[{"data":1,"prerenderedAt":-1},["ShallowReactive",2],{"item-2916":3,"related-2916":63},{"id":4,"title":5,"url":6,"summary":7,"summary_zh":8,"content":9,"source_name":10,"source_url":6,"published_at":11,"category":12,"cover_url":9,"hotness":13,"is_selected":14,"score":15,"score_detail":16,"sources":24,"tags":26,"search_phrases":32,"slug":35,"view_count":36,"doi":37,"paper":38,"created_at":62},2916,"Synergistic effects of seedbed methods and legume intercropping on soil moisture conservation and productivity of groundnut in rainfed Alfisols","https:\u002F\u002Fdoi.org\u002F10.3389\u002Ffsufs.2026.1870854","Field experiments were conducted during the moisture-limited north-east monsoon ( rabi ) seasons of 2020–2022 to evaluate the effects of seedbed methods and legume-based intercropping systems on groundnut growth, yield, soil moisture conservation, rainwater use efficiency (RWUE), groundnut equivalent yield (GEY), and post-harvest soil fertility under rainfed Alfisol conditions. The experiment was laid out in a strip-plot design with three seedbed methods as main plots (compartmental bunding, raised bed, and flatbed) and four intercropping systems as subplots (groundnut with black gram, cowpea, red gram, or castor in a 4:1 row ratio). The raised bed produced the numerically highest mean pod yield (528 kg ha −1 ) and RWUE (4.45 kg ha −1 mm −1 ). For both variables, it was statistically similar to compartmental bunding but superior to flatbed. Groundnut + cowpea produced the numerically highest mean pod yield among intercrops (499 kg ha −1 ). GEY and economic rankings were descriptive; raised bed + black gram had the highest GEY (803.17 kg ha −1 ) and net return (Rs. 16,190 ha −1 ) under the stated prices. The tables report treatment responses averaged over 3 years. A retrospective combined ANOVA with year as a fixed factor revealed highly significant year × treatment interactions for pod yield, biomass and RWUE (Year × Seedbed: F 4, 12 = 206.66, p \u003C 0.0001; Year × Intercrop: F 6, 18 = 1,980.42, p \u003C 0.0001; Year × Seedbed × Intercrop: F 12, 36 = 4,668.10, p \u003C 0.0001), indicating that treatment rankings were not stable across the contrasting rainfall seasons (166–264 mm). Consequently, the results apply to the pooled 3-year average only and should be interpreted as conditional on comparable moisture-limited rabi conditions.","在2020—2022年水分受限的东北季风（rabi）季节开展了田间试验，以评估在雨养阿尔菲索尔（Alfisol）条件下，苗床方式与基于豆科作物的间作体系对花生生长、产量、土壤保水、雨水利用效率（RWUE）、花生当量产量（GEY）以及收获后土壤肥力的影响。试验采用条带区设计，以3种苗床方式为主区（隔畦、高畦和平畦），以4种间作体系为副区（花生与黑豆、豇豆、红豇豆或蓖麻按4:1行比间作）。高畦的荚果平均产量（528 kg ha⁻¹）和RWUE（4.45 kg ha⁻¹ mm⁻¹）在数值上最高。对于这两个变量，高畦与隔畦在统计上相似，但优于平畦。在间作处理中，花生+豇豆的荚果平均产量在数值上最高（499 kg ha⁻¹）。