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1.
温度对双委夜蛾种群生态学特征的影响   总被引:1,自引:0,他引:1  
【目的】双委夜蛾Athetis dissimilis(Hampson)是新发现的一种农业害虫,为探索温度对双委夜蛾生长发育和繁殖的影响。【方法】在室内l6,21,26,30,34(±1)℃,RH为70%±5%、光周期为14L︰10D条件下,测定了双委夜蛾各发育阶段的发育历期、存活率及成虫产卵量,组建了双委夜蛾的实验种群生命表。【结果】结果表明,双委夜蛾各虫态的发育历期随温度的升高而缩短;世代发育起点温度(C)为9.88℃,有效积温(K)为906.53日·度;卵的孵化率在不同的温度下无显著差异;幼虫存活率、化蛹率和羽化率则以21~30℃为最高;成虫的产卵量以21~26℃为最高,而在16℃和30℃时显著降低,在34℃下成虫不能交配,30℃成虫交配率仅为46%;生命表分析表明,26℃双委夜蛾的种群趋势指数和内禀增长率取得最大值,分别为98.5和0.1。【结论】21~26℃是最适宜双委夜蛾生长发育和繁殖的温度范围。  相似文献   

2.
【目的】为明确变温条件对二点委夜蛾Athetis lepigone (Möschler) 实验种群生长发育的影响。【方法】分别设置6个变温组合(20/24℃, 20/28℃, 20/32℃, 24/28℃, 24/32℃和28/32℃),通过测定和计算各虫态发育起点温度和有效积温及生命表参数来研究变温对二点委夜蛾卵、幼虫、蛹、世代平均发育历期、存活率和繁殖力的影响。【结果】不同变温组合对二点委夜蛾各虫态的发育历期、存活率及种群繁殖力有显著影响。发育历期随着变温组合平均温度的升高而缩短,二点委夜蛾世代存活率由大到小的顺序为24/28℃>20/32℃>28/32℃>20/28℃>24/32℃>20/24℃。24/28℃时产卵量最高,单雌产卵量为390.70粒。世代发育起点温度和有效积温分别为10.37℃和663.17日·度。在不同变温组合下内禀增长率rm值随着平均温度的升高先上升后降低。在24/28℃时,二点委夜蛾rm、净增殖率R0和周限增长率λ最大,种群加倍时间 t 和世代平均周期 T 最小。【结论】24/28℃是二点委夜蛾实验种群生长发育及繁殖的最适变温组合,本研究结果为二点委夜蛾的预测预报及综合防治提供了科学依据。  相似文献   

3.
赵晨宇  李新畅  崔娟  高宇  史树森 《昆虫学报》1950,63(9):1108-1116
【目的】明确自然变温环境对甘蓝夜蛾Mamestra brassicae生长发育和繁殖的影响,深入研究其对环境温度的适应性。【方法】在13~25℃(日平均19℃), 16~28℃(日平均22℃), 19~31℃(日平均25℃), 22~34℃(日平均28℃)和25~37℃(日平均31℃) 5个梯度变温条件下,以大豆Glycine max植株叶片为寄主材料饲养甘蓝夜蛾卵,测定其各虫态发育历期、发育速率、成虫繁殖力及发育起点温度和有效积温。【结果】变温范围为13~25℃时甘蓝夜蛾发育历期最长,世代发育历期为65.93 d,显著长于其他变温处理。且随温度升高,其发育历期缩短,变温范围为22~34℃时,该虫发育历期最短,世代发育历期为38.46 d,显著短于其他变温处理。在变温范围为25~37℃时,该虫不能正常完成个体发育。在日平均温度(T)19~28℃范围内(最大温差12℃),甘蓝夜蛾卵、幼虫及蛹期的发育速率随温度升高而加快,且各个虫态发育速率(V)拟合方程均符合线性方程模型:V卵期=0.125+0.048T, V幼虫期=0.023+0.012T, V蛹期0.027+0.013T, V成虫=0.073+0.47T。甘蓝夜蛾雌雄成虫的寿命随着日平均温度的升高而逐渐缩短,雌雄成虫寿命在日变温范围13~25℃时最长,分别为7.91 d和8.00 d;在变温范围22~34℃时最短,分别为3.00 d和3.57 d。甘蓝夜蛾卵、幼虫、蛹、成虫发育起点温度分别为7.98, 6.54, 9.36和10.78℃,有效积温依次为87.00, 607.36, 351.51和108.52 d·℃。16~28℃的变温范围更适合甘蓝夜蛾种群的生存与繁殖,其种群趋势指数I为117.81。【结论】甘蓝夜蛾属于偏低温适应性害虫,对高温环境适应能力较低。研究结果为进一步研究甘蓝夜蛾自然种群发生规律及其发生期、发生量预测预报提供了科学依据。  相似文献   

