浙江农业学报 ›› 2022, Vol. 34 ›› Issue (3): 419-427.DOI: 10.3969/j.issn.1004-1524.2022.03.01
李虹桥1(), 赖莹1, 母娜1, 严红梅1, 汤维群1, 蒋小灵1, 高雯1, 吴永成1,2,3,*(
)
收稿日期:
2021-06-11
出版日期:
2022-03-25
发布日期:
2022-03-30
通讯作者:
吴永成
作者简介:
吴永成,E-mail: ycwu2002@163.com基金资助:
LI Hongqiao1(), LAI Ying1, MU Na1, YAN Hongmei1, TANG Weiqun1, JIANG Xiaoling1, GAO Wen1, WU Yongcheng1,2,3,*(
)
Received:
2021-06-11
Online:
2022-03-25
Published:
2022-03-30
Contact:
WU Yongcheng
摘要:
为明确甘蓝型油菜迟直播条件下不同种植密度的冠层结构与群体光合能力特征,采用两因素裂区试验设计,以不同种植密度(15万、30万、60万株·hm-2,分别用D1、D2、D3表示)为主因素,不同油菜品种(半矮秆油菜JS-1、高秆油菜川油36,分别用V1和V2表示)为副因素,在大田试验条件下测定植株群体的叶面积指数(LAI)、角果皮面积指数(PAI)、透光率、群体光合速率、生物量与籽粒产量。结果表明:在开花期,V1的叶面积指数随密度增加呈先升后降趋势,V2的叶面积指数随密度增加呈上升趋势;在籽粒灌浆期,角果皮面积指数随种植密度的增加而显著升高。在开花期,随种植密度的增加,V1透光率变化不大,但V2的透光率呈不断降低趋势;籽粒灌浆期种植密度的增加导致V1与V2的行间透光率显著降低。相同密度下V1的透光率显著高于V2。在开花期V1D3的群体光合速率为43.42 μmol·m-2·s-1,相比于D1与D2两个密度分别增加了27.33%、9.72%;在灌浆期V1D3的群体光合速率为28.24 μmol·m-2·s-1,相比于D1与D2两个密度分别增加了37.55%、7.05%。较高种植密度(D2、D3)下,V1群体光合速率均显著高于V2。综上,加大种植密度增加了迟直播油菜的群体光合面积指数,有利于构建良好的冠层结构,提高群体光合速率与籽粒产量。与高秆油菜(平均2 365.48 kg·hm-2)相比,半矮秆油菜在迟直播高密度条件下具有较高的透光率和群体光合速率,同时其收获指数高,从而获得较高的籽粒产量(平均3 057.32 kg·hm-2)。
中图分类号:
李虹桥, 赖莹, 母娜, 严红梅, 汤维群, 蒋小灵, 高雯, 吴永成. 密度对不同株高油菜冠层结构与群体光合能力的影响[J]. 浙江农业学报, 2022, 34(3): 419-427.
LI Hongqiao, LAI Ying, MU Na, YAN Hongmei, TANG Weiqun, JIANG Xiaoling, GAO Wen, WU Yongcheng. Effect of plant density on canopy structure and population photosynthetic capacity of rapeseed with different plant heights[J]. Acta Agriculturae Zhejiangensis, 2022, 34(3): 419-427.