GEY和经济排名为描述性结果；在所述价格下，高畦+黑豆的GEY最高（803.17 kg ha⁻¹），净收益也最高（16,190卢比 ha⁻¹）。表中报告的是3年平均的处理响应。以年份为固定因素进行的回顾性联合方差分析显示，荚果产量、生物量和RWUE的年份×处理互作均极显著（年份×苗床：F₄,₁₂=206.66，p\u003C0.0001；年份×间作：F₆,₁₈=1,980.42，p\u003C0.0001；年份×苗床×间作：F₁₂,₃₆=4,668.10，p\u003C0.0001），表明在降雨量差异较大的季节间（166—264 mm），处理排名并不稳定。因此，结果仅适用于3年合并平均值，并应解释为以可比的限水rabi条件为条件。",null,"Frontiers in Sustainable Food Systems","2026-09-18T00:00:00Z","论文",10,false,71,{"impact":17,"substance":18,"depth":19,"authority":20,"freshness":21,"relevant":22,"comment":23},12,21,17,13,8,1,"三年田间试验数据扎实、结论有明确适用条件，但属细分作物栽培研究，公共影响有限，适合作为专业参考而非每日精选头条。",[25],{"name":10,"url":6},[27,28,29,30,31],"花生","旱作农业","间作套种","土壤保墒","雨水利用",[33,34],"花生 豆科间作 土壤水分","雨养 Alfisols 花生 产量","花生豆科间作土壤水分-2916",0,"10.3389\u002Ffsufs.2026.1870854",{"doi":37,"openalex_id":39,"authors":40,"venue":10,"cited_by_count":36,"oa_url":6,"card":55,"direction":59,"ingested_from":61},"W7213544012",[41,43,45,48,50,52],{"name":42,"orcid":9},"Kannan Pandian",{"name":44,"orcid":9},"Vijayakumar Shanmugam",{"name":46,"orcid":47},"Surya Teja Varanasi","https:\u002F\u002Forcid.org\u002F0009-0002-3885-7205",{"name":49,"orcid":9},"Mohamed Roshan Abu Firnass Mustaffa",{"name":51,"orcid":9},"Ratnadeep Kar",{"name":53,"orcid":54},"Anbarasu Mariyappillai","https:\u002F\u002Forcid.org\u002F0000-0001-7970-4454",{"tldr":56,"method":57,"finding":58,"direction":59,"opportunity":60},"评估雨养条件下不同苗床与豆科间作对花生土壤保水及产量的协同效应。","2020-2022年雨养Alfisols田间试验，裂区设计，3种苗床与4种间作。","高垄与分室垄保水及产量优于平作，花生+豇豆产量最高，但处理排序随年份降雨变化。","农业绿色发展与碳","可探究不同降雨年型下苗床与间作组合的稳定性，并引入物联网监测土壤水分动态。","openalex","2026-09-19T23:30:08.227243Z",{"total":64,"page":22,"page_size":64,"items":65},6,[66,95,120,144,166,187],{"id":67,"title":68,"url":69,"summary":70,"summary_zh":9,"content":71,"source_name":72,"source_url":9,"published_at":73,"category":74,"cover_url":9,"hotness":13,"is_selected":75,"score":76,"score_detail":77,"sources":83,"tags":85,"search_phrases":90,"slug":93,"view_count":36,"doi":9,"paper":9,"created_at":94},2884,"山东省农科院万书波团队构建栽培花生图形泛基因组登Nature Genetics,首次定位矮秆新种质AhTFL1和Ah12g032500","https:\u002F\u002Fwww.ebiotrade.com\u002Fnewsf\u002F2026-9\u002F20260916010630032.htm","9月15日,山东省农业科学院领导的国际研究团队构建了迄今为止最全面的花生遗传图谱,组装10个新参考级基因组并整合4个已发表基因组,涵盖栽培花生全部六个植物学变种;对来自87个国家和地区的2320份种质资源进行重测序,定位了两个与理想株型密切相关的重要基因(控制花位与株型的AhTFL1、矮化相关Ah12g032500),培育出高产矮秆花生新种质。万书波研究员、李国卫研究员等为通讯作者。","**编辑推荐：**\n\n近日，山东省农业科学院领导的国际研究团队构建了迄今为止最全面的花生遗传图谱，并利用这一新的基因组资源培育出高产矮杆花生新种质。\n\n栽培花生是一种重要的全球豆科作物，对粮食安全和营养有重大意义，特别是在发展中国家。然而，花生的遗传多样性有限，这阻碍了育种进展和产量提升。\n\n近日，山东省农业科学院领导的国际研究团队构建了迄今为止最全面的花生遗传图谱，并利用这一新的基因组资源培育出高产矮杆花生新种质。\n\n研究人员构建了栽培花生的图形泛基因组，并利用该基因组对来自87个国家和地区的2,320份种质资源进行了重测序。这项研究成果于9月15日发表在《Nature Genetics》杂志上。