4.
【目的】为明确温度对军配盲蝽Stethoconus japonicus生长发育及繁殖的影响。【方法】以悬铃木方翅网蝽Corythucha ciliata为猎物,置于15、20、25、30和35℃的人工气候箱恒温条件下饲养军配盲蝽,统计恒温处理下军配盲蝽发育历期、存活率和成虫繁殖力等指标,计算其发育起点温度与有效积温。【结果】在15-35℃内,军配盲蝽各虫态发育历期均随温度升高而缩短。军配盲蝽卵、若虫、卵-成虫、产卵前期及世代存活率随温度升高均先增加后降低,在25℃下的存活率最高。军配盲蝽全世代的发育起点温度为10.59℃,有效积温550.22日·度。随着温度升高,成虫寿命和雌虫产卵期逐渐缩短,雌虫寿命较雄虫长,25℃时单雌平均产卵量最大,为218.36粒,35℃时最低,为47.62粒。25℃下军配盲蝽实验种群趋势指数值最大,为I=18.01,是20℃的2.05倍,30℃的7.97倍。【结论】25-30℃最有利于军配盲蝽实验种群的增长。研究结果为室内人工繁殖军配盲蝽提供基础参考数据。  相似文献   

5.
【目的】樟叶蜂Mesoneura rufonota Rohwer是危害樟树的重要食叶性害虫。本研究旨在探明温度对该虫生长发育和繁殖的影响,以便对其进行预测预报及综合治理。【方法】在19,22,25,28和30℃5个恒温条件下测定了樟叶蜂各虫态的生长发育情况,分析了温度对樟叶蜂发育历期、存活率和繁殖的影响,对温度与各虫态发育速率之间的关系进行模型拟合,并采用最小二乘法计算出各虫态的发育起点温度和有效积温。【结果】在19~30℃范围内,各虫态平均发育历期随温度升高而缩短,19℃下完成一个世代发育需要34.62 d,而30℃下仅需18.97 d。各虫态的发育速率与温度呈显著正相关,且更符合二项式回归模型;卵期、幼虫期、蛹期、成虫期以及全世代的发育起点温度分别为5.26,3.22,7.66,8.24和5.11℃,有效积温分别为65.58,204.15,121.94,65.01和460.29 d·℃。各虫态的累积存活率随温度升高而下降,雌雄成虫寿命随温度的升高逐渐缩短;产卵量以22~25℃条件下最高,表明高温和低温均抑制樟叶蜂产卵。【结论】温度是影响樟叶蜂生长发育和繁殖的关键因素,22~25℃是樟叶蜂生长发育和繁殖的适宜温度。研究结果为有效开展樟叶蜂的监测预报及综合防控提供了科学依据。  相似文献   

