Skip to main content
Log in

Effect of seasonal water stress imposed on drip irrigated second crop watermelon grown in semi-arid climatic conditions

  • Original Paper
  • Published:
Irrigation Science Aims and scope Submit manuscript

Abstract

A study was conducted to determine the water stress effect on yield and some physiological parameters including crop water stress index for drip irrigated second crop watermelon. Irrigations were scheduled based on replenishment of 100, 75, 50, 25, and 0% soil water depletion from 90 cm soil depth with 3-day irrigation interval. Seasonal crop evapotranspiration (ET) for I100, I75, I50, I25, and I0 were 660, 525, 396, 210, and 70 mm in 2003 and 677, 529, 405, 221, and 75 mm in 2004. Fruit yield was significantly lowered by irrigation water stress. Average water-yield response factor for both of the years was 1.14. The highest yield was obtained from full irrigated treatment as 34.5 and 38.2 t ha−1 in 2003 and 2004, respectively. Lower ET rates and irrigation amounts in water stress treatments resulted in reductions in all measured parameters, except water-soluble dry matter concentrations (SDM). Canopy dry weights, leaf relative water content, and total leaf chlorophyll content were significantly lowered by water stress. Yield and seasonal ET were linearly correlated with mean CWSI values. An average threshold CWSI value of 0.17 before irrigation produced the maximum yield and it could be used to initiate the irrigation for watermelon.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Fig. 1
Fig. 2
Fig. 3
Fig. 4
Fig. 5
Fig. 6
Fig. 7
Fig. 8
Fig. 9

Similar content being viewed by others

References

  • Çetin Ö, Nacar AS (1997) Possibilities of irrigation of watermelon in Harran plain conditions using porous pipe system. In: Pakyurek A (ed) The first vegetable conference proceedings. Harran, Şanlıurfa-Turkey, pp 217–222

  • Chapman HD, Pratt PF (1982) Method of plant analysis. In: Chapman HD (ed) Methods of analysis for soils, plants and water. Chapman Pub, California, pp 60–193

    Google Scholar 

  • Dogan E, Kirnak H, Berakatoglu K, Bilgel L, Surucu A (2008) Water stress imposed on muskmelon with subsurface and surface drip irrigation systems under semi-arid climatic conditions. Irrigation Sci 20:131–138

    Article  Google Scholar 

  • Doorenbos J, Kassam AH (1979) Yield response to water. Irrigation and drainage paper no: 33. FAO-Rome p. 193

  • Erdem Y, Yüksel AN (2003) Yield response of watermelon to irrigation shortage. Sci Hortic 98:365–383

    Article  Google Scholar 

  • Erdem Y, Yüksel AN, Orta AH (2001) The effects of deficit irrigation on watermelon yield, water use, and quality characteristics. Pak J Biol Sci 4(7):785–789

    Article  Google Scholar 

  • Fabeiro CO, De Santa M, Juan JA (2002) Production of muskmelon under controlled deficit irrigation in semi-arid climate. Agric water manag 54:93–105

    Article  Google Scholar 

  • Gündüz M, Kara C, Bilgel L, Değirmenci V (1996) Determination of irrigation scheduling of watermelon in Harran plain. In: Pakyurek A (ed) The first vegetable conference proceedings. Harran, Şanlıurfa-Turkey, pp 211–216

  • Hardeman TL, Taber HG, Cox DF (1999) Trickle irrigation of vegetables: water conseration without yield reduction. J Veg Crop Prod 5(2):23–33

    Article  Google Scholar 

  • Hartz TK (1997) Effects of drip irrigation scheduling on muskmelon yield and quality. Sci Hortic 69:117–122

    Article  Google Scholar 

  • Ibarra L, Flores J, Carlos Diaz-Perez J (2001) Growth and yield of muskmelon in response to plastic mulch and row covers. Sci Hortic 87:139–145

    Article  Google Scholar 

  • Idso SB (1982) Non-water-stressed baselines: a key to measuring and interpreting plant water stress. Agric meteorol 27:59–70

    Article  Google Scholar 

  • Idso SB, Jackson RD, Pinter PJ, Hatfield JL (1981) Normalizing the stress-degree-day parameter for environmental variability. Agric meteorol 24:45–55