\n\n山东省农业科学院万书波研究员、李国卫研究员，河南省农业科学院张新友院士以及澳大利亚默多克大学作物与食品创新中心Rajeev K. Varshney教授为论文的通讯作者。\n\n![Image 1: 091601.png](https:\u002F\u002Fwww.ebiotrade.com\u002FEditor\u002Febioueditorasp\u002Fasp\u002Fupload\u002Fimage\u002F20260916\u002F17895406787145033.png)\n\n花生养活了数亿人口，是南亚和非洲地区重要的蛋白质和食用油来源。然而，由于花生在进化和驯化过程中遭遇了严重的遗传瓶颈，其遗传多样性较低，这意味着通过遗传多样性改良作物一直是育种者面临的长期难题。\n\n为了应对这一挑战，研究人员利用PacBio HiFi测序、Hi-C等技术组装了10个新的参考级基因组，并将其与4个已发表的基因组组装结果相整合，涵盖了栽培花生的全部六个植物学变种。\n\n随后，他们利用新的泛基因组对来自87个国家和地区的2,320份花生种质资源进行重测序。该样本集涵盖了国际半干旱热带作物研究所（ICRISAT）的大部分核心种质资源，以及美国农业部（USDA）超过一半的种质资源，代表了全球两大花生种质资源库的遗传广度。\n\n利用泛基因组框架，研究人员对两个与理想株型密切相关的性状（主茎开花和矮化）进行遗传分析，并发现了两个重要的基因。\n\n第一个基因AhTFL1控制着花朵的生长位置，进而决定植株的形状和荚果的形成方式。第二个基因Ah12g032500位于一段较大的染色体片段内，该片段曾与另一条染色体发生位置互换，这也是它在之前的测序工作中未能被检测到的原因。\n\n研究人员发现，Ah12g032500的沉默可降低植株高度和节间长度，从而为培育矮杆品种提供了契机。之后，他们进一步将泛基因组研究从遗传变异发现延伸到育种应用。\n\n利用这张新图谱，研究人员将天然矮杆花生与高产中国品种进行杂交，并筛选出携带最佳基因组合的后代。由此培育出新种质LuAi-1，植株高度约为亲本品种的一半，但在田间试验中，高密度种植时的产量却提高了约20%。\n\n这项研究表明，对于花生等复杂多倍体作物，泛基因组的价值不仅在于更全面地描述遗传多样性，更在于能够将传统线性参考基因组中“看不见”或难以准确解析的结构变异转化为可利用的育种资源。\n\n共同通讯作者、默多克大学的Rajeev Varshney教授表示：“半矮秆小麦和水稻品种的培育推动了绿色革命，拯救了全世界数百万人的生命，因为株型紧凑的植株往往更健壮，可以在更小的地块上更密集地种植，也更容易用机械收割。然而，花生却从未有过类似的品种。这项研究表明，培育矮秆品种不仅是可行的，还能显著提高花生的产量。”","山东省农业科学院\u002FAAAS","2026-09-17T00:00:00Z","报道",true,94,{"impact":78,"substance":79,"depth":80,"authority":81,"freshness":21,"relevant":22,"comment":82},28,24,19,15,"构建栽培花生图形泛基因组并定位矮秆新基因，育成高产矮秆新种质，属种业领域重大突破，值得入选每日精选。",[84],{"name":72,"url":69},[86,87,88,27,89],"种业振兴","生物育种","泛基因组","矮秆育种",[91,92],"山东省农科院 花生 泛基因组","万书波 矮秆花生 AhTFL1","山东省农科院花生泛基因组-2884","2026-09-19T00:06:06.193871Z",{"id":96,"title":97,"url":98,"summary":99,"summary_zh":9,"content":100,"source_name":101,"source_url":9,"published_at":102,"category":74,"cover_url":9,"hotness":13,"is_selected":14,"score":103,"score_detail":104,"sources":109,"tags":111,"search_phrases":115,"slug":118,"view_count":36,"doi":9,"paper":9,"created_at":119},2829,"四川简阳青龙花生示范基地迎首季机械化采收:蜀花9号鲜果亩产1100斤以上","https:\u002F\u002Fwww.toutiao.com\u002Farticle\u002F7684997624713331252\u002F","近日,位于四川省简阳市青龙镇联合村的成都市丘陵地区首个花生全程机械化种植示范基地迎来首季采收。基地占地50余亩,实现了从耕地、播种、无人机田间管护,到收获、洗果、烘干的全流程机械化作业,每亩可节约人工成本1500元以上。目前这套丘陵山区花生全程机械化种植技术已被遴选为2026年四川省农业主推技术。该地块鲜果产量可达1100斤以上,品种为蜀花9号,具有高糖低脂的特点,先后入选2023年、2025年国家农作物优良品种推荐目录。","## 四川：“慧”种花生 “机”高一筹！青龙花生示范基地迎机械化采收\n\n2026-09-13 20:35·[新浪财经](https:\u002F\u002Fwww.toutiao.com\u002Fc\u002Fuser\u002Ftoken\u002FMS4wLjABAAAA2L4ZAITVMLT14gaJqbglV1p1I_kCnn3MPE7JT643EeI\u002F?source=tuwen_detail)\n\n来源：市场资讯\n\n（来源：当代农机）\n\n近日，位于四川省简阳市青龙镇联合村的成都市丘陵地区首个花生全程机械化种植示范基地迎来首季采收。\n\n![Image 1](https:\u002F\u002Fp3-sign.toutiaoimg.com\u002Ftos-cn-i-axegupay5k\u002F5e1cf67462864807b305ca8249338761~tplv-tt-origin-web:gif.jpeg?