6.
温度对栎黄枯叶蛾生长发育及繁殖的影响   总被引:2,自引:0,他引:2  
【目的】栎黄枯叶蛾Trabala vishnou gigantina是近年在沙棘Hippophae rhamnoides林中大面积暴发的一种食叶害虫,以幼虫取食叶片,导致沙棘长势衰弱甚至死亡。本研究旨在明确温度对栎黄枯叶蛾生长发育及繁殖的影响,以便对其进行预测预报及采取防治措施。【方法】分别在5个恒温(19,22,25,28和31℃)条件下研究了温度对栎黄枯叶蛾各虫态发育历期、取食量、交配率、产卵、寿命等的影响。【结果】在19~31℃温度范围内,随着温度升高,各虫态发育历期逐渐缩短。卵、幼虫、蛹、产卵前期和全世代的发育起点温度分别为9.24±0.45,10.85±0.87,14.56±0.85,9.65±0.54和10.48±0.52℃,有效积温分别为341.22±9.54,1 285.64±17.65,445.35±8.65,13.34±1.25和2 085.35±25.84日·度。幼虫总取食量和交配率与温度变化关系不大,而成虫的产卵量在22,25和28℃下明显高于其他温度,成虫寿命与温度呈负相关。【结论】22~28℃之间是栎黄枯叶蛾较为理想的生长发育和繁殖温度。研究结果为生产上合理防治该害虫提供了参考依据。  相似文献   

7.
幼虫期短时高温暴露对二点委夜蛾存活和繁殖的影响   总被引:3,自引:0,他引:3  
【目的】随着全球气候变暖,夏季短时极端高温发生的频率逐渐增加。本研究旨在探明二点委夜蛾Athetis lepigone幼虫期对高温的适应性。【方法】将二点委夜蛾不同日龄(1,6,12和18日龄)幼虫在不同高温(35,38和41℃)条件下暴露不同时间(0.5,1,2,4和6 h)后转移至适温(26℃)继续饲养,观察短时高温对其存活率、发育历期、化蛹率、羽化率、雌虫寿命、单雌产卵量及次代卵孵化率的影响。【结果】幼虫期短时高温暴露的温度和时间对二点委夜蛾幼虫的存活率和发育历期有显著影响,而对化蛹率、成虫羽化率、雌虫寿命、单雌产卵量以及次代卵孵化率影响不显著。随着温度的升高和处理时间的延长,幼虫存活率逐渐降低,发育历期逐渐延长。其中,18日龄的幼虫最为敏感,38℃和41℃暴露6 h后存活率分别为58.3%和17.7%,显著低于对照,发育历期分别为25.5 d和29.2 d,较对照显著延长。【结论】幼虫期经历短时高温暴露仅对幼虫的存活和发育历期有影响,而对后续蛹和成虫的生长发育及成虫繁殖力没有影响。  相似文献   

8.
【目的】明确劳氏粘虫Leucania loreyi (Duponchel)各虫态的发育起点温度和有效积温。【方法】本研究在光照培养箱中,测定劳氏粘虫分别在18、21、24、27、30℃下各虫态的发育历期,并运用有效积温法则计算出劳氏粘虫各虫态的发育起点温度和有效积温;采用Logisitic模型建立各虫态发育速率与温度的关系,进而求出各虫态的发育最适温度及适宜温区。【结果】劳氏粘虫各龄幼虫在18-30℃之间均能正常生长发育,发育历期随温度的升高而缩短。卵、幼虫、蛹、产卵前期和全世代的发育起点温度分别为11.83、13.89、14.20、﹣1.86和12.24℃,有效积温分别为52.55、254.53、118.15、121.89和542.26日·度。全世代的发育最适温度为20.71℃,发育适温区为12.65-28.78℃。【结论】根据广西代表地区气象资料,推算出劳氏粘虫在广西一年理论发生5.8-7.8代,与田间调查情况相符。  相似文献   

