syst 40:69–81

    Google Scholar 

  • Patil M, Channabasappa K (2008) Effect of tree management practices in Acacia auriculiformis based agroforestry system on growth and yield of associated black gram. Karnataka J Agric Sci 21:538–540

    Google Scholar 

  • Pattanayak SK, Mercer DE, Sills E, Yang J (2003) Taking stock of agroforestry adoption studies. Agrofor Syst 57:173–186

    Google Scholar 

  • Rance SJ, Mendham DS, Cameron DM, Grove TS (2012) An evaluation of the conical approximation as a generic model for estimating stem volume, biomass and nutrient content in young Eucalyptus plantations. N For 43:109–128

    Google Scholar 

  • Rao M, Nair P, Ong C (1998) Biophysical interactions in tropical agroforestry systems. Agrofor Syst 38:3–50

    Google Scholar 

  • Reynolds PE, Simpson JA, Thevathasan NV, Gordon AM (2007) Effects of tree competition on corn and soybean photosynthesis, growth, and yield in a temperate tree-based agroforestry intercropping system in southern Ontario, Canada. Ecol Eng 29:362–371

    Google Scholar 

  • Roshetko JM, Rohadi D, Perdana A et al (2013) Teak agroforestry systems for livelihood enhancement, industrial timber production, and environmental rehabilitation. For Trees Livelihoods 22:241–256

    Google Scholar 

  • Sabastian G, Kanowski P, Race D et al (2014) Household and farm attributes affecting adoption of smallholder timber management practices by tree growers in Gunungkidul region, Indonesia. Agrofor Syst 88:257–268

    Google Scholar 

  • Sabastian G, Kanowski P, Williams E, Roshetko J (2018) Tree diameter performance in relation to site quality in smallholder timber production systems in Gunungkidul, Indonesia. Agrofor Syst 92:103–115

    Google Scholar 

  • Sastroamidjojo JS (1964) Acacia auriculiformis A. Cunn. Rimba. Indonesia 9:214–225

    Google Scholar 

  • Schlonvoigt A, Beer J (2001) Initial growth of pioneer timber tree species in a Taungya system in the humid lowlands of Costa Rica. Agrofor Syst 51:97–108

    Google Scholar 

  • Simpson J (1999) Effects of shade on maize and soybean productivity in a based intercrop system. Master thesis

  • Soil Survey Staff (1999) Soil taxonomy: a basic system of soil classification for making and interpreting soil surveys, 2nd edn. Natural Resources Conservation Service, U.S. Department of Agriculture Handbook, p 436

  • Sood KK, Mitchell CP (2009) Identifying important biophysical and social determinants of on-farm tree growing in subsistence-based traditional agroforestry systems. Agrofor Syst 75:175–187

    Google Scholar 

  • Statistics of Gunungkidul Regency (2010) Gunungkidul in figures 2010. Statistics of Gunungkidul Regency

  • Statistics of Gunungkidul Regency (2014) Gunungkidul in figures 2014. Statistics of Gunungkidul Regency

  • Statistics of Gunungkidul Regency (2017) Gunungkidul in figures 2017. Statistics of Gunungkidul Regency

  • Swamy S, Puri S (2005) Biomass production and C-sequestration of Gmelina arborea in plantation and agroforestry system in India. Agrofor Syst 64:181–195

    Google Scholar 

  • Turvey ND, Smethurst PJ (1983) Nitrogen fixing plants in forest plantation management. Biological nitrogen fixation in forest ecosystems: foundations and applications. Springer, pp 233–259

  • Uhlig H (1980) Man and tropical karst in Southeast Asia. GeoJournal 4:31–44

    Google Scholar 

  • Vegetation Team (1979) Production measurements in a young Acacia auriculiformis plantation at Ubrug, Jatilluhur. Internal report

  • Wallace J, Batchelor C, Dabeesing D et al (1991) A comparison of the light interception and water use of plant and first ratoon sugar cane intercropped with maize. Agric For Meteorol 57:85–105

    Google Scholar 

  • Wiersum K, Ramlan A (1982) Cultivation of Acacia auriculiformis on Java, Indonesia. Commonw For Rev 61:135–144

    Google Scholar 

  • Wolz KJ, DeLucia EH (2018) Alley cropping: global patterns of species composition and function. Agr Ecosyst Environ 252:61–68

    Google Scholar 

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Acknowledgements

This research was part of the Australian Centre for International Agricultural Research (ACIAR) funded project FST/2014/064, Maximising productivity and profitability of Eucalyptus and Acacias in Indonesia and Vietnam. I am deeply grateful to Dr. Chris Beadle for his mentoring when writing this manuscript. We thank Mr. Mochamat Gunawan Wibisono, Mr. Dale Worledge, Dr. Patrick Mitchell, Dr. Makruf Nurudin, Mr. Wiyono, and Dr. Anto Rimbawanto for their expert assistance in this study, Dr. David Ratkowsky and Dr. Ross Corkrey for their expert suggestions on data analysis, Dr. Thomas Baker and Dr. Philip Smethurst for their internal reviews, two anonymous reviewers, and the auri team for field and laboratory support.

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Correspondence to Arom Figyantika.

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Figyantika, A., Mendham, D.S., Hardie, M.A. et al. Productivity benefits from integrating Acacia auriculiformis and agricultural cropping in Java, Indonesia. Agroforest Syst 94, 2109–2123 (2020). https://doi.org/10.1007/s10457-020-00534-1

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