_iz=58558&from=article.pc_detail&lk3s=953192f4&x-expires=1790294757&x-signature=hzguaDmfhqOSD6x9e4m47DAjUnA%3D)\n这片由联合村与四川省农业科学院经济作物研究所携手打造的丘区样板田里，省农科院自主培育的鲜食花生新品种“蜀花9号”长势喜人，一场“机器换人”的生动实践，正为丘陵地区花生产业发展探出新路。\n\n![Image 2](https:\u002F\u002Fp3-sign.toutiaoimg.com\u002Ftos-cn-i-tjoges91tu\u002Fad8d9525699de975670c8e607ded5eba~tplv-tt-origin-web:gif.jpeg?_iz=58558&from=article.pc_detail&lk3s=953192f4&x-expires=1790294757&x-signature=Cm4kqpN%2FCJ3ReC0c9ondJDgBwtI%3D)![Image 3](https:\u002F\u002Fp3-sign.toutiaoimg.com\u002Ftos-cn-i-tjoges91tu\u002Fdb2c8f4dc11e33f98e7d2bd509ade98f~tplv-tt-origin-web:gif.jpeg?_iz=58558&from=article.pc_detail&lk3s=953192f4&x-expires=1790294757&x-signature=Ue8sR5Ul28nPx4g3Z0A8GZyW7aE%3D)\n走进示范基地，数台花生收获机械往来穿梭，掘果、清选一气呵成，一颗颗饱满的“蜀花9号”带着泥土的清新被翻出地表，现场一派忙碌的采收景象。\n\n该示范基地占地50余亩，实现了从耕地、播种、无人机田间管护，到收获、洗果、烘干的全流程机械化作业。针对西南丘陵山区地块零散、坡度不均、传统农机“下地难”的痛点，基地配套的改良型农机设备精准适配山地种植环境，每亩可节约人工成本1500元以上。目前，这套丘陵山区花生全程机械化种植技术已被遴选为2026年四川省农业主推技术，有效填补了全市花生产业的农机技术空白。\n\n四川省农科院经作所花生研究室助理研究员 李爽：该地块，鲜果产量可达1100斤以上。我们选用的品种为蜀花9号，其具有高糖低脂的特点，先后入选2023年、2025年国家农作物优良品种推荐目录。\n\n丰收的背后离不开农业科研人员的全程护航从播种到收获四川省农科院经作所全程跟进把课堂搬到了田间地头。\n\n四川省农科院经作所花生研究室助理研究员 李爽：从播种、管理到收获的各个环节，我们都进行了现场指导。目前，简阳市其他乡镇也纷纷前来咨询，希望与我们合作开展花生大面积种植。后续，我们仍将对该基地进行全程跟进，预计明年我团队骨干将到现场开展技术指导与技术培训。\n\n从“会种地”到“慧种地”，变化的不只是生产方式，还有实打实的种植效益。看着长势喜人的花生，村集体经济组织扩大种植规模的底气也更足了。据青龙镇联合村党总支书记、村委会主任彭永介绍，干花生亩产预计可达200公斤，按每斤6至8元的售价测算，每亩产值约2000—3000元。明年，该村计划扩种花生至300余亩，并带动周边劳动力参与除草、施肥等田间作业，在增加农户务工收入的同时，进一步壮大村集体经济收益。\n\n青龙镇人大主席 陈伟：下一步，我们计划在青龙镇范围内大面积推广花生种植，引导各村集体经济广泛参与。相较于一般粮食作物和经济作物，花生种植的亩均产值更高，有利于促进集体经济增收。\n\n据了解，目前简阳市花生产业种植面积约6.4万亩，花生全程机械化示范基地的成功实践，为全市花生标准化、规模化种植提供了可复制、可推广的样板。近年来，青龙镇坚持党建引领，依托镇村党组织统筹资源、对接科研平台、引进先进技术设备，持续补齐丘陵农业机械化发展短板，推动特色粮油产业向规模化、集约化、机械化转型升级，切实以产业提质带动群众增收，全方位激活乡村振兴内生动力。","新浪财经 \u002F 当代农机 \u002F 四川农村日报","2026-09-13T00:00:00Z",65,{"impact":105,"substance":105,"depth":106,"authority":13,"freshness":107,"relevant":22,"comment":108},18,14,5,"丘陵山区花生全程机械化首季采收，鲜果亩产1100斤以上并入选省级主推技术，数据与信源较实，具可复制推广价值，值得进入每日精选。",[110],{"name":101,"url":98},[86,112,27,113,114],"主推技术","丘陵山区","全程机械化",[116,117],"全程机械化 丘陵山区 主推技术 种业振兴","全程机械化 丘陵山区","全程机械化丘陵山区主推技术种业振兴-2829","2026-09-18T00:03:27.588661Z",{"id":121,"title":122,"url":123,"summary":124,"summary_zh":9,"content":125,"source_name":126,"source_url":9,"published_at":127,"category":74,"cover_url":9,"hotness":13,"is_selected":14,"score":128,"score_detail":129,"sources":133,"tags":135,"search_phrases":139,"slug":142,"view_count":36,"doi":9,"paper":9,"created_at":143},2586,"河南省农业科学院 三项主导选育品种入选十四五国家突破性品种","https:\u002F\u002Fwww.hnagri.org.cn\u002Farticle-114001.html","9月10日第十八届中国国际种业博览会暨第二十三届全国种子双交会期间发布。高产优质绿色高效小麦新品种郑麦1860、高油酸高产大果花生新品种豫花93号、抗落粒宜机收芝麻新品种豫芝NS610由我院科研团队主导选育，占全省入选数量的75%。