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虫(nematodes)是世界农业生产的一大障碍,每年给世界农业生产造成约1000亿美元的巨额损失,是世界各国一直关注的重点病害之一。线虫可以危害各种大田作物和各种温室植物,几乎所有的栽培植物都有线虫危害发生。随着人们环保意识的增强以及健康意识的觉醒,传统防治根结线虫的药物如溴甲烷等因对环境的破坏作用,或者由于高毒、使用不便、抗药性等原因而迅速退出历史舞台,研究环保高效防治线虫成为世界各国竞相发展的技术之一。本研究尝试通过物理方式防治蔬菜根结线虫,并调查了对土壤质量的影响,主要内容包括: 1. 设计制造了功率20 Kw,频率为915 MHz的大功率土壤微波处理机,并通过了田间试验; 2. 设计制造了每小时120 g臭氧产量的便携式臭氧土壤处理机,并通过了田间试验; 3. 采用4因素3水平正交法L9(34)在山东寿光蔬菜大棚进行了蔬菜根结线虫的防治试验,综合考察微波、臭氧、微波吸收剂、EM菌等不同处理水平对根结线虫和对土壤质量的影响,结果表明: 1) 大棚土壤经微波60 s照射能够显著降低甜瓜根结线虫数和根结指数(p < 0.05),盆栽试验只需处理10 s即可显著防治甜瓜根结线虫(p < 0.01);以120 g/h臭氧浓度处理5 s也能显著降低甜瓜根结线虫的数量(p < 0.05);田间施入5 g/m2的EM菌,能够显著降低甜瓜根结线虫的数量(p < 0.05);盆栽试验中微波吸收剂具有降低根结线虫数量的趋势,但是不同处理水平之间差异不显著,田间试验则具有增加根结线虫的趋势,不同处理水平之间也没有显著差异。 2) 微波不同处理水平之间对甜瓜单瓜重的影响没有显著差异;以120 g/h臭氧浓度处理甜瓜能够显著增加甜瓜单瓜重(p < 0.05);200 g/m2微波吸收剂能够显著提高甜瓜单瓜重(p < 0.05);以5 g/m2EM菌处理土壤则显著降低甜瓜单瓜重(p < 0.05)。 3) 微波、臭氧、微波吸收剂不同处理水平对甜瓜糖度的影响没有显著差异;以3 g/m2的EM菌处理甜瓜能够显著降低甜瓜的糖度。 4) 不同因素对甜瓜硬度的影响没有显著差异。 5) 微波处理60 s能够显著提高甜瓜的果型指数(p < 0.1),臭氧、微波吸收剂、EM菌等因素不同处理水平之间对果型指数影响差异不显著。 6) EM菌5 g/m2处理浓度能够显著降低甜瓜株高(p < 0.1),微波、臭氧、微波吸收剂不同处理水平之间对株高的影响没有显著差异。 7) EM菌5 g/m2处理浓度能够显著降低甜瓜根径(p < 0.1),微波、臭氧、微波吸收剂不同处理水平之间对根径的影响没有显著差异。 8) 微波处理60 s能够显著降低表层土壤(0-5 cm)的有机质含量(p < 0.01);以120 g/h的臭氧浓度处理,则可以显著提高10-15 cm土壤的有机质含量(p < 0.05),其它处理因素的不同水平对有机质的影响差异不显著。 9) 微波不同处理水平对土壤全氮的影响没有显著差异(p < 0.05);120 g/h臭氧处理浓度能够显著降低表层土壤(0-5 cm)的土壤全氮量(p < 0.1);100 g/m2微波吸收剂处理水平能够显著提高10-15 cm土壤全氮量(p < 0.05);EM菌3 g/m2的处理水平则显著降低5-10 cm土壤全氮量(p < 0.05)。 10) 微波、微波吸收剂、EM菌不同处理水平之间对土壤全磷没有显著影响;240 g/h臭氧浓度处理5 s能够显著降低10-15 cm土层的土壤全磷含量(p < 0.05)。 11) 微波、微波吸收剂对土壤全磷没有显著影响;臭氧处理具有降低土壤有效磷的趋势,EM菌处理则有提高土壤有效磷的趋势,但是 不同处理水平之间差异不显著(p > 0.05)。 12) 微波处理对土壤EC值没有显著影响;臭氧、微波吸收剂、EM菌处理具有降低土壤EC值的趋势,但是不同处理水平之间差异不显著(p > 0.05)。 13) 微波处理30 s能够显著降低表层土壤的pH值(p < 0.05),臭氧、微波吸收剂、EM菌处理具有提高土壤pH值的趋势,但是不同处理水平之间差异不显著。