密度 Density | 品种 Variety | 开花期Flowering period | 灌浆期Grouting stage | ||
---|---|---|---|---|---|
绿叶数 Number of green leaves | 叶面积指数 Leaf area index | 角果皮面积指数 Pod area index | 角果层厚度 Pod layer thickness/cm | ||
D1 | V1 | 20.15±2.49 bc | 4.68±0.31 d | 5.88±0.71 c | 131.67±4.47 a |
D2 | V1 | 19.29±2.31 cd | 7.19±0.23 a | 5.95±0.52 bc | 94.44±11.54 d |
D3 | V1 | 17.11±1.15 d | 6.55±0.31 ab | 6.35±0.91 b | 91.67±11.69 d |
D1 | V2 | 23.08±4.19 a | 5.69±0.54 c | 4.51±0.63 d | 117.06±15.40 b |
D2 | V2 | 22.40±2.13 ab | 6.37±0.18 bc | 7.43±0.63 a | 110.67±15.40 bc |
D3 | V2 | 19.76±2.70 bc | 6.67±0.50 ab | 7.84±0.72 a | 107.39±11.04 c |
表1 种植密度对不同株高油菜冠层结构的影响
Table 1 Effect of planting density on canopy structure of rapeseed with different plant heights
密度 Density | 品种 Variety | 开花期Flowering period | 灌浆期Grouting stage | ||
---|---|---|---|---|---|
绿叶数 Number of green leaves | 叶面积指数 Leaf area index | 角果皮面积指数 Pod area index | 角果层厚度 Pod layer thickness/cm | ||
D1 | V1 | 20.15±2.49 bc | 4.68±0.31 d | 5.88±0.71 c | 131.67±4.47 a |
D2 | V1 | 19.29±2.31 cd | 7.19±0.23 a | 5.95±0.52 bc | 94.44±11.54 d |
D3 | V1 | 17.11±1.15 d | 6.55±0.31 ab | 6.35±0.91 b | 91.67±11.69 d |
D1 | V2 | 23.08±4.19 a | 5.69±0.54 c | 4.51±0.63 d | 117.06±15.40 b |
D2 | V2 | 22.40±2.13 ab | 6.37±0.18 bc | 7.43±0.63 a | 110.67±15.40 bc |
D3 | V2 | 19.76±2.70 bc | 6.67±0.50 ab | 7.84±0.72 a | 107.39±11.04 c |
图1 不同株高油菜在不同种植密度下的透光率 A,开花期行间透光率;B,开花期穴间透光率;C,灌浆期行间透光率;D,灌浆期穴间透光率。柱上无相同小写字母表示差异显著(P<0.05)。
Fig.1 Light transmittance of rapeseed with different plant heights under different planting densities A, Light transmittance between rows during flowering period; B, Light transmittance between holes during flowering period; C, Light transmittance between rows during grouting period; D, Light transmittance between holes during grouting period.Data marked without the same lowercase letter indicated significant differences at P<0.05.
种植密度 Density | 品种 Variety | 开花期Flowering stage | 灌浆期Grouting stage | ||
---|---|---|---|---|---|
群体光合速率 Group photosynthetic rate | 群体呼吸速率 Group respiration rate | 群体光合速率 Group photosynthetic rate | 群体呼吸速率 Group respiration rate | ||
D1 | V1 | 34.10±5.80 d | 22.79±3.24 abc | 20.53±6.89 d | 6.25±1.35 c |
D2 | V1 | 39.57±9.23 b | 24.77±3.45 ab | 26.38±8.35 b | 7.90±2.09 b |
D3 | V1 | 43.42±7.73 a | 26.10±6.91 a | 28.24±5.43 a | 8.77±2.60 a |
D1 | V2 | 30.81±7.17 e | 17.41±3.85 d | 21.29±4.78 d | 4.24±0.54 d |
D2 | V2 | 36.10±8.00 c | 18.80±3.54 cd | 24.14±7.86 c | 4.87±1.37 d |
D3 | V2 | 36.86±4.84 c | 21.02±5.40 bcd | 27.42±5.43 ab | 6.27±1.71 c |
表2 种植密度对不同株高油菜群体光合速率与呼吸速率的影响
Table 2 Effects of planting density on photosynthetic rate and respiration rate of rapeseed populations with different plant height μmol·m-2·s-1
种植密度 Density | 品种 Variety | 开花期Flowering stage | 灌浆期Grouting stage | ||
---|---|---|---|---|---|
群体光合速率 Group photosynthetic rate | 群体呼吸速率 Group respiration rate | 群体光合速率 Group photosynthetic rate | 群体呼吸速率 Group respiration rate | ||
D1 | V1 | 34.10±5.80 d | 22.79±3.24 abc | 20.53±6.89 d | 6.25±1.35 c |
D2 | V1 | 39.57±9.23 b | 24.77±3.45 ab | 26.38±8.35 b | 7.90±2.09 b |
D3 | V1 | 43.42±7.73 a | 26.10±6.91 a | 28.24±5.43 a | 8.77±2.60 a |
D1 | V2 | 30.81±7.17 e | 17.41±3.85 d | 21.29±4.78 d | 4.24±0.54 d |
D2 | V2 | 36.10±8.00 c | 18.80±3.54 cd | 24.14±7.86 c | 4.87±1.37 d |
D3 | V2 | 36.86±4.84 c | 21.02±5.40 bcd | 27.42±5.43 ab | 6.27±1.71 c |
种植密度 Density | 品种 Variety | 植株总干重 Plant dry weight/(kg·hm-2) | 籽粒产量 Grain yield/(kg·hm-2) | 收获指数 Harvest index |