2025年度小麦品种郑麦1860、郑麦136分居全国小麦品种推广面积第一、第四名。","2026年09月16日 星期三  繁  简 \n\n![Image 1](https:\u002F\u002Fwww.hnagri.org.cn\u002Ftemplates\u002Fdefault\u002Fimages\u002Fnews\u002Flogo.png)\n\n![Image 2](https:\u002F\u002Fwww.hnagri.org.cn\u002Ftemplates\u002Fdefault\u002Fimages\u002Findex\u002Fsearch.png)\n\n[![Image 3](https:\u002F\u002Fwww.hnagri.org.cn\u002Ftemplates\u002Fpublic\u002F\u002Fimages\u002Findex\u002Ftag1_active.png)首页](https:\u002F\u002Fwww.hnagri.org.cn\u002Findex.html)\n\n[![Image 4](https:\u002F\u002Fwww.hnagri.org.cn\u002Ftemplates\u002Fpublic\u002F\u002Fimages\u002Findex\u002Ftag2.png)单位概况](https:\u002F\u002Fwww.hnagri.org.cn\u002Farticle-100002.html \"单位概况\")\n\n[![Image 5](https:\u002F\u002Fwww.hnagri.org.cn\u002Ftemplates\u002Fpublic\u002F\u002Fimages\u002Findex\u002Ftag3.png)机构设置](https:\u002F\u002Fwww.hnagri.org.cn\u002Fcategory-404.html \"机构设置\")\n\n[![Image 6](https:\u002F\u002Fwww.hnagri.org.cn\u002Ftemplates\u002Fpublic\u002F\u002Fimages\u002Findex\u002Ftag4.png)科学研究](https:\u002F\u002Fwww.hnagri.org.cn\u002Fcategory-348.html \"科学研究\")\n\n[![Image 7](https:\u002F\u002Fwww.hnagri.org.cn\u002Ftemplates\u002Fpublic\u002F\u002Fimages\u002Findex\u002Ftag7.png)科技服务](https:\u002F\u002Fwww.hnagri.org.cn\u002Fcategory-406.html \"科技服务\")\n\n[![Image 8](https:\u002F\u002Fwww.hnagri.org.cn\u002Ftemplates\u002Fpublic\u002F\u002Fimages\u002Findex\u002Ftag5.png)人才队伍](https:\u002F\u002Fwww.hnagri.org.cn\u002Fcategory-385.html \"人才队伍\")\n\n[![Image 9](https:\u002F\u002Fwww.hnagri.org.cn\u002Ftemplates\u002Fpublic\u002F\u002Fimages\u002Findex\u002Ftag6.png)合作交流](https:\u002F\u002Fwww.hnagri.org.cn\u002Fcategory-408.html \"合作交流\")\n\n[![Image 10](https:\u002F\u002Fwww.hnagri.org.cn\u002Ftemplates\u002Fpublic\u002F\u002Fimages\u002Findex\u002Ftag8.png)党建文化](https:\u002F\u002Fwww.hnagri.org.cn\u002Fcategory-282.html \"党建文化\")\n\n首页>新闻中心>院内新闻\n\n院内新闻\n\n我院三项主导选育品种入选“十四五”国家突破性品种\n\n9月10日，第十八届中国国际种业博览会暨第二十三届全国种子双交会在安徽省合肥市举办，大会期间发布了全国“十四五”农作物育种联合攻关成果、2025年度农作物品种推广信息、2026年国家农作物新品种核心展示结果等。\n\n我省共有4项主导选育的农作物新品种入选“十四五”期间国家突破性品种，其中“高产优质绿色高效小麦新品种郑麦1860”“高油酸高产大果花生新品种豫花93号”“抗落粒宜机收芝麻新品种豫芝NS610”由我院科研团队主导选育，占全省入选数量的75%。\n\n同期发布的2025年度农作物品种推广信息显示，我院自主培育的多个品种推广面积跻身全国前十：小麦品种郑麦1860、郑麦136分居全国小麦品种推广面积第一、第四名；花生品种豫花37号、豫花23号、豫花22号分居全国花生品种推广面积第一、第五、第八名。\n\n 信息来源：本站 (2026-09-14) \n\n[上一篇：我院与英国雷丁大学签署合作谅解备忘录](https:\u002F\u002Fwww.hnagri.org.cn\u002Farticle-113992.html)\n\n下一篇：无\n\n新闻中心\n\n[![Image 11](https:\u002F\u002Fwww.hnagri.org.cn\u002Ftemplates\u002Fdefault\u002Fimages\u002Fnews\u002Farrow.png)通知公告](https:\u002F\u002Fwww.hnagri.org.cn\u002Fcategory-151.html)\n\n[![Image 12](https:\u002F\u002Fwww.hnagri.org.cn\u002Ftemplates\u002Fdefault\u002Fimages\u002Fnews\u002Farrow.png)院内新闻](https:\u002F\u002Fwww.hnagri.org.cn\u002Fcategory-51.html)\n\n[![Image 