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人类活动能显著地改变生态系统的属性和功能。这些变化不仅发生在容易观察的局部层面上,如土壤沙化、植被退化等;还能更深刻地影响到微生物控制的温室气体释放,进而影响大尺度上气候的变化。本论文根据2 年田间试验结果报告了人类干扰(草地退耕和施肥)和降水增加30%对中国北部农牧交错区(内蒙古多伦县)半干旱草地生态系统生产力和温室气体排放的影响。 本研究发现氮是影响该区草地和弃耕地生产力的最重要因子,即使低量的氮肥应用(5 g N y-1)也能使该区草地地上净初级生产力(ANPP)增加36-46%。然而氮对草地生产力影响主要集中在地上部分,对地下净初级生产力(BNPP) 影响比较微弱。单独使用磷肥对ANPP 和BNPP 均无显著影响,氮磷混施对ANPP 有显著正交互作用。增加的降水对草地和弃耕地ANPP 和BNPP 有弱的正效应,增加30%降水使草地对照ANPP 增加9-25%,BNPP 增加12%-17%,弃耕地对照ANPP 增加7%-37%,BNPP 增加36%-37% 。草地和弃耕地对照ANPP 并无显著差别,由于高于弃耕地1-3 倍的BNPP,总体上草地比弃耕地有更高的固碳能力。这个结果也说明草地能更有效地把植物地上部分固定的碳转移到地下,这与草地长期发育积累的丰富地下根系和高根冠比物种组成有关。 水肥处理及土地利用方式也深刻改变了温室气体排放。温带草地和弃耕地CO2 排放(系统呼吸:Re)存在显著季节变化,温度、水分和地上生物量是控制这些变化的主要因子。在气候温暖的6-9 月份,生物量和土壤水分是决定系统呼吸季节变化主要因子,而与温度无明显相关。随着氮肥使用,草地和弃耕地呼吸速率加大,其温度敏感系数Q10 也明显升高,这主要与氮肥使用后增加的地上生物量有关。由于水分促进作用和生物量的弱增长,增加的降水也加大了草地和弃耕地CO2 排放。低的地下生物量和有机碳氮并没有导致弃耕地低的CO2 排放,显示了农垦后土壤结构破坏导致的有机碳分解增加不会在农业弃耕后短期内(5-6 年)停止。 除了对生物量的不敏感性外,中国北部半干旱生态系统N2O 排放表现出与CO2 排放类似的变化规律:水分和温度是N2O 季节变化的主导因子;氮肥使用和降水增加都增加了N2O 排放;N2O 排放在草地对照和弃耕地对照之间没有显著差别。更少的根系对无机氮的竞争导致了弃耕地比草地有更高的N2O 释放因子(单位氮添加所引起N2O 释放)。低的土壤水分(<70% WFPS )和无机氮都是限制反硝化发生的重要条件,因此硝化可能是草地和弃耕地N2O 的最主要来源。半干旱草地生态系统N2O 排放与CO2 排放之间存在着显著线性关系。 中国北部半干旱草地和弃耕地都起着CH4 汇的生态功能。水分是控制CH4 吸收季节变异的主导变量,土壤空隙水含量(WFPS)与CH4 指数递减方程能解释其变异的64%-83% 。增加的降水导致了土壤水分增加,从而引起甲烷氧化菌所需基质(CH4 和O2)扩散受阻,减小了土壤CH4 吸收功能。施肥并没有抑制CH4 吸收,相反由于施肥后植物速生对土壤水的抽干作用,施肥增加了植物速生期时的CH4 吸收。CH4 吸收对农垦引起的土壤微生物生境结构破坏非常敏感,在农业措施停止5-6 年后的弃耕地,CH4 吸收仍比草地低24%。 本研究初步分析了影响中国北部农牧交错区草地生态系统生产力及温室气体排放的自然环境因子和人为因子,给出了它们之间的定性、定量关系,为科学地管理中国北部草地,充分发挥其生态和经济效益功能提供了有效信息。

