首页> 外文期刊>Communications in Soil Science and Plant Analysis >Effects of Different Irrigation Levels and Arbuscular Mycorrhizal Fungi (AMF), Photosynthesis Activator, Traditional Fertilizer on Yield and Growth Parameters of Dry Bean (Phaseolus Vulgaris L.) in Arid Climatic Conditions
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Effects of Different Irrigation Levels and Arbuscular Mycorrhizal Fungi (AMF), Photosynthesis Activator, Traditional Fertilizer on Yield and Growth Parameters of Dry Bean (Phaseolus Vulgaris L.) in Arid Climatic Conditions

机译:不同灌溉水平和丛枝菌根真菌(AMF),光合活化剂,传统肥对干旱气候条件下干豆(Phableolusulus L.)产量和生长参数的影响

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A field experiment has been conducted to determine the effects of different irrigation water and AMF (Arbuscular Mycorrhizal Fungi) biofertilizer, photosynthesis activator and traditional fertilizer dry bean (Phaseolus vulgaris L.) on yield and growth parameters in Nevsehir Province of Turkey in 2015. The experiment has been carried out using three replications in a split plot design with three different irrigation types as main plots and AMF biofertilizer (ERS), photosynthesis activator (Multigreen-Mg), traditional fertilization (TF-Control), ERS + Mg, ERS + TF and TF + Mg applied as subplots. The number of pods per plant, the length of pods, the number of grains per pod, the weight of grains per plant, the yield of grains, 1000 seed weight, the number of grains per plant, protein yield, arbuscular mycorrhizal fungi rate have been evaluated as yield and growth criteria in the study. In the experiment, as well as the treatment x irrigation interaction, the plant height, pod number per plant, pod lenght, grain number per pod, grain weight per plant, grain yield, 1000 seed weight, grain number per plant, protein rate/grain, protein yield, root weight and AMF colonization parameters, were the other studied properties that were found to be significant. The results obtained were 877.6 mm for I-100 irrigation treatment, 512.2 mm for I-50 irrigation treatment and 40.19 mm water for I-30 irrigation treatment. Regarding the growth parameters of dry bean, the highest PH was in ERS + Mg (67.66 cm), the lowest PH was in ERS (54.33 cm); In I-50, the highest Plant Height (PH) was in ERS + Mg (65.66 cm), the lowest PH was in TF-Control (53.00 cm); and in I-30, the highest PH was in TF-Control (50.66 cm), and the lowest PH was again in ERS + Mg (44.33 cm). For protein yield (PY) value, ERS + Mg, ERS + TF, TF + Mg have been placed in the same group, in I-100 and I-50 irrigation treatment. The highest value was ERS + TF (34.90 kg da(-1)) in I-100, The lowest value was TF-control (19.90 kg da(-1)) in I-30 irrigation treatment. In terms of mycorrhiza colonization ratio, ERS has been ranked first in all irrigation treatments, while the highest mycorrhiza colonization has been observed in I-30 irrigation treatment (26.30%). ERS was followed by ERS + Mg (23.33%). As expected, the lowest mycorrhiza colonization ratio in all irrigation treatments have been observed in TF-control treatment, while the highest mycorrhiza colonization ratio has been respectively observed in I-30 and I-50 irrigation topics. The highest root weight (RW) in I-100 irrigation treatment was observed in ERS (15.06 g plant(-1)) and it was observed in ERS (19.05 g plant(-1); 26.30 g plant(-1)) in I-50 and I-30 irrigation treatments. The lowest RW in all irrigation treatments has been observed in TF + Mg (4.43 g plant(-1), 6.40 g plant(-1), 10.26 g plant(-1)), respectively.
机译:已经进行了田间实验,以确定不同灌溉水和AMF(丛枝菌根真菌)生物分析器,光合活化剂和传统肥料干豆(Phableolusulususulus L.)2015年土耳其Nevsehir省的产量和生长参数的影响。该使用三种复制在分裂绘图设计中进行了实验,用三种不同的灌溉类型作为主图和amf生物元ilizer(ex),光合作用活化剂(Multideen-mg),传统施肥(TF-Control),ERS + Mg,ERS + TF和TF + MG应用为子镜头。每株植物的数量,豆荚的长度,每荚的晶粒的数量,每株植物的重量,谷物的产率,1000种种子重量,每个植物的谷物数量,蛋白质产量,蛋白质产量,丛枝菌根真菌率有被评估为研究中的产量和生长标准。在实验中,以及治疗X灌溉相互作用,植物高度,每株豆荚数,POD长度,每荚粒度,每株粒重,籽粒产量,1000种种子重量,每个植物粒度,蛋白质率/谷物,蛋白质产量,根重和AMF定植参数,是另一种研究的特性。对于I-100灌溉处理,得到的结果为87.6mm,I-50灌溉处理512.2mm,为I-30灌溉治疗40.19mm。关于干豆的生长参数,最高pH值是+ mg(67.66厘米),最低pH在01s中(54.33cm);在I-50中,最高植物高度(pH)在+ Mg(65.66cm)中,最低pH在TF-Control(53.00cm);并且在I-30中,最高pH在TF-Control(50.66厘米)中,最低pH再次在+ Mg(44.33cm)。对于蛋白质产率(py)值,在I-100和I-50灌溉处理中置于同一组中,对蛋白质产率(Py)值,ERS + Mg,ERS + TF,TF + Mg。最高值为I-100中的ERS + TF(34.90kg DA(-1)),最低值为TF-CONTROL(19.90kg DA(-1))I-30灌溉处理。就菌根殖民化比率而言,在所有灌溉治疗中首先排名第一,而I-30灌溉治疗(26.30%)则观察到最高的菌根殖民化。接下来的是ERS + MG(23.33%)。正如预期的那样,在TF对照治疗中已经观察到所有灌溉处理中的最低肌菌疹定植率,而在I-30和I-50灌溉主题中分别观察到最高的菌根定植率。在E-100 I-100灌溉处理中的最高根重(RW)(15.06g植物(-1)),在ERS(19.05g植物(-1); 26.30g植物(-1))中观察到I-50和I-30灌溉治疗。在TF + Mg(4.43g植物(-1),6.40g植物(-1),10.26g植物(-1))中观察到所有灌溉处理中的最低RW。

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