مجله علوم و صنایع غذایی ایران

مجله علوم و صنایع غذایی ایران

Effect of wood vinegar on soil pH, soil salinity )EC( and some characteristics of Zea mays .L

نوع مقاله : مروری تحلیلی

نویسندگان
College of Agriculture, University of Kufa, Najaf, Iraq.
چکیده
A field experiment was conducted at the College of Agriculture Research Station, University of Kufa on sandy loam soil to evaluate the effects of wood vinegar on soil properties and the growth of yellow corn (Zea mays L.). Five concentrations of wood vinegar (0, 1, 5, 25, and 50 ml.L⁻¹) were applied in three increments over three months. Results indicated that wood vinegar significantly reduced soil electrical conductivity (EC), with the 50 ml L⁻¹ (BCH50) treatment yielding the lowest EC of 0.425 dS.m⁻¹ after the first application, compared to 1.495 dS.m⁻¹ in the control. Similarly, the third BCH50 application reduced EC to 0.516 dS.m⁻¹. Soil pH was also reduced, with BCH50 decreasing it to 5.90, while the control pH was 8.0. Wood vinegar treatments significantly enhanced corn vegetative growth. Plant height increased with concentration, with BCH50 achieving maximum heights of 65.5, 69.25, and 79.75 cm across the three applications. Fresh weight also increased, peaking at 171.5 g with BCH 50. However, the highest dry weight was recorded at the medium BCH25 concentration (59.525 g), surpassing both BCH1 (46.125 g) and BCH50 (40.5 g). The results demonstrate that while medium and high concentrations enhance vegetative growth, the medium concentration promotes more balanced dry matter accumulation.
کلیدواژه‌ها

موضوعات


عنوان مقاله English

Effect of wood vinegar on soil pH, soil salinity )EC( and some characteristics of Zea mays .L

نویسندگان English

Tabarak Hussein Baqir
Khalil Yasser Khalil Yasser
College of Agriculture, University of Kufa, Najaf, Iraq.
چکیده English

A field experiment was conducted at the College of Agriculture Research Station, University of Kufa on sandy loam soil to evaluate the effects of wood vinegar on soil properties and the growth of yellow corn (Zea mays L.). Five concentrations of wood vinegar (0, 1, 5, 25, and 50 ml.L⁻¹) were applied in three increments over three months. Results indicated that wood vinegar significantly reduced soil electrical conductivity (EC), with the 50 ml L⁻¹ (BCH50) treatment yielding the lowest EC of 0.425 dS.m⁻¹ after the first application, compared to 1.495 dS.m⁻¹ in the control. Similarly, the third BCH50 application reduced EC to 0.516 dS.m⁻¹. Soil pH was also reduced, with BCH50 decreasing it to 5.90, while the control pH was 8.0. Wood vinegar treatments significantly enhanced corn vegetative growth. Plant height increased with concentration, with BCH50 achieving maximum heights of 65.5, 69.25, and 79.75 cm across the three applications. Fresh weight also increased, peaking at 171.5 g with BCH 50. However, the highest dry weight was recorded at the medium BCH25 concentration (59.525 g), surpassing both BCH1 (46.125 g) and BCH50 (40.5 g). The results demonstrate that while medium and high concentrations enhance vegetative growth, the medium concentration promotes more balanced dry matter accumulation.

کلیدواژه‌ها English

Wood Vinegar
pH
EC
Zea mays L
[1]    Luo, S., Chen, L., Xu, T., & Ding, W. (2019). Effects of wood vinegar application on soil properties and plant growth: A review. Agronomy, 9(7), 356. https://doi.org/10.3390/agronomy9070356.
[2]    Jindo, K., Sanches, F., & Akashi, K. (2022). Sustainable plant growth promotion and chemical changes of pyroligneous acids: A review. Chemical and Biological Technologies in Agriculture, 9(1), 24. https://doi.org/10.1186/s40538-022-00357-5
[3]    Gu, S., Gao, H., Liu, Y., & Zhang, J. (2024). New insights into the impact of wood vinegar on the growth and physiological characteristics of cherry radish. PeerJ, 12, e18505. https://doi.org/10.7717/peerj.18505.
[4]    Suo, F., Li, X., & Zhang, Y. (2025). Effect of individual and co-application of biochar and pyroligneous acid on corn seedling growth and nitrogen uptake. Heliyon, 11(10), e25789. https://doi.org/10.1016/j.heliyon.2025.e25789.
[5]    Zhou, H., Lin, Q., & Chen, W. (2025). New enlightenment on the regulatory effects of acids and phenolics from wood vinegar on plant growth. Frontiers in Microbiology, 16, 1538998. https://doi.org/10.3389/fmicb.2025.1538998.
[6]    Black, C. A. (1965). Methods of Soil Analysis: Part II—Chemical and Microbiological Properties. Madison, WI: American Society of Agronomy.
[7]    Al-Sahaf, Fadhil Hussein Redha (1989). Applied Plant Nutrition. Ministry of Higher Education and Scientific Research. University of Baghdad. Iraq. p. 260.
[8]    Zhang, Q., Wu, Y., & Li, X. (2020). Biochar and wood vinegar effects on soil properties and plant growth under saline conditions. Agricultural Water Management, 228, 105878.
[9]    Zhang, X., Liu, X., & Zhou, Y. (2021). Role of organic soil amendments in regulating ion distribution and mitigating salinity stress in alkaline soils. Geoderma, 404, 115297.https://doi.org/10.1016/j.geoderma.2021.115297.
[10] Wang, X., Liu, X., Wang, Z., Sun, G., & Li, J. (2022). Greenhouse gas reduction and nitrogen conservation during manure composting by combining biochar with wood vinegar. Journal of Environmental Management324, 116349.
[11] Yuan, J., Xu, R., & Liu, S. (2020). Effects of wood vinegar on soil salinity and crop growth under saline conditions. Agronomy, 10(6), 879.
[12] Al-Janabi, A. A. H. (2020). Effect of wood vinegar and organic fertilizers on growth and yield of maize (Zea mays L.). Journal of Agricultural Sciences, University of Baghdad, 51(3), 455–463.
[13] Canellas, L. P., Olivares, F. L., Aguiar, N. O., Jones, D. L., Nebbioso, A., Mazzei, P., & Piccolo, A. (2015). Humic and fulvic acids as biostimulants in horticulture. Scientia Horticulturae, 196, 15–27. https://doi.org/10.1016/j.scienta.2015.09.013.
[14] Mungkunkamchao, T., Kesmala, T., Pimratch, S., Toomsan, B., & Jothityangkoon, D. (2013). Wood vinegar and fermented bioextracts: Natural products to enhance growth and yield of tomato. Scientia Horticulturae, 154, 66–72. https://doi.org/10.1016/j.scienta.2013.02.025
[15] Zhou, X., Cao, K., Meng, J., Xu, H., & Zhou, X. (2025). Strigolactone modulates phenolic acid accumulation and thereby improves tolerance to UV-B stress in Rhododendron chrysanthum Pall. Plant cell reports44(1), 1.
[16] Fedeli, R., Dal Monte, R., & Nali, C. (2025). Wood distillate as a solution for growing crops under water-limited conditions: Effects on fresh weight and stress markers in basil. AgriEngineering, 5(2), 260–277. https://doi.org/10.3390/agriengineering5020022.