13](https:\u002F\u002Fwww.hnagri.org.cn\u002Ftemplates\u002Fdefault\u002Fimages\u002Fnews\u002Farrow.png)媒体聚焦](https:\u002F\u002Fwww.hnagri.org.cn\u002Fcategory-412.html)\n\n[![Image 14](https:\u002F\u002Fwww.hnagri.org.cn\u002Ftemplates\u002Fdefault\u002Fimages\u002Fnews\u002Farrow.png)农科系统](https:\u002F\u002Fwww.hnagri.org.cn\u002Fcategory-306.html)\n\n[![Image 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2026-09-10","2026-09-10T00:00:00Z",83,{"impact":130,"substance":131,"depth":81,"authority":106,"freshness":64,"relevant":22,"comment":132},26,22,"全国性种业攻关成果发布，河南农科院三项主导选育品种入选且多个品种推广面积居全国前列，数据具体、信源权威，值得进入每日精选。",[134],{"name":126,"url":123},[86,136,27,137,138],"小麦育种","芝麻","突破性品种",[140,141],"突破性品种 小麦育种 种业振兴 芝麻","突破性品种 小麦育种","突破性品种小麦育种种业振兴芝麻-2586","2026-09-16T00:03:48.693712Z",{"id":145,"title":146,"url":147,"summary":148,"summary_zh":9,"content":149,"source_name":150,"source_url":9,"published_at":151,"category":74,"cover_url":9,"hotness":13,"is_selected":14,"score":152,"score_detail":153,"sources":157,"tags":159,"search_phrases":161,"slug":164,"view_count":36,"doi":9,"paper":9,"created_at":165},2483,"四川简阳青龙花生示范基地'蜀花 9 号'迎来首季机械化采收","http:\u002F\u002Fwww.came.net.cn\u002FsecondLevelPage\u002Finfo\u002F31\u002F225706","近日位于四川省简阳市青龙镇联合村的成都市丘陵地区首个花生全程机械化种植示范基地迎来首季采收。该基地由联合村与四川省农科院经济作物研究所携手打造,占地 50 余亩,实现从耕地、播种、无人机田间管护,到收获、洗果、烘干的全流程机械化作业。'蜀花 9 号'具有高糖低脂的特点,先后入选 2023、2025 年国家农作物优良品种推荐目录。丘陵山区花生全程机械化种植技术已被遴选为 2026 年四川省农业主推技术。","近日，位于四川省简阳市青龙镇联合村的成都市丘陵地区首个花生全程机械化种植示范基地迎来首季采收。\n\n![Image 1](http:\u002F\u002F202.127.42.160:3009\u002Fupload_file\u002F2026\u002F09\u002F09\u002F20260909150359519.jpg)\n\n这片由联合村与四川省农业科学院经济作物研究所携手打造的丘区样板田里，省农科院自主培育的鲜食花生新品种“蜀花9号”长势喜人，一场“机器换人”的生动实践，正为丘陵地区花生产业发展探出新路。\n\n![Image 2](http:\u002F\u002F202.127.42.160:3009\u002Fupload_file\u002F2026\u002F09\u002F09\u002F20260909150423148.jpg)\n\n![Image 3](http:\u002F\u002F202.127.42.160:3009\u002Fupload_file\u002F2026\u002F09\u002F09\u002F20260909150440546.jpg)\n\n走进示范基地，数台花生收获机械往来穿梭，掘果、清选一气呵成，一颗颗饱满的“蜀花9号”带着泥土的清新被翻出地表，现场一派忙碌的采收景象。\n\n该示范基地占地50余亩，实现了从耕地、播种、无人机田间管护，到收获、洗果、烘干的全流程机械化作业。针对西南丘陵山区地块零散、坡度不均、传统农机“下地难”的痛点，基地配套的改良型农机设备精准适配山地种植环境，每亩可节约人工成本1500元以上。目前，这套丘陵山区花生全程机械化种植技术已被遴选为2026年四川省农业主推技术，有效填补了全市花生产业的农机技术空白。\n\n四川省农科院经作所花生研究室助理研究员 李爽：该地块，鲜果产量可达1100斤以上。我们选用的品种为蜀花9号，其具有高糖低脂的特点，先后入选2023年、2025年国家农作物优良品种推荐目录。\n\n丰收的背后离不开农业科研人员的全程护航从播种到收获四川省农科院经作所全程跟进把课堂搬到了田间地头。\n\n四川省农科院经作所花生研究室助理研究员 李爽：从播种、管理到收获的各个环节，我们都进行了现场指导。目前，简阳市其他乡镇也纷纷前来咨询，希望与我们合作开展花生大面积种植。后续，我们仍将对该基地进行全程跟进，预计明年我团队骨干将到现场开展技术指导与技术培训。\n\n从“会种地”到“慧种地”，变化的不只是生产方式，还有实打实的种植效益。看着长势喜人的花生，村集体经济组织扩大种植规模的底气也更足了。据青龙镇联合村党总支 书记、村委会主任彭永介绍，干花生亩产预计可达200公斤，按每斤6至8元的售价测算，每亩产值约2000—3000元。