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Effect of Water Stress and Foliar Boron Application on Seed Protein, Oil, Fatty Acids, and Nitrogen Metabolism in Soybean 被引量:5
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作者 Nacer Bellaloui 《American Journal of Plant Sciences》 2011年第5期692-701,共10页
Effects of water stress and foliar boron (FB) application on soybean (Glycine max (L) Merr.) seed composition and nitrogen metabolism have not been well investigated. Therefore, the objective of this study was to inve... Effects of water stress and foliar boron (FB) application on soybean (Glycine max (L) Merr.) seed composition and nitrogen metabolism have not been well investigated. Therefore, the objective of this study was to investigate the effects of water stress and FB on seed protein, oil, fatty acids, nitrate reductase activity (NRA), and nitrogenase activity (NA). A repeated greenhouse experiment was conducted where one set of soybean plants were subjected to water stress (WS), and the other set was watered (W). Foliar boron (B) was applied at rate of 0.45 kg·ha-1. Treatments were watered-plants with no FB (W), watered-plants with FB (WB), water-stress plants with no FB (WS), and water-stress plants with FB (WSB). The results showed that seed protein and oil percentage were significantly (P 15N/ 14N and 13C/12C natural abundance were altered between watered-and watered-stressed plants. These results suggest that water stress and FB can influence seed composition, and nitrogen metabolism, and 15N/14N and 13C/12C ratios, reflecting environmental and metabolic changes in carbon and nitrogen fixation pathways. Lack of B translocation from leaves to seed under water stress may suggest a possible mechanism of limited B translocation under water stress. These findings may be beneficial to breeders to select for B translocation efficiency under drought conditions. Altered 15N/14N and 13C/12C under water stress can be used as a tool to select for drought tolerance using N and C isotopes in the breeding programs. 展开更多
关键词 boron Nutrition Nitrate REDUCTASE nitrogenASE nitrogen Assimilation nitrogen Fixation nitrogen Metabolism Seed Composition nitrogen and Carbon Isotopes
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GH3535合金的表面改性
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作者 卢军 张湛 王志强 《热处理》 CAS 2020年第2期32-35,共4页
GH3535镍基合金的硬度仅为200HV左右,不能达到超高温熔盐液下轴承要求的400HV以上的硬度。为此,对GH3535合金进行了不同的表面改性处理,包括渗硼、喷丸预变形后渗硼和氮-硼复合渗。试验结果表明:960℃和980℃渗硼的GH3535合金的表面硬度... GH3535镍基合金的硬度仅为200HV左右,不能达到超高温熔盐液下轴承要求的400HV以上的硬度。为此,对GH3535合金进行了不同的表面改性处理,包括渗硼、喷丸预变形后渗硼和氮-硼复合渗。试验结果表明:960℃和980℃渗硼的GH3535合金的表面硬度约700HV0.1,渗层深度为0.10~0.12mm;预变形后渗硼的GH3535合金的表面硬度稍低于单一渗硼的合金,约为650HV0.1,但渗层深度比单一渗硼的合金增加了约0.02mm;氮-硼复合渗GH3535合金的表面硬度与单一渗硼的合金相当,约为700HV0.1,渗层深度达0.16mm。 展开更多
关键词 镍基合金 渗硼 预变形 氮-硼复合渗 表面硬度
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