9.
【背景】南亚果实蝇是世界性的检疫性害虫,在我国多个省市发生为害,对瓜果作物造成了严重的经济损失。【方法】采用人工恒温饲养方法,分别设置10、14、18、22、26、30、34℃7个恒温条件,测定不同温度条件下南亚果实蝇卵、幼虫和蛹的生长发育历期,并推算出相应的发育起点温度和有效积温。【结果】南亚果实蝇卵、幼虫和蛹的发育起点温度分别为7.36、2.43、7.64℃,卵期、幼虫期和蛹期的有效积温分别为20.21、187.69和156.65日度。完成整个世代的发育起点温度是7.64℃,有效积温为364.55日度。当温度达到34℃时,卵的发育历期相对延长,而蛹则不能正常发育,无法羽化为成虫。【结论与意义】在10~30℃,南亚果实蝇的卵、幼虫和蛹的发育历期随温度升高而缩短,各虫态的发育速率和温度呈显著正相关;在26和30℃下,卵、幼虫和蛹的发育历期均显著短于其他各处理温度的发育历期。该试验结果为了解南亚果实蝇的发育温度极限和进一步开展该害虫的适生性分析提供了基础信息,进而为制定该虫的检疫措施提供依据。  相似文献   

10.
【目的】为明确温度对象虫金小蜂Anisopteromalus calandrae(Howard)发育和繁殖的影响。【方法】本文研究了5个温度梯度下以烟草甲Lasioderma serricorne为寄主的象虫金小蜂的存活率、发育历期、成虫寿命和产卵量等生物学特性的变化,采用最小二乘法计算出各虫态的发育起点温度和有效积温。用线性回归、Logistic模型以及"王-兰-丁"模型对温度与象虫金小蜂发育速率的关系进行拟合。【结果】象虫金小蜂卵孵化率随温度升高呈先升高后降低的趋势,当温度为25℃时,象虫金小蜂的孵化率最高,达到88.67%;象虫金小蜂幼虫期存活率随温度升高而逐渐降低;温度与各虫态的发育历期之间呈明显的负相关,即随着环境温度升高,发育历期明显缩短。象虫金小蜂成虫寿命随温度升高呈现缩短趋势,22℃平均寿命长达17.88 d,31℃平均寿命仅为9.89 d,成虫产卵量则随着温度的升高而升高。全世代发育起点温度为17.81℃,有效积温为138.48日·度;各参数表明直线模型和Logistic模型比"王-兰-丁"模型更能拟合象虫金小蜂发育速率与温度之间的关系。【结论】温度对象虫金小蜂种群发育和繁殖具有显著影响,25-31℃是象虫金小蜂生长发育和繁殖的最适温度范围。  相似文献   

11.
The primary objective of the present research work is to study and compare the circadian variability in body temperature recorded from different locations of the body during subjects’ normal routines. Temperatures of oral cavity (sublingually), tympanum, forehead, axilla and the elbow pit were measured simultaneously at approximate 1-h intervals for five consecutive days during subjects’ waking span in their routine living condition. The observations were made in eight young, apparently healthy, university students. Data were analysed using cosinor rhythmometry for evaluation of circadian rhythms and two-way ANOVA with repeated measures to assess the effect of time of day and measuring site on body temperatures and their interaction. Significant circadian rhythms in body temperature, irrespective of site, were found. Based on autocorrelation analysis, it was observed that the day-to-day variability in body temperature was consistent. The acrophases of all the studied temperature rhythms were located in the afternoon, except axillary temperature, which occurred in the early evening. The mean daytime temperature was found to be the highest when recorded sublingually and it was the lowest on the forehead or elbow pit. On the basis of the results of this study, we recommend that the methods used could be introduced into laboratory courses in a curriculum of chronobiology courses for both UG and PG classes for the demonstration/study of circadian rhythms in body temperature under normal routines. The methods used are valuable as they are non-invasive, easily accepted and assessable in a student setting.  相似文献   

