首页> 外文会议>Australian Society of Sugar Cane Technologists Conference >ROW SPACING EFFECT ON THE GROWTH AND YIELD OF SEVERAL SUGARCANE VARIETIES IN NORTH QUEENSLAND
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ROW SPACING EFFECT ON THE GROWTH AND YIELD OF SEVERAL SUGARCANE VARIETIES IN NORTH QUEENSLAND

机译:北昆士兰几种甘蔗品种成长和产量的行间距影响

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Controlled traffic (matching wheel and row spacing) is becoming an important part of the production system in the Australian sugar industry. However, with harvester and haul-out wheel spacing between 1.8-1.9 m, controlled traffic is not possible under the traditional sugarcane row spacing of 1.5 m. The simplest solution to the problem would be to change row spacing to match wheel spacing. However, there is little information available as to how current varieties, selected under a 1.5 m system, will perform under wider rows. An initial experiment was established at Gordonvale, north Queensland to assess the response of four varieties with different growth characteristics (Q187~D, Q200~D, Q201~D, Q218) to 1.5 m single rows, 1.8 m single and dual rows (500 mm between duals) and 2.3 m dual rows (800 mm between duals). There were significant variety and variety × row spacing responses with the overall highest cane (151 t/ha) and sugar (23.65 t/ha) yields being produced with Q201~D on 1.8 m dual rows. The results suggest that the success of a change to a controlled traffic system (wider rows than 1.5 m) will be dependent on suitable varieties being available. It is suggested that selection of suitable varieties for wider rows will be dependent on a better understanding of the crop physiology and, from that, identification of the basic characteristics required. It is apparent that there is little understanding of this at present. Further, there were indications from this experiment that fast growing, strongly tillering varieties (e.g. Q200~D) may not necessarily be the avenue to maximum yields compared with varieties that develop more slowly, produce fewer tillers and relatively large stalks (e.g. Q201~D).
机译:受控流量(匹配轮和行间距)正在成为澳大利亚糖业生产系统的重要组成部分。然而,在收割机和拖运车轮间距之间,在1.8-1.9米之间,在传统的甘蔗行间距为1.5米,不可能进行受控交通。最简单的问题的解决方案是更改行间距以匹配轮间距。但是,几乎没有关于当前品种,在1.5米系统下选择的信息,将在更广泛的行下执行。北昆士兰州戈杜尔州的初步实验,以评估四种品种具有不同增长特性的响应(Q187〜D,Q200〜D,Q201〜D,Q218)至1.5米单行,1.8米单行(500双重之间的mm)和2.3 m双行(在双重之间800 mm)。用Q201〜D在1.8米双行上产生具有重要品种最高的蔗可(151吨/公顷)和糖(23.65吨/公顷)产量的繁多和品种×行间距反应。结果表明,对受控交通系统(比1.5米的较宽行)的变化成功将取决于可用的合适品种。有人建议,为更广泛的行选择合适的品种将取决于更好地了解作物生理学,并从中获得所需的基本特征。很明显,目前对此几乎没有了解。此外,这种实验中的迹象表明,与产生更慢的品种相比,这种实验中可能不一定是最大产量的途径可能不一定是最大产量的途径(例如,产生较少的分蘖和相对大的茎(例如Q201〜D) )。

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