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随着青藏高原气候变暖进程及放牧压力与开垦面积的逐年加大,非常有必要评价青藏高原高寒草甸生态系统温室气体通量对气候变暖、放牧(包括粪尿斑)和开垦的响应和反馈。与此同时,我们进行了粪尿斑及开垦对土壤理化性质影响研究。本研究对于青藏高原高寒草甸C、N循环关键过程对全球变化响应的认识具有重要意义。 本文通过2年(2006-2007)增温(白天+1.2℃,晚上+1.7℃)与放牧耦合试验,在生长季观测了增温与放牧对高寒草甸生态系统温室气体通量的影响。研究初步表明,增温试验显著增加10 cm土壤温度1℃左右;在放牧频度相对较高的2007年,放牧也显著增加了土壤温度1℃左右。总体上,增温对土壤湿度的影响不显著。 增温可以促进土壤对CH4的吸收,而放牧对CH4通量影响不大或起到一定程度抑制作用。在较低放牧频度的2006年,放牧显著降低了植物-土壤系统CO2总释放量,增温促进了CO2的释放。而在放牧频度相对较高的2007年生长季,没有发现增温及放牧对土壤-植被系统CO2释放显著的影响。2006年放牧后,增温促进了高寒草甸土壤N2O的释放;2007年,增温不放牧小区N2O总通量较对照增加了24.6%,同时放牧处理也促进了N2O释放。基于土壤温度和土壤湿度的线性回归模型可以解释55%-89%的CH4通量变异,而土壤湿度较土壤温度对CH4通量影响更大。土壤温度是影响CO2和N2O通量的主要因子,通过拟合的指数型曲线,土壤温度可以分别解释43%-63%CO2通量变异与65%-81%N2O通量变异。 在2005年与2006年夏季放牧期间,对牦牛粪尿斑处理对高寒草甸CH4、CO2和N2O通量进行了观测。牛粪小区2年观测期内CH4平均通量为687 μg m-2 h-1,而尿斑和对照土壤吸收CH4(平均通量分别为-34 μg m-2 h-1和-39 μg m-2 h-1)。牛粪小区CO2在2005年和2006年观测期内累积释放量较对照分别增加了35.8%和49.7%,而牛尿小区与对照累积释放量差异不显著。牛尿与牛粪小区N2O累积释放量显著高于对照,在2005年牛尿与牛粪小区N2O累积释放量较对照分别增加了3.7和3.5倍,而在2006年分别增加了2.1和1.8倍。因此,在估算放牧高寒草甸生态系统N2O释放时,来自牛粪斑释放量是不能被忽略的。但在中等放牧强度下(1.45头ha-1 y-1),有粪尿斑覆盖的高寒草甸在观测期内全球变暖潜势较相同面积没有粪尿斑覆盖的草甸仅增加了1%。土壤水分孔隙度(WFPS)可以解释牛尿小区35%和对照小区36%CH4通量变异。土壤温度是控制CO2释放的主要因子之一,它可以解释所有处理40-75% CO2的变异。牛尿处理(34%)、牛粪处理(48%)及对照(56%)N2O时间变异则同时受土壤温度和WFPS的驱动。在观测期内,牛尿可以显著提高土壤的pH值。粪尿斑对土壤微生物量碳氮没有产生显著性影响,但在一定时段内能显著增加土壤无机氮含量。 通过在青藏高原高寒草甸开展的人工草地试验,初步探讨了不同土地利用方式(种植燕麦、开垦后闲置及自然恢复)对CO2、CH4和N2O通量,以及土壤无机氮和微生物量氮的影响。燕麦地、自然恢复草地及开垦闲置地与天然草地相比,吸收CH4的能力均表现为增强(CH4的吸收总量分别增加了31.9%、57.2%和71.0%)。由于燕麦地生物量低于天然草地与恢复草地,造成了燕麦地土壤-植被CO2释放量低于天然草地和恢复草地。而闲置地几乎没有植被覆盖,其CO2释放量显著低于天然草地。草地恢复8年后,CO2释放基本恢复到天然草地的水平。闲置地N2O总通量显著高于天然草地,较天然草地增加了60.5%。观测期内燕麦地与天然草地相比,N2O总通量增加了24.3%,但没有达到显著性水平。开垦及种植燕麦,增加了土壤硝态氮的含量,而自然恢复地、燕麦地、天然草地和闲置地在观测期内土壤铵态氮平均含量没有观察到显著性差异。燕麦地土壤微生物量氮平均含量最低(119.7 mg N kg-1),而自然恢复草地、天然草地和闲置地土壤微生物量氮差异不大。