    Article  Google Scholar 

  • James LG (1993) Principles of farm irrigation system design. Krieger publishing company, Florida

    Google Scholar 

  • Keller J, Bliesner RD (1990) Sprinkle and trickle irrigation, an avi book. Van Nostrand Reinhold, New York

    Google Scholar 

  • Kundu PB, Paul NK (1997) Effect of water stress on chlorophyll, praline and sugar acculuation in rape. Bangladesh J Bot 26:83–85

    Google Scholar 

  • Lester GE, Oebler NF, Coons J (1994) Preharvest furrow and drip irrigation schedule effects on postharvest muskmelon quality. Postharvest Biol Technol 4:57–63

    Article  Google Scholar 

  • Nielsen DC, Gardner BR (1987) Scheduling irrigations for corn with the crop water stress index (CWSI). Appl agric res 2:295–300

    Google Scholar 

  • Orta AH, Erdem Y, Erdem T (2003) Crop water stress index for watermelon. Sci Hortic 98:121–130

    Article  Google Scholar 

  • Pew WD, Gardner BR (1983) Effects of irrigation practices on vive growth, yield and quality of muskmelon. J Am Soc Hort Sci 108:134–137

    Google Scholar 

  • Phene CJ, Davis KR, McMormick RL, Pincor A, Meek DW (1987) Evapotranspiration and irrigation scheduling of drip irrigated cantaloupes. ASAE meeting, paper no: 87–2526, December 15–18, Chicago

  • Prakash M, Ramachandran K (2000) Effects of moisture stress and anti-transpirants on leaf chlorophyll, soluble protein and photosynthetic rate in brinjal plants. J Agronomy crop Sci 184:153–156

    Article  CAS  Google Scholar 

  • Richards LA (1954) Diagnosis and improvement of saline and alkali soils. US Department of Agricultural handbook 60, p. 160

  • Sarker AM, Rahman MS, Paul NK (1999) Effect of soil moisture on relative leaf water content, chlorophyll, praline and sugar accumulation in wheat. J Agronomy Crop Sci 183:225–229

    Article  CAS  Google Scholar 

  • Sharp RE (1996) Regulation of plant growth responses to low soil water potential. HortScience 31(1):36–38

    Google Scholar 

  • Simsek M, Kacira M, Tonkaz T (2004) The effects of different drip irrigation regimes on watermelon yield and yield components under semi-arid climatic conditions. Aust J Agric Res 55:1149–1157

    Article  Google Scholar 

  • Srinivas K, Hegde DM, Havanagi CV (1989) Irrigation studies on watermelon. Irrigation Sci 10(4):293–301

    Article  Google Scholar 

  • USDA (2006) United States Standards for grades of watermelons. http://www.ams.usda.gov/standards

  • Wang Y, Xie ZK, Li F, Zhang Z (2004) The effects of supplemental irrigation on watermelon production in gravel and sand mulched fields in the Loess Plateau of Northwest China. Agric Water Manag 69:29–41

    Article  Google Scholar 

  • Wanjura DF, Upchurch DR (2000) Canopy temperature characterizations of corn and cotton water status. Trans ASAE 43(4):867–875

    Google Scholar 

  • Wells JA, Nugent PE (1980) Effect of high soil water on quality of muskmelon. HortScience 15:258–259

    CAS  Google Scholar 

  • Yamasaki S, Dillenburg LR (1999) Measurements of leaf relative water content in araucaria angustifolia. Revista Brasilleira de Fisiologia Vegetal 11(2):69–75

    Google Scholar 

  • Yazar A, Howell TA, Dusek DA, Copeland KS (1999) Evaluation of crop water stress index for LEPA irrigated corn. Irrigation Sci 18:171–180

    Article  Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Halil Kirnak.

Additional information

Communicated by A. Kassam.

Rights and permissions

Reprints and permissions

About this article

Cite this article

Kirnak, H., Dogan, E. Effect of seasonal water stress imposed on drip irrigated second crop watermelon grown in semi-arid climatic conditions. Irrig Sci 27, 155–164 (2009). https://doi.org/10.1007/s00271-008-0130-3

Download citation

  • Received:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s00271-008-0130-3

Keywords

Navigation