|Table of Contents|

Effect of Different Interplanting Patterns on Soil Nutrients and Photosynthetic Characteristics of Tripterygium wilfordii

《北方园艺》[ISSN:1001-0009/CN:23-1247/S]

Issue:
2020年06
Page:
101-108
Research Field:
Publishing date:

Info

Title:
Effect of Different Interplanting Patterns on Soil Nutrients and Photosynthetic Characteristics of Tripterygium wilfordii
Author(s):
LI Yunge1QIAO Yina2YE Youjie2CHEN Liguang2NI Le2ZHENG Yushan12
(1.College of Landscape Architecture,Fujian Agriculture and Forestry University,Fuzhou,Fujian 350002;2.College of Forestry,Fujian Agriculture and Forestry University,Fuzhou,Fujian 350002)
Keywords:
interplanting patternsTripterygium wilfordii soil nutrientsphotosynthetic characteristics
PACS:
-
DOI:
11937/bfyy.20192589
Abstract:
Tripterygium wilfordii,Magnolia officinalis,Cunninghamia lanceolata and Pinus massoniana from Taining county of Fujian were used as test materials,and pure Tripterygium wilfordii as control,Magnolia officinalis/Tripterygium wilfordii (Treatment 1),Cunninghamia lanceolata/Tripterygium wilfordii (Treatment 2),Pinus massoniana/Tripterygium wilfordii (Treatment 3) were three interplanting patterns.In order to select the optimal pattern of Tripterygium wilfordii,which could produce the most benefit,the dynamic change of soil nutrients in different treatments and correlation analysis of soil nutrients and photosynthetic characteristics of Tripterygium wilfordii leaves were studied.The results showed that the Magnolia officinalis forest of interplanting Tripterygium wilfordii could significantly increase the accumulation of total nitrogen,total potassium,hydrolyzable nitrogen,available potassium and organic matter of soil,the Cunninghamia lanceolata forest of interplanting Tripterygium wilfordii had only promoted the synthesis of available phosphorus,and other nutrient contents were lower,and the Pinus massoniana forest of interplanting Tripterygium wilfordii could only increase the total phosphorus content of the soil of Tripterygium wilfordii.The indicators photosynthetic of the leaves of Tripterygium wilfordii of interplanting Magnolia officinalis forest,including Pnmax,LSP,LCP,AQY,those indicators were the highest.Indicating that the photosynthesis potential of the leaves was the highest and the material accumulation was more under Magnolia officinalis forest.The indicate of Pn of treatment 1 was positively correlated with soil total nitrogen,hydrolyzable nitrogen,available potassiumand organic matter (P<0.01).The Pn of treatment 2 and treatment 3 were positively correlated with total nitrogen,available phosphorus,available potassium and organic matter in soil (P<0.01).The Pn of treatment 1 and treatment 3 was significantly negatively correlated with the total potassium content of soil (P<0.01).There was no significant correlation among the indicate of Pn of the three treatments and the total phosphorus content of the soil.The interplanting pattern of Tripterygium wilfordii under Magnolia officinalis forest could improve the soil fertility and had high photosynthetic potential,so it could be widely used as a high quality plantation-medicine interplanting pattern.

References:

[1]佚名.基于网络药理学方法的雷公藤药理、毒理机制研究[J].中国中西医结合杂志,2018,38(8):1006-1010.[2]何蒙荟媛.苗药雷公虅资源调查及雷公虅红素提取工艺研究[D].贵阳:贵州导族大学,2016.[3]刘超.雷公藤人工林林下植被群落生态及凋落物持水性研究[D].福州:福建农林大学,2014.[4]王春燕,燕霞,顾梦鹤.黄土高原弃耕地植被演替及其对土壤养分动态的影响[J].草业学报,2018,27(11):26-35.[5]曹娟,闫文德,项文化,等.湖南会同3个林龄杉木人工林土壤碳、氮、磷化学计量特征[J].林业科学,2015,51(7):1-8.[6]刘兴诏,周国逸,张德强,等.南亚热带森林不同演替阶段植物与土壤中N、P的化学计量特征[J].植物生态学报,2010,34(1):64-71.[7]解文艳,周怀平,关春林,等.山西省主要农田土壤速效养分状况与分布[J].山西农业科学,2011,39(10):1083-1087.[8]梁玉峰,谭长银,曹雪莹,等.不同土地利用方式下土壤养分和重金属元素垂直分布特征[J].环境工程学报,2018,12(6):1791-1799.[9]姚炳贵,陆真元,张红,等.天津市主要类型土壤氮磷钾经济合理用量和适宜配比的研究[J].华北农学报,1986(2):70-79.[10]张英鹏,李彦,于仁起,等.山东省主要耕地土壤的养分含量及空间变异分析[J].华北农学报,2008,23(S2):310-314.[11]HANG H T,WU Y Y.Quantification of photosynthetic inorganic carbon utilisation via a bidirectional stable carbon isotope tracer[J].Acta Geochimica,2016,35:130-137.[12]李国良,林赵淼,许泳清等.不同类型甘薯光合光响应曲线拟合及比较分析[J].福建农业学报,2018,33(7):687-690.[13]张沈龙,林开敏,郑郁善.杉木套种三年桐模式土壤肥力研究[J].福建林学院学报,1995(2):170-174.[14]刘开汉.杉木林下套种红锥效果研究[J].绿色科技,2013(1):193-194.[15]杨文火.闽南山地火力楠林下套种草珊瑚试验研究[J].安徽农学通报,2012,18(11):142-144.[16]续珊珊,贾利,李友华.森林碳汇影响因素的灰色关联分析—基于辽宁等20个省、区面板数据的实证分析[J].林业经济,2010(3):30-35.[17]谢永琳.不同育苗方式南方红豆杉在杉木人工林中套种初期效果研究[J].林业勘察设计,2018,38(4):24-26.[18]张学武,陈文玉,陈清海,等.闽南沿海山地马尾松林下套种红豆杉研究[J].安徽农学通报,2014,20(21):101-102.[19]程军勇.厚朴立体栽培模式及技术研究[D].武汉:华中农业大学,2008.[20]洪伟,唐佳栋,吴承祯,等.泰宁雷公藤根系分布规律[J].福建林学院学报,2007(2):97-100.[21]中国林业科学研究院林业研究所森林土坡研究室.Y/TILY/T1228-1999,森林土壤全氮的测定[S].北京:中国林业出版社,1999.[22]中国林业科学研究院林业研究所森林土坡研究室.Y/TILY/T1228-1999,森林土壤全磷的测定[S].北京:中国林业出版社,1999.[23]中国林业科学研究院林业研究所森林土坡研究室.Y/TILY/T1228-1999,森林土壤全钾的测定[S].北京:中国林业出版社,1999.[24]中国林业科学研究院林业研究所森林土坡研究室.Y/TILY/T1228-1999,森林土壤水解氮的测定[S].北京:中国林业出版社,1999.[25]中国林业科学研究院林业研究所森林土坡研究室.Y/TILY/T1228-1999,森林土壤有效磷的测定[S].北京:中国林业出版社,1999.[26]中国林业科学研究院林业研究所森林土坡研究室.Y/TILY/T1228-1999,森林土壤速效钾的测定[S].北京:中国林业出版社,1999.[27]中国林业科学研究院林业研究所森林土坡研究室.GB9834-1988,森林土壤有机质的测定[S].北京:中国林业出版社,1988.[28]洪宜聪.杉木林套种闽粤栲林分特性及其涵养水源功能[J].西北林学院学报,2017,32(3):71-77.[29]朱平,彭畅,高洪军.黑土土壤肥力演变规律长期定位监测研究[C].大连:中国土壤学会土壤肥力与肥料专业委员会2005年学术研讨会,2005.[30]王清奎,范冰,徐广标.亚热带地区阔叶林与杉木林土壤活性有机质比较[J].应用生态学报,2009,20(7):1536-1542.[31]WANG Q K,WANG S L.Soil microbial properties and nutrients in pure and mixed Chinese fir plantations[J].Journal of Forestry Research,2008,19(2):131-135.[32]陈智勇,郑兆飞,叶功富,等.同林龄马尾松与湿地松幼树凋落物养分及能量动态[J].中南林业科技大学学报,2016,36(7):72-75,88.[33]阿如汗.土壤养分异质性对克隆植物鹅绒委陵菜的表型特征和光合作用的影响[D].长春:东北师范大学,2014.[34]胡春梅,王秀峰,季俊杰.钾对瓜尔豆光合及胚乳中糖类含量的影响[J].植物营养与肥料学报,2006(6):858-863.[35]木合塔尔·扎热,吴正保,故丽米热·卡克什,史彦江.有机肥与化肥不同配施对土壤养分及骏枣光合特性和叶果比的影响[J].土壤通报,2015,46(2):405-411.

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Last Update: 2020-05-26