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Effect of temperature and water potential on Carthamus tinctorius L. seed germination: Quantification of the cardinal temperatures and modeling using hydrothermal time

机译:温度和水势对迦太基的影响:种子萌发:使用水热时间的基本温度定量和建模

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摘要

Seed germination, a physiological process, experiences large deviations based on temperature and water potential. Each factor can, separately or jointly, affect the germination percentage and germination rate. The response of plant growth rate (including germination rate) to both temperature and water potential can be described as a non-linear function of the thermal time, hydrotime, and the hydrothermal time models. We compared 3 non-linear regression models (Dent-like, segmented and beta) and thermal time, hydrotime and hydrothermal time models to describe the germination rate temperature and water potential relationships of safflower (Carthamus tinctorius L.). An investigation on an experiment for the joint effect of nine constant temperature regimes (5, 10, 15, 20, 25, 30, 35, 40 and 45 degrees C) and nine water potential values (0, -0.2, -0.4, -0.6, -0.8, -1, -1.2, -1.4 and -1.6 MPa) on safflower seed germination (SSG) was conducted. The outcome revealed that the segmented function (RMSE = 0.28, R-2 = 0.82 and r = 0.90) was suitable for use in describing SSG response to temperature and water potential. Using this function, the base, optimum and ceiling emergence temperature and the physiological hour were estimated to be 3.9, 39.3 and 45 degrees C, and 5.7 h respectively. The hydrotime constant for SSG (theta(H)), the middle value for the base water potential (psi(b(50))), the standard deviation in the water potential (sigma(yb)) and the thermal time constant for SSG (theta(T)) spanned the values of 2.54-137.1 MPa h, -1.68-0.06 MPa, 0.32-0.72 MPa and 308.1-3963.1 degrees C h, respectively. The hydrothermal time parameters were 379.7 MPa degrees C h, -1.28 MPa and 3.10 degrees C for theta(HT) (hydrothermal time constant), and psi(b(50)) (median base water potential), T-b (base temperature) in temperatures and water potentials, respectively. All model parameters may be readily used in safflower simulation models.
机译:种子萌发,生理过程,基于温度和水势经历较大的偏差。每个因素可以单独或共同地影响发芽率和发芽率。植物生长速率(包括发芽率)对温度和水电位的响应可以被描述为热时间,水闸和水热时间模型的非线性函数。我们比较了3种非线性回归模型(DET样,分段和β)和热时间,水闸和水热时间模型,以描述红花(Carthamus Tinctorius L.)的发芽率温度和水潜在关系。九恒温制度的关节效应实验研究(5,10,15,20,25,30,35,40和45℃)和九个水位值(0,-0.2,-0.4, - 进行了0.6,-0.8,-1,-1.2,-1.4和-1.6MPa)对红花种子萌发(SSG)进行。结果表明,分段功能(RMSE = 0.28,R-2 = 0.82和R = 0.90)适用于描述对温度和水势的SSG响应。使用这种功能,碱基,最佳和天花板出苗温度和生理小时估计分别为3.9,39.3和45摄氏度,分别为5.7小时。 SSG的氢旋水常数(θ(h)),基础水电位的中间值(psi(b(50))),水电电位的标准偏差(sigma(yb))和ssg的热时间常数(θ(t))分别跨越2.54-137.1MPa H,-1.68-0.06 MPa,0.32-0.72 MPa和308.1-3963.1度的值。用于θ(HT)(水热时间常数)的水热时间参数为379.7MPa,-1.28MPa和3.10℃,PSI(B(50))(中值基础水势),TB(基础温度)温度和水势分别。所有型号参数都可以随时用于红花仿真模型。

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