明年，该村计划扩种花生至300余亩，并带动周边劳动力参与除草、施肥等田间作业，在增加农户务工收入的同时，进一步壮大村集体经济收益。\n\n青龙镇人大主席 陈伟：下一步，我们计划在青龙镇范围内大面积推广花生种植，引导各村集体经济广泛参与。相较于一般粮食作物和经济作物，花生种植的亩均产值更高，有利于促进集体经济增收。\n\n据了解，目前简阳市花生产业种植面积约6.4万亩，花生全程机械化示范基地的成功实践，为全市花生标准化、规模化种植提供了可复制、可推广的样板。近年来，青龙镇坚持党建引领，依托镇村党组织统筹资源、对接科研平台、引进先进技术设备，持续补齐丘陵农业机械化发展短板，推动特色粮油产业向规模化、集约化、机械化转型升级，切实以产业提质带动群众增收，全方位激活乡村振兴内生动力。","中国农业机械化信息网 2026-09-11","2026-09-10T16:00:00Z",70,{"impact":105,"substance":154,"depth":155,"authority":13,"freshness":64,"relevant":22,"comment":156},20,16,"丘陵山区花生全程机械化样板田首季采收，含亩产、成本节约与省级主推技术等实质数据，具备行业示范价值。",[158],{"name":150,"url":147},[86,112,27,114,160],"丘陵机械化",[162,163],"丘陵机械化 全程机械化 主推技术 种业振兴","丘陵机械化 全程机械化","丘陵机械化全程机械化主推技术种业振兴-2483","2026-09-15T00:04:24.141270Z",{"id":167,"title":168,"url":169,"summary":170,"summary_zh":9,"content":9,"source_name":171,"source_url":9,"published_at":172,"category":74,"cover_url":9,"hotness":13,"is_selected":14,"score":173,"score_detail":174,"sources":176,"tags":178,"search_phrases":182,"slug":185,"view_count":36,"doi":9,"paper":9,"created_at":186},2102,"河北农林科学院旱作所\"衡早18号\"谷子新品种及节水高效生产技术现场观摩会在安平举办","http:\u002F\u002Fhebnky.com\u002Fjishuzhidaoxinxi.aspx?jszdid=2165","2026年9月1日河北农林科学院旱作所联合安平县农业农村局、安平县细雨家庭农场举办谷子新品种及节水高效生产技术集成示范观摩会。\"衡早18号\"适配衡水本地\"少雨时段持续干旱、多雨时段集中强降雨\"特点,具备抗旱早熟、优质稳产、抗倒伏、抗谷瘟病等优良特性,每亩6万株密植栽培可有效破解传统谷子种植耗水肥、费人工、难规模化短板,适宜大面积推广。","河北省农林科学院","2026-09-01T00:00:00Z",57,{"impact":17,"substance":155,"depth":17,"authority":17,"freshness":107,"relevant":22,"comment":175},"省级科研机构发布的谷子新品种与节水高效技术集成示范观摩会，具备抗旱早熟、密植栽培等实质技术信息，但属区域性推广动态，时效性一般，适合作为主题页聚合素材而非每日精选头条。",[177],{"name":171,"url":169},[86,179,180,28,181],"新品种推广","谷子","节水农业",[183,184],"新品种推广 旱作农业 种业振兴 节水农业","新品种推广 旱作农业","新品种推广旱作农业种业振兴节水农业-2102","2026-09-11T00:04:21.315891Z",{"id":188,"title":189,"url":190,"summary":191,"summary_zh":192,"content":9,"source_name":10,"source_url":190,"published_at":193,"category":12,"cover_url":9,"hotness":13,"is_selected":14,"score":194,"score_detail":195,"sources":197,"tags":199,"search_phrases":204,"slug":207,"view_count":36,"doi":208,"paper":209,"created_at":221},2033,"Regenerative benefits of legume–wheat intercropping systems on soil quality and resource-use efficiency under deficit irrigation in Egypt","https:\u002F\u002Fdoi.org\u002F10.3389\u002Ffsufs.2026.1923296","Background Soil degradation and water scarcity are major constraints to sustainable cereal production in arid and semi-arid regions. Legume–wheat intercropping may simultaneously improve soil quality and resource-use efficiency, but its regenerative performance under deficit irrigation remains insufficiently quantified. Methods A two-year field experiment was conducted during 2021\u002F22 and 2022\u002F23 in