IntroductionOwing to long-time running, more facilities including stations, pipelines, vessels have become corrosive and aged ,some process has grown old, it has exert more burden for the maintenance and repair.Simult...IntroductionOwing to long-time running, more facilities including stations, pipelines, vessels have become corrosive and aged ,some process has grown old, it has exert more burden for the maintenance and repair.Simultaneously, the fluid production rate, oil production rate and water injection rate has changed greatly so that the inflicts and problems from the established surface systems will become more obvious. Energy cost of production and running has increasing continuously. Capacity has been unbalance in systems and areas.展开更多
This paper proposes a method for determining the gas recovery of water-drive gas reservoirs. First, the water influx coefficient B in the theoretical formula Pr =(1-Rg)/(1-RgB) is used to determine the influence o...This paper proposes a method for determining the gas recovery of water-drive gas reservoirs. First, the water influx coefficient B in the theoretical formula Pr =(1-Rg)/(1-RgB) is used to determine the influence of the aquifer behavior. According to the theoretical formula, the relationship between the norrnalized pressure Pr and the degree of the reserve recovery Rg can be obtained with different values of B, which can be used to determine the activity level of the aquifer behavior. Second, according to Pra = (1-Rga)/(1-aEva) (where a = 1-Sgr/Sgi ), the relationship between the normalized abandonment pressure Pra and the ultimate gas recovery Rga can be obtained, as the Agarwal end-point line. The intersection of the above two lines represents the value of the estimated ultimate gas recovery and the normalized abandonment pressure pra. Finally, an evaluation table and a set of demarcation charts are established, with different values of Sgr/Sgi and Eva as well as the water influx coefficient B, which can be used to determine the gas recovery of water-drive gas reservoirs with different activity levels of the aquifer behavior.展开更多
为明晰水肥耦合对炭基质栽培番茄产量品质的提升效应,将生物炭混掺到由酒糟、秸秆等农业废弃物拌制成的基质模块中,设置2个灌溉量(I_(1):100%ET_(c),I_(2):80%ET_(c),ET_(c)为作物蒸发蒸腾量),2个施肥量(N-P_(2)O_(5)-K_(2)O)(F_(1):240...为明晰水肥耦合对炭基质栽培番茄产量品质的提升效应,将生物炭混掺到由酒糟、秸秆等农业废弃物拌制成的基质模块中,设置2个灌溉量(I_(1):100%ET_(c),I_(2):80%ET_(c),ET_(c)为作物蒸发蒸腾量),2个施肥量(N-P_(2)O_(5)-K_(2)O)(F_(1):240-180-200 kg/hm^(2),F2:180-135-150 kg/hm^(2))及基质中4个生物炭添加量(B0:0,B1:1%,B3:3%,B5:5%),共16组处理,研究水肥耦合对炭基质栽培番茄叶面积指数(leaf area index,LAI)、叶绿素相对含量(soil and plant analyzer development,SPAD)、植株养分(全氮、全钾、有机碳)吸收量、化学计量特征(氮钾比、碳氮比)、产量及品质(可溶性固形物含量、维生素C含量、硝酸盐含量、可溶性糖含量、可滴定酸含量、糖酸比)的影响,揭示炭基质栽培番茄产量及品质的关键驱动因子,构建以番茄产量、品质及其关键驱动因子为目标的熵权-TOPSIS多目标综合评价模型,提出水肥与炭基质耦合的最优方案。结果表明:炭基质对番茄LAI、SPAD值、养分吸收量、产量及品质影响显著(P<0.05);在相同灌溉和施肥条件下,炭基质增加了番茄整株钾吸收量、整株碳同化量、产量及维生素C含量,降低了硝酸盐含量;基于结构方程模型,番茄整株碳同化量是产量的关键驱动因子,其增加有助于提高番茄产量,氮钾比是品质的关键驱动因子,其降低有助于改善番茄品质;采用熵权-TOPSIS多目标综合评价模型,筛选出I_(1)F_(2)B_(3)处理是水肥与炭基质耦合的最优方案。研究可为农业废弃物高效利用及高品质果蔬的水肥炭有效管理提供理论依据。展开更多
文摘IntroductionOwing to long-time running, more facilities including stations, pipelines, vessels have become corrosive and aged ,some process has grown old, it has exert more burden for the maintenance and repair.Simultaneously, the fluid production rate, oil production rate and water injection rate has changed greatly so that the inflicts and problems from the established surface systems will become more obvious. Energy cost of production and running has increasing continuously. Capacity has been unbalance in systems and areas.
基金Project supported by the National Natural Science Foundation of China(Grant Nos.41274114,51274169)the Natio-nal Science and Technology Major Project of China(Grant No.2011ZX05045)
文摘This paper proposes a method for determining the gas recovery of water-drive gas reservoirs. First, the water influx coefficient B in the theoretical formula Pr =(1-Rg)/(1-RgB) is used to determine the influence of the aquifer behavior. According to the theoretical formula, the relationship between the norrnalized pressure Pr and the degree of the reserve recovery Rg can be obtained with different values of B, which can be used to determine the activity level of the aquifer behavior. Second, according to Pra = (1-Rga)/(1-aEva) (where a = 1-Sgr/Sgi ), the relationship between the normalized abandonment pressure Pra and the ultimate gas recovery Rga can be obtained, as the Agarwal end-point line. The intersection of the above two lines represents the value of the estimated ultimate gas recovery and the normalized abandonment pressure pra. Finally, an evaluation table and a set of demarcation charts are established, with different values of Sgr/Sgi and Eva as well as the water influx coefficient B, which can be used to determine the gas recovery of water-drive gas reservoirs with different activity levels of the aquifer behavior.
文摘为明晰水肥耦合对炭基质栽培番茄产量品质的提升效应,将生物炭混掺到由酒糟、秸秆等农业废弃物拌制成的基质模块中,设置2个灌溉量(I_(1):100%ET_(c),I_(2):80%ET_(c),ET_(c)为作物蒸发蒸腾量),2个施肥量(N-P_(2)O_(5)-K_(2)O)(F_(1):240-180-200 kg/hm^(2),F2:180-135-150 kg/hm^(2))及基质中4个生物炭添加量(B0:0,B1:1%,B3:3%,B5:5%),共16组处理,研究水肥耦合对炭基质栽培番茄叶面积指数(leaf area index,LAI)、叶绿素相对含量(soil and plant analyzer development,SPAD)、植株养分(全氮、全钾、有机碳)吸收量、化学计量特征(氮钾比、碳氮比)、产量及品质(可溶性固形物含量、维生素C含量、硝酸盐含量、可溶性糖含量、可滴定酸含量、糖酸比)的影响,揭示炭基质栽培番茄产量及品质的关键驱动因子,构建以番茄产量、品质及其关键驱动因子为目标的熵权-TOPSIS多目标综合评价模型,提出水肥与炭基质耦合的最优方案。结果表明:炭基质对番茄LAI、SPAD值、养分吸收量、产量及品质影响显著(P<0.05);在相同灌溉和施肥条件下,炭基质增加了番茄整株钾吸收量、整株碳同化量、产量及维生素C含量,降低了硝酸盐含量;基于结构方程模型,番茄整株碳同化量是产量的关键驱动因子,其增加有助于提高番茄产量,氮钾比是品质的关键驱动因子,其降低有助于改善番茄品质;采用熵权-TOPSIS多目标综合评价模型,筛选出I_(1)F_(2)B_(3)处理是水肥与炭基质耦合的最优方案。研究可为农业废弃物高效利用及高品质果蔬的水肥炭有效管理提供理论依据。