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State and regional policies, such as low carbon fuel standards (LCFSs), increasingly mandate that transportation fuels be examined according to their greenhouse gas (GHG) emissions. We investigate whether such policies benefit from determining fuel carbon intensities (FCIs) locally to account for variations in fuel production and to stimulate improvements in FCI. In this study, we examine the FCI of transportation fuels on a lifecycle basis within a specific state, Minnesota, and compare the results to FCIs using national averages. Using data compiled from 18 refineries over an 11-year period, we find that ethanol production is highly variable, resulting in a 42% difference between carbon intensities. Historical data suggests that lower FCIs are possible through incremental improvements in refining efficiency and the use of biomass for processing heat. Stochastic modeling of the corn ethanol FCI shows that gains in certainty due to knowledge of specific refinery inputs are overwhelmed by uncertainty in parameters external to the refiner, including impacts of fertilization and land use change. The LCA results are incorporated into multiple policy scenarios to demonstrate the effect of policy configurations on the use of alternative fuels. These results provide a contrast between volumetric mandates and LCFSs. © 2011 Elsevier Ltd.

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Consumer goods manufacturers aiming to reduce the environmental impact associated with their products commonly pursue incremental change strategies, but more radical approaches may be required if we are to address the challenges of sustainable consumption. One strategy to realize step change reductions is to prepare a portfolio of innovations providing different levels of impact reduction in exchange for different levels of organizational resource commitment. In this research a tool is developed to support this strategy, starting with the assumption that through brainstorming or other eco-innovation approaches, a long-list of candidate innovations has been created. The tool assesses the potential greenhouse gas benefit of an innovative option against the difficulty of its implementation. A simple greenhouse gas benefit assessment method based on streamlined LCA was used to analyze impact reduction potential, and a novel measure of implementation difficulty was developed. The predictions of implementation difficulty were compared against expert opinion, and showed similar results indicating the measure can be used sensibly to predict implementation difficulty. The assessment of the environmental gain versus implementation difficulty is visualized in a matrix, showing the trade-offs of several options. The tool is deliberately simple with scalar measures of CO 2 emissions benefits and implementation difficulty so tool users must remain aware of other potential environmental burdens besides greenhouse gases (e.g. water, waste). In addition, although relative life cycle emissions benefits of an option may be low, the absolute impact of an option can be high and there may be other co-benefits, which could justify higher levels of implementation difficulty. Different types of consumer products (e.g. household, personal care, foods) have been evaluated using the tool. Initial trials of the tool within Unilever demonstrate that the tool facilitates rapid evaluation of low-carbon innovations. © 2011 Elsevier Ltd. All rights reserved.

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Concerns over climate change mean engineers need to understand the greenhouse gas emissions associated with infrastructure projects. Standard coefficients are increasingly used to calculate the embodied emissions of construction materials, but these are not generally appropriate to inherently variable earthworks. This paper describes a new tool that takes a bottom-up approach to calculating carbon dioxide emissions from earthworks operations. In the case of bulk earthworks this is predominantly from the fuel used by machinery moving materials already on site. Typical earthworks solutions are explored along with the impact of using manufactured materials such as lime.