---|---|---|---|---|
D1 | V1 | 9 047.38±398.02 e | 2 896.52±133.12 b | 0.32±0.014 a |
D2 | V1 | 19 522.77±799.03 b | 2 951.77±267.10 b | 0.27±0.011 b |
D3 | V1 | 20 355.52±259.81 b | 3 323.67±144.63 a | 0.23±0.003 c |
D1 | V2 | 12 340.40±599.90 d | 1 953.68±259.60 d | 0.16±0.008 d |
D2 | V2 | 18 117.43±1 182.43 c | 2 326.99±136.31 c | 0.12±0.008 e |
D3 | V2 | 22 429.56±629.74 a | 2 815.77±266.08 b | 0.13±0.004 e |
表3 种植密度对不同株高油菜生物量和籽粒产量的影响
Table 3 Effect of planting density on biomass and grain yield of rapeseed with different plant heights
种植密度 Density | 品种 Variety | 植株总干重 Plant dry weight/(kg·hm-2) | 籽粒产量 Grain yield/(kg·hm-2) | 收获指数 Harvest index |
---|---|---|---|---|
D1 | V1 | 9 047.38±398.02 e | 2 896.52±133.12 b | 0.32±0.014 a |
D2 | V1 | 19 522.77±799.03 b | 2 951.77±267.10 b | 0.27±0.011 b |
D3 | V1 | 20 355.52±259.81 b | 3 323.67±144.63 a | 0.23±0.003 c |
D1 | V2 | 12 340.40±599.90 d | 1 953.68±259.60 d | 0.16±0.008 d |
D2 | V2 | 18 117.43±1 182.43 c | 2 326.99±136.31 c | 0.12±0.008 e |
D3 | V2 | 22 429.56±629.74 a | 2 815.77±266.08 b | 0.13±0.004 e |
[1] |
JOHNSON D M, SMITH W K, VOGELMANN T C, et al. Leaf architecture and direction of incident light influence mesophyll fluorescence profiles[J]. American Journal of Botany, 2005, 92(9): 1425-1431.
DOI URL |
[2] | SMITH W K, VOGELMANN T C, DELUCIA E H, et al. Leaf form and photosynthesis[J]. BioScience, 1997, 47(11): 785-793. |
[3] |
ESTRADA-CAMPUZANO G, MIRALLES D J, SLAFER G A. Yield determination in Triticale as affected by radiation in different development phases[J]. European Journal of Agronomy, 2008, 28(4): 597-605.
DOI URL |
[4] | 章家恩. 作物群体结构的生态环境效应及其优化探讨[J]. 生态科学, 2000, 19(1): 30-35. |
ZHANG J E. Discussion on the eco environmental effects of crop community structure and its optimization[J]. Ecologic Science, 2000, 19(1): 30-35. (in Chinese with English abstract) | |
[5] | 李涛. 群体密度对高等植物光合功能的影响及调控机制[D]. 北京: 北京林业大学, 2015. |
LI T. Effects of planting density on photosynthetic function and regulative mechanisms in higher plants[D]. Beijing: Beijing Forestry University, 2015. (in Chinese with English abstract) | |
[6] | 章家恩, 黄润, 饶卫民, 等. 玉米群体内太阳光辐射垂直分布规律研究[J]. 生态科学, 2001, 20(4): 8-11. |
ZHANG J E, HUANG R, RAO W M, et al. Preliminary study on changes and vertical distribution of solar radiation at the different heights of maize canopy[J]. Ecologic Science, 2001, 20(4): 8-11. (in Chinese with English abstract) | |
[7] | 姚月明, 沈明星, 孙华, 等. 稻茬套播油菜种植密度与产量及其分枝习性的关系[J]. 上海农业学报, 2005, 21(1): 29-32. |
YAO Y M, SHEN M X, SUN H, et al. Relationship between planting density and yield and branch characteristics of rape under sowed in rice field[J]. Acta Agriculturae Shanghai, 2005, 21(1): 29-32. (in Chinese with English abstract) | |
[8] | 陈秀良, 冷锁虎, 唐瑶, 等. 密度对迟直播油菜分枝生长及产量的影响[J]. 耕作与栽培, 2003(4): 12-13. |
CHEN X L, LENG S H, TANG Y, et al. Effect of density on branch growth and yield of later sowing rape[J]. Tillage and Cultivation, 2003(4): 12-13. (in Chinese) | |
[9] | 王锐. 油菜群体冠层结构特性及光能利用率的研究[D]. 武汉: 华中农业大学, 2015. |
WANG R. The study on charactistics of the canopy structure and radiation use efficiency for canola plant population[D]. Wuhan: Huazhong Agricultural University, 2015. (in Chinese with English abstract) | |
[10] |
MADDONNI G A, OTEGUI M E, CIRILO A G. Plant population density, row spacing and hybrid effects on maize canopy architecture and light attenuation[J]. Field Crops Research, 2001, 71(3): 183-193.
