评估温室樱桃番茄的生长、产量和生化成分,特别强调渐进式生长报告。

IF 5.4 3区 材料科学 Q2 CHEMISTRY, PHYSICAL ACS Applied Energy Materials Pub Date : 2024-10-25 DOI:10.1186/s12870-024-05701-5
Adnan Arshad, Sorin Mihai Cîmpeanu, Ionuț Ovidiu Jerca, Chan Sovorn, Baber Ali, Liliana Aurelia Badulescu, Elena Maria Drăghici
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引用次数: 0

摘要

植物的生长取决于各个生长阶段中生化和生理活动的复杂相互作用。这些错综复杂的过程动态地适应着不同的环境条件,影响着植物的生长发育和产量。本研究探讨了温室气候对冬季种植的樱桃番茄'Cheramy F1'的生长、产量和生物化学的影响。研究采用随机整群设计(RCBD),分小区(3 行),3 次重复(每行 3 株)。在 2022 年和 2023 年连续两个生长季的 12 月至次年 3 月期间的不同日期收集数据,并以平均值表示。采用方差分析对收集到的数据进行统计分析,置信度为 p 2,浓度波动范围为 385.61 ppm 至 510.30 ppm,平均光照强度为 94.62 至 240.45 W/m²。这项研究评估了各种生长参数,如株高、叶片生长、茎直径、叶间距、叶片数、叶面积和单株花序数,并提出了各阶段的最佳温室条件范围。这项研究的主要结果揭示了渐进生长报告(PGR),预测了植株的日潜在生长率:株高为 2.86 至 3.81 厘米/天;成熟老叶生长率为 0.003988 平方米/天:0.003988 平方米/天;中嫩叶0.008733 平方米/天;顶端新生叶:0.010722 平方米/天;每周长出三至五片叶子;每周长出一个花序。在偶然的观察中,我们注意到,由于植物在温室中的生长姿态和位置各不相同,植物的生长和产量反应也不尽相同。我们发现,不同花序在生长、产量和生化成分方面的差异非常明显。果实保存质量(货架天数)、果实高度、果实直径和花序数之间存在不显著的交互作用。本研究结果强调了温室栽培樱桃番茄对不同温度、光照强度和二氧化碳浓度范围的可能反应,为优化温室樱桃番茄栽培提供了有价值的见解。
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Assessing the growth, yield, and biochemical composition of greenhouse cherry tomatoes with special emphasis on the progressive growth report.

The growth of plants hinges on a complex interplay of biochemical and physiological activities across various growth stages. These intricate processes dynamically adapt to different environmental conditions, shaping both plant development and productivity. This study explores the impact of greenhouse climate on the growth, yield, and biochemistry of winter-grown cherry tomatoes 'Cheramy F1'. A randomized complete block design (RCBD) under split plot arrangements (3 Rows) with three replications (3 plants from each row) was adopted. The data were collected on various dates during the period extending from December to March of two consecutive growing seasons in 2022 and 2023, and presented as averages. An analysis of variance was applied to statistically analyze the collected data at a confidence level of p < 0.05. The climatic conditions in the greenhouse were calculated as temperature ranging from a minimum of 10.5 °C to the maximum of 41.3 °C by an average of 21.2 °C during the vegetative stage and from 8.2 °C to 32.3 °C by an average of 20.9 °C during the fruit-bearing stage, with an average CO2 concentration fluctuated within the range of 385.61 ppm to 510.30 ppm and an average light intensity of 94.62 to 240.45 W/m². This study assessed various growth parameters such as plant height, leaf growth, stem diameter, leaf spacing, leaf count, leaf area, and inflorescence count per plant, and suggested the optimum range of greenhouse conditions for each stage. The key results of this study revealed the Progressive Growth Report (PGR), predicting daily potential growth rates of plants: plant height, 2.86 to 3.81 cm/day; growth rate of mature older leaf: 0.003988 m2/day; middle younger leaf: 0.008733 m2/day; top nascent leaf: 0.010722 m2/day; three to five leaves per week; and one inflorescence per week. In our accidental observation, we noticed unusual plant growth and yield responses because of the various growing postures and positions that the plants adopted in the greenhouse. An exceedingly significant difference among the inflorescences was found in view of their growth, productivity and biochemical composition. A non-significant interaction was found between the fruit keeping quality (shelf days), fruit height, fruit diameter, and inflorescence number. The present study results highlight the possible responses of greenhouse-grown cherry tomatoes to different ranges of temperature, light intensity, and CO2 concentrations, offering valuable insights for optimizing greenhouse cherry tomatoes cultivation.

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来源期刊
ACS Applied Energy Materials
ACS Applied Energy Materials Materials Science-Materials Chemistry
CiteScore
10.30
自引率
6.20%
发文量
1368
期刊介绍: ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.
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