El-Minia Governorate, Middle Egypt, using a split-plot design with three replications. Three irrigation regimes—100%, 85%, and 70% of crop evapotranspiration (ETc)—were evaluated in combination with sole wheat and wheat intercropped with faba bean, pea, or fahl clover. Soil organic matter, available N, P, and K, soil pH, Soil Quality Index (SQI), crop yield, land equivalent ratio (LER), water equivalent ratio (WER), and change in water use (DWU) were assessed. Results All legume–wheat intercropping systems significantly improved soil organic matter and available macronutrients relative to sole wheat. Faba bean–wheat generally produced the greatest improvements in soil properties and SQI. The beneficial effects of intercropping persisted under severe deficit irrigation (70% ETc). Pea–wheat achieved the highest total LER (1.39) and WER (1.26), together with the highest wheat grain yield and a DWU of -20.48%. Conclusion Legume–wheat intercropping enhanced soil quality, land-use efficiency, and water-use efficiency under deficit irrigation. The results demonstrate that integrating legumes with wheat can provide a practical regenerative strategy for improving productivity and resilience of wheat-based systems in water-limited environments.","背景 土壤退化与水资源短缺是干旱和半干旱地区可持续谷物生产的主要限制因素。豆科作物-小麦间作可能同时改善土壤质量和资源利用效率，但其在亏缺灌溉条件下的再生性能仍缺乏充分的定量评估。方法 于2021\u002F22和2022\u002F23年度在埃及中部明亚省开展了一项为期两年的田间试验，采用裂区设计，设三次重复。评估了三种灌溉制度——分别为作物蒸散量（ETc）的100%、85%和70%——与单作小麦及小麦分别与蚕豆、豌豆或埃及三叶草间作的组合。测定了土壤有机质、速效氮、磷、钾、土壤pH、土壤质量指数（SQI）、作物产量、土地当量比（LER）、水当量比（WER）以及水分利用变化量（DWU）。结果 与单作小麦相比，所有豆科作物-小麦间作系统均显著提高了土壤有机质和速效大量元素含量。蚕豆-小麦间作通常在改善土壤性质和SQI方面效果最佳。间作的有益效应在严重亏缺灌溉（70% ETc）条件下依然持续。豌豆-小麦间作实现了最高的总LER（1.39）和WER（1.26），同时小麦籽粒产量最高，DWU为-20.48%。结论 豆科作物-小麦间作在亏缺灌溉条件下提高了土壤质量、土地利用效率和水分利用效率。结果表明，将豆科作物与小麦整合可为水资源受限环境中提高小麦种植系统的生产力和韧性提供一种实用的再生策略。","2026-09-09T00:00:00Z",76,{"impact":155,"substance":131,"depth":19,"authority":20,"freshness":21,"relevant":22,"comment":196},"两年田间试验量化了亏缺灌溉下豆科-小麦间作的土壤改良与资源利用效率提升，数据扎实、结论可靠，对干旱半干旱区小麦可持续生产有参考价值。",[198],{"name":10,"url":190},[200,201,202,29,203],"小麦","土壤健康","节水灌溉","豆科绿肥",[205,206],"土壤健康 节水灌溉 豆科绿肥 间作套种","土壤健康 节水灌溉","土壤健康节水灌溉豆科绿肥间作套种-2033","10.3389\u002Ffsufs.2026.1923296",{"doi":208,"openalex_id":210,"authors":211,"venue":10,"cited_by_count":36,"oa_url":190,"card":216,"direction":59,"ingested_from":61},"W7212074132",[212,214],{"name":213,"orcid":9},"S.A.H. Ouda",{"name":215,"orcid":9},"Abd El-Hafeez Zohry",{"tldr":217,"method":218,"finding":219,"direction":59,"opportunity":220},"埃及两年试验表明，豆科-小麦间作在亏缺灌溉下仍能提升土壤质量与资源利用效率。","裂区试验，3种灌溉水平与4种种植模式，测SQI、LER、WER等指标。","蚕豆-小麦改善土壤最佳，豌豆-小麦LER和WER最高，间作效益在70%ETc下仍存在。","可探究间作系统在不同气候与土壤类型下的长期固碳减排潜力及微生物机制。","2026-09-10T23:30:07.672063Z"]