DOI URL |
[11] |
ZHANG Y P, ZHANG Y H, WANG Z M, et al. Characteristics of canopy structure and contributions of non-leaf organs to yield in winter wheat under different irrigated conditions[J]. Field Crops Research, 2011, 123(3): 187-195.
DOI URL |
[12] | 李国强, 汤亮, 张文宇, 等. 施氮量对不同株型小麦品种叶型垂直分布特征的影响[J]. 作物学报, 2011, 37(1): 127-137. |
LI G Q, TANG L, ZHANG W Y, et al. Effect of nitrogen rate on vertical distribution characteristics of leaf-type in wheat with different plant types[J]. Acta Agronomica Sinica, 2011, 37(1): 127-137. (in Chinese with English abstract)
DOI URL |
|
[13] |
DIEPENBROCK W. Yield analysis of winter oilseed rape (Brassica napus L.): a review[J]. Field Crops Research, 2000, 67(1): 35-49.
DOI URL |
[14] | 胡立勇, 丁艳锋. 作物栽培学[M]. 北京: 高等教育出版社, 2008. |
[15] | 吴永成, 牛应泽, 郭世星, 等. 四川省近10年来育成的甘蓝型油菜品种的特点分析[J]. 西南农业学报, 2011, 24(6): 2054-2056. |
WU Y C, NIU Y Z, GUO S X, et al. Analysis of variety characteristics of oilseed rape (Brassica napus L.) in Sichuan Province past 10 years[J]. Southwest China Journal of Agricultural Sciences, 2011, 24(6): 2054-2056. (in Chinese with English abstract) | |
[16] | 陈红琳, 陈尚洪, 沈学善, 等. 不同收获方式对油菜子粒损失、含油量及种植效益的影响[J]. 作物杂志, 2015(5): 74-79. |
CHEN H L, CHEN S H, SHEN X S, et al. Effects of harvest methods on yield loss rate, oil content and planting efficiency for rape[J]. Crops, 2015(5): 74-79. (in Chinese with English abstract) | |
[17] | 杜刚锋. 灌溉方式和灌水量对棉花冠层结构指标及群体光合生产力的影响[D]. 石河子: 石河子大学, 2019. |
DU G F. Effects of irrigation methods and irrigation amount on canopy structure and canopy photosynthetic production in cotton[D]. Shihezi: Shihezi University, 2019. (in Chinese with English abstract) | |
[18] | 张耀文, 赵小光, 关周博, 等. 油菜角果光合特性研究现状及改良思路[J]. 中国油料作物学报, 2017, 39(5): 704-713. |
ZHANG Y W, ZHAO X G, GUAN Z B, et al. Review of silique photosynthetic characteristics and improvement in rapeseed[J]. Chinese Journal of Oil Crop Sciences, 2017, 39(5): 704-713. (in Chinese with English abstract) | |
[19] |
LEACH J E, STEVENSON H J, RAINBOW A J, et al. Effects of high plant populations on the growth and yield of winter oilseed rape (Brassica napus)[J]. The Journal of Agricultural Science, 1999, 132(2): 173-180.