12.
灰飞虱发育起点温度及有效积温的探讨   总被引:1,自引:1,他引:0  
利用培养箱在恒温条件下饲养灰飞虱Laodelphax striatellus Fallén,测定了卵、若虫、成虫繁殖前和全世代发育历期,用直线回归法计算了灰飞虱各虫态和全世代的发育起点温度和有效积温分别为10.06、6.43、10.29、8.08℃和102.3、365.2、87.5、552.1日·度。并根据有效积温法则预测了该虫在济宁市1年完成的代数为4~5代。  相似文献   

13.
王兴科  吴福安  陶士强  汪伟  程嘉翎 《生态学报》2008,28(6):2645-2645~2653
采用生命表分析、生存分析、"王-兰-丁"模型及线性模型等分析方法,对15~28℃温区的5个恒温处理朱砂叶螨(Tetranychus cinnabarinus)实验种群进行了系统研究.结果表明,此温区内,种群在生殖、发育和生存3方面,有明显的温度效应:内禀增长力、周限增长力、净增殖力和平均日产卵量、世代平均周期、及种群倍增时间的倒数呈线性增长;而平均寿命、最大死亡年龄,随温度升高而递减;性比和实际产卵天数对温度不敏感.种群在生殖、发育和生存三者之间,采取了较为"折衷"的策略:8℃为发育临界点;13℃左右为生殖和种群增长临界温度;22℃左右为生殖和种群增长最适温度;30℃左右为发育最适温度.  相似文献   

14.
核桃扁叶甲的发育起点温度和有效积温   总被引:1,自引:0,他引:1  
室内观察测定5个恒温条件下,核桃扁叶甲Gastrolina depressa Baly各虫态的发育历期及起点温度和有效积温。结果表明:在16~32℃温度范围内,核桃扁叶甲均能完成发育,其发育历期随温度的升高而缩短,卵期、幼虫期、蛹期、产卵前期的发育起点温度分别为9.4,12.2,14.3和11.1℃,有效积温分别为43.2,77.2,36.0和104.7日.度;整个世代的发育起点温度为12.0℃,有效积温为260.5日.度。持续过高温度不适合核桃扁叶甲的生长发育。  相似文献   

15.
采用19,22,25,28和31℃5个温度对竹织叶野螟Algedonia coclesalis Walker各虫态(龄)发育起点温度和有效积温进行测定。结果表明,竹织叶野螟的在19~31℃范围内均能正常生长发育,尤其是28~31℃范围最适宜于竹织叶野螟的生长发育。卵、1龄幼虫、2龄幼虫、3龄幼虫、4龄幼虫、5龄幼虫、6龄幼虫、7龄幼虫、蛹、成虫及世代的发育起点温度分别为6.63,12.51,11.18,10.93,10.05,8.01,6.80,5.78,6.20,7.81和8.33℃,有效积温分别为124.19,64.54,72.59,82.08,93.46,136.84,155.42,201.06,211.55,111.49和1235.50日.度。  相似文献   

16.
沙葱萤叶甲为近年来在内蒙古草原猖獗成灾的新害虫,为明确温度对其发育速率的影响,分别设置5个变温组合(8/20℃,11/23℃,14/26℃,17/29℃和20/32℃)和6个恒温(13℃,17℃,21℃,25℃,29℃和33℃),比较了变温和恒温对沙葱萤叶甲幼虫和蛹发育速率的影响。结果表明,不同变温组合和恒温对沙葱萤叶甲幼虫和蛹的发育速率有显著的影响。发育历期随温度的升高而缩短,在变温条件下,1龄幼虫期、2龄幼虫期、3龄幼虫期、总幼虫期和蛹期分别从最低温度组合(8/20℃,平均15℃)的11.00,13.44,23.18,46.42和16.89 d,缩短至最高温度组合(20/32℃,平均27℃)的4.92,4.63,9.17,17.83和5.83 d;在恒温条件下,13℃下幼虫不能发育和存活,1龄幼虫期、2龄幼虫期、3龄幼虫期、总幼虫期和蛹期分别从17℃的14.50,10.75,20.63,45.50和11.00 d,缩短至33℃的6.10,5.47,10.60,22.17和5.33 d。在变温条件下,幼虫和蛹的发育起点温度分别为7.44℃和8.48℃,有效积温分别为344.82日度和113.52日度;在恒温条件下,幼虫和蛹的发育起点温度分别为0.64℃和5.11℃,有效积温分别为714.28日度和147.06日度。变温促进了沙葱萤叶甲幼虫和蛹的发育,本研究结果为沙葱萤叶甲的预测预报及综合防控提供了科学依据。  相似文献   