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The green peach aphid, Myzus persicae, is a major pest of tobacco, Nicotiana tabacum, in Yunnan province, China, where its control still depends on the use of insecticides. In recent years, the local government and farmers have sought to improve the biological control of this tobacco pest. In this paper, we present methods for mass rearing Aphidius gifuensis, a dominant endoparasitoid of M. persicae on tobacco plants in this region. The tobacco cultivar K326 (N. tabacum) was used as the host plant and M. persicae as the host insect. In the greenhouse, we collected tobacco seedlings for about 35 days (i.e., until the six-true-leaf stage), transferred them to 7.5-cm diameter pots, and kept these plants in the greenhouse for another 18 days. These pots were then transferred to an insectary-greenhouse, where the tobacco seedlings were inoculated with five to seven wingless adult M. persicae per pot. After 3 days, the infested seedlings were moved to a second greenhouse to allow the aphid population to increase, and after an additional 4 +/- 1 days when 182 +/- 4.25 aphid adults and nymphs were produced per pot, they were inoculated with A. gifuensis. With this rearing system, we were able to produce 256 +/- 8.8 aphid mummies per pot, with an emergence rate of 95.6 +/- 2.45%; 69% were females. The daily cost of parasite production (recurring costs only) was US$ 0.06 per 1000 aphid mummies. With this technique, we released 109 800 parasitoids in 1998, 196 000 in 1999, 780 000 in 2000, and 5 600 000 in 2001 during a 2-month period each year This production method is discussed with respect to countrywide usage in biological control and integrated control of M. persicae.

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Identifying strategies for reducing greenhouse gas emissions from steel production requires a comprehensive model of the sector but previous work has either failed to consider the whole supply chain or considered only a subset of possible abatement options. In this work, a global mass flow analysis is combined with process emissions intensities to allow forecasts of future steel sector emissions under all abatement options. Scenario analysis shows that global capacity for primary steel production is already near to a peak and that if sectoral emissions are to be reduced by 50% by 2050, the last required blast furnace will be built by 2020. Emissions reduction targets cannot be met by energy and emissions efficiency alone, but deploying material efficiency provides sufficient extra abatement potential.

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Nowadays nuclear is the only greenhouse-free source that can appreciably respond to the increasing worldwide energy demand. The use of Thorium in the nuclear energy production may offer some advantages to accomplish this task. Extensive R&D on the thorium fuel cycle has been conducted in many countries around the world. Starting from the current nuclear waste policy, the EU-PUMA project focuses on the potential benefits of using the HTR core as a Pu/MA transmuter. In this paper the following aspects have been analysed: (1) the state-of-the-art of the studies on the use of Th in different reactors, (2) the use of Th in HTRs, with a particular emphasis on Th-Pu fuel cycles, (3) an original assessment of Th-Pu fuel cycles in HTR. Some aspects related to Thorium exploitation were outlined, particularly its suitability for working in pebble-bed HTR in a Th-Pu fuel cycle. The influence of the Th/Pu weight fraction at BOC in a typical HTR pebble was analysed as far as the reactivity trend versus burn-up, the energy produced per Pu mass, and the Pu isotopic composition at EOC are concerned. Although deeper investigations need to be performed in order to draw final conclusions, it is possible to state that some optimized Th percentage in the initial Pu/Th fuel could be suggested on the basis of the aim we are trying to reach. Copyright © 2009 Guido Mazzini et al.

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Design, FEM modelling and characterization of a novel dual mode thermal conductivity and infrared absorption sensor using SOI CMOS technology is reported. The dual mode sensing capability is based on the temperature sensitivity and wideband infrared radiation emission of the resistive heating element. The sensor was fabricated at a commercial foundry using a 1 μm process and measures only 1×1 mm2. Infrared detectors usually use thermopiles in addition to a separate IR source. A single highly responsive dual mode source and sensing element targeting not only low molecular mass gases but also greenhouse gases, while consuming 40 mW power at 700°C in synthetic air, thus makes this sensor particularly viable for battery powered handheld devices. © 2013 IEEE.

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The global trend towards urbanization means that over half of the world's population now lives in cities. Cities use energy in different proportions to national energy use averages, typically corresponding to whether a country is industrialized or developing. Cities in industrialized countries tend to use less energy per capita than the national average while cities in developing countries use more. This paper looks at existing World Bank data in respect to urban energy consumption, the emissions inventory work done by New York City, and discusses how this data highlights the need for a focus on: energy policy for buildings in industrialized cities; masterplanning and new construction standards in developing cities; and how urban energy policy can become more effective in reducing urban greenhouse gas emissions.