DOI URL |
[20] | 马霓, 张春雷, 李俊, 等. 种植密度对直播油菜结实期源库关系及产量的调节[J]. 中国油料作物学报, 2009, 31(2): 180-184. |
MA N, ZHANG C L, LI J, et al. Regulation of planting density on source-sink relationship and yield at seed-set stage of rapeseed(Brassica napus L.)[J]. Chinese Journal of Oil Crop Sciences, 2009, 31(2): 180-184. (in Chinese with English abstract) | |
[21] | 杨亮. 播期、 氮肥和密度对油菜冠层结构特性及群体生长发育的影响[D]. 武汉: 华中农业大学, 2017. |
YANG L. The effect of sowing date, nitrogen and density on characteristics of rapeseed canopy structure and growing development[D]. Wuhan: Huazhong Agricultural University, 2017. (in Chinese with English abstract) | |
[22] | 冷锁虎, 杨光, 陈秀良, 等. 氮素营养对油菜宁杂1号结角层中角果性状的影响[J]. 中国油料作物学报, 2002, 24(3): 25-28. |
LENG S H, YANG G, CHEN X L, et al. Effects of N application on pod characteristics among different layer of pod canopy in Ningza No.1 (Brassica napus L.)[J]. Chinese Journal of Oil Crop Scieves, 2002, 24(3): 25-28. (in Chinese with English abstract) | |
[23] | 李强, 顾元国, 张艳红, 等. 新疆旱寒区不同种植密度对超强抗寒冬油菜光合生理及产量的影响[J]. 西北农业学报, 2014, 23(11): 62-69. |
LI Q, GU Y G, ZHANG Y H, et al. Effects of plant density on photosynthetic characteristics and yield of cold resistance winter rapeseed in dry and cold areas of Xinjiang[J]. Acta Agriculturae Boreali-Occidentalis Sinica, 2014, 23(11): 62-69. (in Chinese with English abstract) | |
[24] | 杨瑞吉. 麦茬复种饲料油菜的播种量对其生长性状的影响[J]. 中国油料作物学报, 2007, 29(4): 479-482. |
YANG R J. Effect of planting density on growth properties of rapeseed in wheat/silage rape multiple cropping[J]. Chinese Journal of Oil Crop Sciences, 2007, 29(4): 479-482. (in Chinese with English abstract) | |
[25] |
张含笑, 林参, 左青松, 等. 种植密度和施肥量对油菜毯状苗生长的影响[J]. 作物学报, 2019(11): 1691-1698.
DOI |
ZHANGH X, LIN C, ZUO Q S. Effects of plant density and N fertilizer spraying concentration on growth ofrapeseed blanket seedlings[J]. Acta Agronomica Sinica, 2019(11): 1691-1698. (in Chinese with English abstract) | |
[26] | 郭江, 肖凯, 郭新宇, 等. 玉米冠层结构、光分布和光合作用研究综述[J]. 玉米科学, 2005, 13(2): 55-59. |
GUO J, XIAO K, GUO X Y, et al. Review on maize canopy structure, light distributing and canopy photosynthesis[J]. Journal of Maize Sciences, 2005, 13(2): 55-59. (in Chinese with English abstract) | |
[27] |
WESTGATE M E, FORCELLA F, REICOSKY D C, et al. Rapid canopy closure for maize production in the northern US corn belt: radiation-use efficiency and grain yield[J]. Field Crops Research, 1997, 49(2/3): 249-258.
DOI URL |
[28] | 杨吉顺, 高辉远, 刘鹏, 等. 种植密度和行距配置对超高产夏玉米群体光合特性的影响[J]. 作物学报, 2010, 36(7): 1226-1233. |
YANG J S, GAO H Y, LIU P, et al. Effects of planting density and row spacing on canopy apparent photosynthesis of high-yield summer corn[J]. Acta Agronomica Sinica, 2010, 36(7): 1226-1233. (in Chinese with English abstract)
DOI URL |
|
[29] |
BEGNA S H, HAMILTON R I, DWYER L M, et al. Effects of population density on the vegetative growth of leafy reduced-stature maize in short-season areas[J]. Journal of Agronomy and Crop Science, 1999, 182(1): 49-55.
DOI URL |
[30] | 何佳宾, 李叶蓓, 聂言顺, 等. 耐密性玉米冠层结构对密度的响应[J]. 玉米科学, 2016, 24(3): 69-77. |
HE J B, LI Y B, NIE Y S, et al. Canopy structure of density-resistant maize cultivars under different plant densities[J]. Journal of Maize Sciences, 2016, 24(3): 69-77. (in Chinese with English abstract) | |
[31] | 胡娟, 陶冬雪, 周道玮.98 cm大垄双行种植方式对吉林西部玉米生长发育的影响[J]. 土壤与作物, 2020, 9(2): 159-165. |
HU J, TAO D X, ZHOU D W. Effects of 98 cm ridge with double row planting on maize growth and development in western Jilin Province[J]. Soils and Crops, 2020, 9(2): 159-165. (in Chinese with English abstract) | |
[32] | 薛吉全, 梁宗锁, 马国胜, 等. 玉米不同株型耐密性的群体生理指标研究[J]. 应用生态学报, 2002, 13(1): 55-59. |
XUE J Q, LIANG Z S, MA G S, et al. Population physiological indices on density-tolerance of maize in different plant type[J]. Chinese Journal of Applied Ecology, 2002, 13(1): 55-59. (in Chinese with English abstract) | |
[33] |
HASHEMI A M, HERBERT S J, PUTNAM D H. Yield response of corn to crowding stress[J]. Agronomy Journal, 2005, 97(3): 839-846.