17.
Despite previous reviews and commentaries, significant misconceptions remain concerning deep-body (core) and skin temperature measurement in humans. Therefore, the authors have assembled the pertinent Laws of Thermodynamics and other first principles that govern physical and physiological heat exchanges. The resulting review is aimed at providing theoretical and empirical justifications for collecting and interpreting these data. The primary emphasis is upon deep-body temperatures, with discussions of intramuscular, subcutaneous, transcutaneous and skin temperatures included. These are all turnover indices resulting from variations in local metabolism, tissue conduction and blood flow. Consequently, inter-site differences and similarities may have no mechanistic relationship unless those sites have similar metabolic rates, are in close proximity and are perfused by the same blood vessels. Therefore, it is proposed that a gold standard deep-body temperature does not exist. Instead, the validity of each measurement must be evaluated relative to one's research objectives, whilst satisfying equilibration and positioning requirements. When using thermometric computations of heat storage, the establishment of steady-state conditions is essential, but for clinically relevant states, targeted temperature monitoring becomes paramount. However, when investigating temperature regulation, the response characteristics of each temperature measurement must match the forcing function applied during experimentation. Thus, during dynamic phases, deep-body temperatures must be measured from sites that track temperature changes in the central blood volume.  相似文献   

18.
在16,19,22,25,28和31℃恒温条件下以花卉一串红(Salvia splendens)饲养大戟长管蚜Macrosiphum euphorbiae(Thomas),测得该蚜虫的各龄历期和产仔前期,得出全若虫期的历期。依据有效积温法则计算的1~4龄若蚜和全若虫期的发育起点分别是12.5,7.8,10.3,4.1和9.3℃,有效积温分别是14.6,43.9,29.9,31.9和117.2日.度。大戟长管蚜适合生长发育的温度是19~28℃,最适合温度为25℃。  相似文献   

19.
The purpose of this study was to evaluate the cold strain index (CSI) for peripheral environmental stress using data from a previous footwear study. Eight men (20±2 yr) dressed in protective cold weather clothing with varying footwear underwent 5 days of cold air (−23.4 °C) testing while attempting to sit for 240 min. Rectal, skin, and toe temperatures (Ttoe) were continuously measured. All test exposures were ended after 50–165 min due to cold foot discomfort or Ttoe<5 °C. However, CSI values indicated little cold strain. Therefore, we revised CSI to include peripheral cold assessment, which was found to be consistent with subject behavior and measured low Ttoe.  相似文献   

20.
Preferential temperature as a physiological feature is crucial for spiders, since it determines the selection of key habitats for their survival and reproduction. In this work, we study the daily and geographical variation of the preferential temperature of the spider Sicarius thomisoides subjected to different degrees of daily thermal oscillation in their habitats. Preferred temperatures differ between coastal and inland populations, but in both cases, there is a marked bimodality in the daily pattern of temperature preference, with two peaks per day that would be given by the changes in the hours of activity. These nocturnal spiders select higher temperatures in the evening (active period) and select lower temperatures during late morning (resting period). In laboratory, spiders have preferred temperatures that differ from those found in their habitats, so they must tolerate or compensate non-preferred temperatures by active thermoregulation in natural conditions.  相似文献   

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