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Land is not only a critical component of the earth's life support system, but also a precious resource and an important factor of production in economic systems. However, historical industrial operations have resulted in large areas of contaminated land that are only slowly being remediated. In recent years, sustainability has drawn increasing attention in the environmental remediation field. In Europe, there has been a movement towards sustainable land management; and in the US, there is an urge for green remediation. Based on a questionnaire survey and a review of existing theories and empirical evidence, this paper suggests the expanding emphasis on sustainable remediation is driven by three general factors: (1) increased recognition of secondary environmental impacts (e.g., life-cycle greenhouse gas emissions, air pollution, energy consumption, and waste production) from remediation operations, (2) stakeholders' demand for economically sustainable brownfield remediation and "green" practices, and (3) institutional pressures (e.g., social norm and public policy) that promote sustainable practices (e.g., renewable energy, green building, and waste recycling). This paper further argues that the rise of the "sustainable remediation" concept represents a critical intervention point from where the remediation field will be reshaped and new norms and standards will be established for practitioners to follow in future years. This paper presents a holistic view of sustainability considerations in remediation, and an integrated framework for sustainability assessment and decision making. The paper concludes that "sustainability" is becoming a new imperative in the environmental remediation field, with important implications for regulators, liability owners, consultants, contractors, and technology vendors. © 2014 Elsevier Ltd.

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Soil cyanobacterial crusts occur throughout the world, especially in the semiarid and arid regions. It always encounters sand burial, which is an important feature of mobile sand dunes. A greenhouse 41 study was conducted to determine the effects of sand burial on biomass, chlorophyll fluorescence and extracellular polysaccharides of man-made cyanobacterial crusts in six periods of time (0, 5, 10, 15, 20 and 30 d after burying) and at five depths (0, 0.2, 0.5, 1 and 2cm). The results indicated that with the increase of the burial time and burial depth extracellular polysaccharides content and Fv/Fm decreased correspondingly and there were no significant differences between 20 and 30 burial days under different burial depths. The degradation of chlorophyll a content appeared only at 20 and 30 burial days and there was also no significant difference between them under different burial depths. It was also observed a simultaneous decrease of the values of the Fv/Fm and the content of extracellular polysaccharides happened in the crusted cyanobacterium Microcoleus vaginatus Gom. It may suggest that there exists a relationship between extracellular polysaccharides and recovery of the activity of photosystem II (PS II) after rehydration.

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With the concerns over climate change and the escalation in worldwide population, sustainable development attracts more and more attention of academia, policy makers, and businesses in countries. Sustainable manufacturing is an inextricable measure to achieve sustainable development since manufacturing is one of the main energy consumers and greenhouse gas contributors. In the previous researches on production planning of manufacturing systems, environmental factor was rarely considered. This paper investigates the production planning problem under the performance measures of economy and environment with respect to seru production systems, a new manufacturing system praised as Double E (ecology and economy) in Japanese manufacturing industries. We propose a mathematical model with two objectives minimizing carbon dioxide emission and makespan for processing all product types by a seru production system. To solve this mathematical model, we develop an algorithm based on the non-dominated sorting genetic algorithm II. The computation results and analysis of three numeral examples confirm the effectiveness of our proposed algorithm. © 2014 Elsevier Ltd. All rights reserved.

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Up to now, there have been few studies in the annual fluxes of greenhouse gases in lakes of subtropical regions. The fluxes of methane (CH4) and carbon dioxide (CO2) across air-water interface were measured in a shallow, hypereutrophic, subtropical Lake Donghu (China) over a year cycle, using a static chamber technique. During the year, Lake Donghu emitted CH4 and CO2; the average flux of CH4 and CO2 was 23.3 +/- 18.6 and 332.3 +/- 160.1 mg m(-2) d(-1), respectively. The fluxes of CH4 and CO2 showed strong seasonal dynamics: CH4 emission rate was highest in summer, remaining low in other seasons, whereas CO2 was adsorbed from the atmosphere in spring and summer, but exhibited a large emission in winter. Annual carbon (C) budget across air-water interface in Lake Donghu was estimated to be 7.52 +/- 4.07 x 10(8) g. CH4 emission was correlated positively with net primary production (NPP) and temperature, whereas CO2 flux correlated negatively with NPP and temperature; however, there were no significant relationships between the fluxes of CH4 and CO2 and dissolved organic carbon, a significant difference from boreal lakes, indicating that phytoplankton rather than allochthonous matter regulated C dynamics across air-water interface of subtropical lake enriched nutrient content. (c) 2005 Elsevier Ltd. All rights reserved.