DOI URL |
[34] |
LÓPEZ-BELLIDO F J, LÓPEZ-BELLIDO L, LÓPEZ-BELLIDO R J. Competition, growth and yield of faba bean (Vicia faba L.)[J]. European Journal of Agronomy, 2005, 23(4): 359-378.
DOI URL |
[35] | LONG S P, ZHU X G, NAIDU S L, et al. Can improvement in photosynthesis increase crop yields?[J]. Plant, Cell & Environment, 2006, 29(3): 315-330. |
[36] | 陈传永, 侯玉虹, 孙锐, 等. 密植对不同玉米品种产量性能的影响及其耐密性分析[J]. 作物学报, 2010, 36(7): 1153-1160. |
CHEN C Y, HOU Y H, SUN R, et al. Effects of planting density on yield performance and density-tolerance analysis for maize hybrids[J]. Acta Agronomica Sinica, 2010, 36(7): 1153-1160. (in Chinese with English abstract)
DOI URL |
|
[37] | 成国鹏, 孙红春, 张永江, 等. 群体冠层结构对棉花光合特性及产量性状的影响效应研究[J]. 河北农业大学学报, 2015, 38(4): 1-7. |
CHENG G P, SUN H C, ZHANG Y J, et al. Effects of canopy structure on photosynthesis and yield in cotton[J]. Journal of Agricultural University of Hebei, 2015, 38(4): 1-7. (in Chinese with English abstract) | |
[38] | 赵中华, 刘德章, 郭美丽. 棉花群体冠层结构与干物质生产及产量的关系[J]. 棉花学报, 1997, 9(2): 90-94. |
ZHAO Z H, LIU D Z, GUO M L. The relationship of cotton canopy structure, photosynthetic characters, dry matter accumulation and distribution and yield[J]. Acta Gossypii Sinica, 1997, 9(2): 90-94. (in Chinese with English abstract) | |
[39] | 刘建丰, 袁隆平, 邓启云, 等. 超高产杂交稻的光合特性研究[J]. 中国农业科学, 2005, 38(2): 258-264. |
LIU J F, YUAN L P, DENG Q Y, et al. A study on characteristics of photosynthesis in super high-yielding hybrid rice[J]. Scientia Agricultura Sinica, 2005, 38(2): 258-264. (in Chinese with English abstract) | |
[40] | 宋稀, 刘凤兰, 郑普英, 等. 高密度种植专用油菜重要农艺性状与产量的关系分析[J]. 中国农业科学, 2010, 43(9): 1800-1806. |
SONG X, LIU F L, ZHENG P Y, et al. Correlation analysis between agronomic traits and yield of rapeseed (Brassica napus L.) for high-density planting[J]. Scientia Agricultura Sinica, 2010, 43(9): 1800-1806. (in Chinese with English abstract) | |
[41] | 王寅, 鲁剑巍. 中国冬油菜栽培方式变迁与相应的养分管理策略[J]. 中国农业科学, 2015, 48(15): 2952-2966. |
WANG Y, LU J W. The transitional cultivation patterns of winter oilseed rape in China and the corresponding nutrient management strategies[J]. Scientia Agricultura Sinica, 2015, 48(15): 2952-2966. (in Chinese with English abstract) | |
[42] | 袁卫红, 黄世杰, 刘宁, 等. 密度和多效唑对油菜“两优586”产量及抗倒性的影响[J]. 江西农业学报, 2002, 14(1): 6-10. |
YUAN W H, HUANG S J, LIU N, et al. Effects of density and PP333 on yield and lodging resistance of rapeseed “liangyou 586”[J]. Acta Agriculturae Jiangxi, 2002, 14(1): 6-10. (in Chinese with English abstract) | |
[43] | 郭一鸣, 邱自祥, 刘建英, 等. 湖南省主推甘蓝型油菜品种种植密度与农艺性状及产量的相关性[J]. 作物研究, 2018, 32(6): 480-485. |
GUO Y M, QIU Z X, LIU J Y, et al. Correlation between planting density and agronomic traits and yield of main popularized varieties of Brassica napus L. in Hunan Province[J]. Crop Research, 2018, 32(6): 480-485. (in Chinese with English abstract) |
[1] | 冯玮, 李朋朋, 宋鹏. 甘蓝型油菜Kunitz蛋白酶抑制剂的异源表达与理化特征分析[J]. 浙江农业学报, 2022, 34(1): 112-119. |
[2] | 陈纪鹏, 刘小林, 李生强, 刘显军, 胡月清, 陈桃. 白菜型油菜黄芽白与甘蓝型油菜湘油15种间杂交及其杂种后代的遗传学特征[J]. 浙江农业学报, 2021, 33(7): 1170-1176. |
[3] | 王潭刚, 孙婷, 王冀川, 李慧琴, 高振, 石元强. 播期和密度对滴灌冬小麦群体结构与抗倒特性的影响[J]. 浙江农业学报, 2021, 33(2): 193-202. |
[4] | 李诗涛, 张王菲, 赵丽仙, 王熙媛. 基于时序PolSAR影像与决策树模型的油菜物候期识别[J]. 浙江农业学报, 2021, 33(11): 2116-2127. |
[5] | 练华山, 李欣欣, 林立金, 廖明安. 表油菜素内酯对夏黑葡萄幼苗生长的影响[J]. 浙江农业学报, 2021, 33(10): 1889-1896. |
[6] | 熊廷浩, 黄益国, 周旋, 鲁艳红, 资涛, 胡宇倩, 宋海星. 湖南省油菜主产区土壤养分含量与重金属污染风险评价[J]. 浙江农业学报, 2021, 33(10): 1904-1912. |
[7] | 韩立杰, 董伟欣, 张月辰. 不同水肥处理对小麦冠层结构、产量和籽粒品质的影响[J]. 浙江农业学报, 2020, 32(6): 953-962. |
[8] | 张金然, 李存超, 李询, 孙国峻, 何瑞银, 魏清. 基于GIS的油菜播种控制系统设计与试验[J]. 浙江农业学报, 2020, 32(3): 518-526. |
[9] | 马杰, 郑好, 周平, 陈春艳, 吴瑞, 马维, 宋雷, 孙勃. 马铃薯油菜素内酯信号激酶基因StBSKs的克隆与序列分析[J]. 浙江农业学报, 2019, 31(8): 1224-1230. |
[10] | 潘俊峰, 钟旭华, 黄农荣, 刘彦卓, 田卡, 梁开明, 彭碧琳, 傅友强, 胡香玉. 不同栽培模式对华南双季晚稻产量和氮肥利用率的影响[J]. 浙江农业学报, 2019, 31(6): 857-868. |
[11] | 邱乐丰, 虞舟鲁. 1979—2020年杭州市富阳区土地利用对耕层土壤有机碳储量变化的影响[J]. 浙江农业学报, 2019, 31(2): 291-296. |
[12] | 李虹桥, 段秋宇, 刘士山, 杨云飞, 李梦颖, 吴永成. 甘蓝型矮秆油菜与高秆油菜的产量与氮效率比较[J]. 浙江农业学报, 2019, 31(11): 1796-1802. |
[13] | 汪峰, 谌江华, 孙梅梅, 柴伟纲, 姚红燕, 戴瑶璐, 张玉屏, 朱德峰, 陈若霞. 甬优系列籼粳杂交稻株高变化对氮素利用率的影响[J]. 浙江农业学报, 2019, 31(1): 1-10. |
[14] | 阮先乐, 王俊生, 刘红占, 陈良兵, 赵锦慧. 油菜miR169基因家族的生物信息学分析及靶基因预测[J]. 浙江农业学报, 2018, 30(8): 1273-1280. |
[15] | 胡园, 张涛, 蔡景波, 唐明, 罗奎, 胡利华. 养殖密度、水层、规格对浅海筏架吊笼养殖刺参生长的影响[J]. 浙江农业学报, 2018, 30(4): 548-553. |
阅读次数 | ||||||
全文 |
|
|||||
摘要 |
|
|||||