首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 375 毫秒
1.
European biomass resource potential and costs   总被引:1,自引:0,他引:1  
The objective of this study is to assess the European (EU27+ and Ukraine) cost and supply potential for biomass resources. Three methodological steps can be distinguished (partly based on studies explained elsewhere in this volume) (i) an evaluation of the available ‘surplus’ land, (ii) a modeled productivity and (iii) an economic assessment for 13 typical bioenergy crops. Results indicate that the total available land for bioenergy crop production – following a ‘food first’ paradigm – could amount to 900 000 km2 by 2030. Three scenarios were constructed that take into account different development directions and rates of change, mainly for the agricultural productivity of food production. Feedstock supply of dedicated bioenergy crop estimates varies between 1.7 and 12.8 EJ y?1. In addition, agricultural residues and forestry residues can potentially add to this 3.1–3.9 EJ y?1 and 1.4–5.4 EJ y?1 respectively. First generation feedstock supply is available at production costs of 5–15  GJ?1 compared to 1.5–4.5  GJ?1 for second generation feedstocks. Costs for agricultural residues are 1–7  GJ?1 and forestry residues 2–4  GJ?1. Large variation exists in biomass production potential and costs between European regions, 280 (NUTS2) regions specified. Regions that stand out with respect to high potential and low costs are large parts of Poland, the Baltic States, Romania, Bulgaria and Ukraine. In Western Europe, France, Spain and Italy are moderately attractive following the low cost high potential criterion.  相似文献   

2.
We explored the production cost of energy crops at abandoned agricultural land and at rest land at a regional and a global level to the year 2050 using four different land-use scenarios. The estimations were based on grid cell data on the productivity of short-rotation crops on the available land over time and assumptions regarding the capital and the labour input required to reach these productivity levels. It was concluded that large amounts of grown biomass at abandoned agricultural land and rest land, 130–270 EJ yr?1 (about 40–70% of the present energy consumption) may be produced at costs below $2 GJ?1 by 2050 (present lower limit of cost of coal). Interesting regions because of their low production cost and significant potentials are the Former USSR, Oceania, Eastern and Western Africa and East Asia. Such low costs presume significant land productivity improvements over time and cost reductions due to learning and capital-labour substitution. An assessment of biomass fuel cost, using the primary biomass energy costs, showed that the future costs of biomass liquid fuels may be in the same order of the present diesel production costs, although this may change in the long term. Biomass-derived electricity costs are at present slightly higher than electricity baseload costs and may directly compete with estimated future production costs of fossil fuel electricity with CO2 sequestration. The present world electricity consumption of around 20 PWh yr?1 may be generated in 2050 at costs below $45 MWh?1 in A1 and B1 and below $55 MWh?1 in A2 and B2. At costs of $60 MWh?1, about 18 (A2) to 53 (A1) PWh yr?1 can be produced.  相似文献   

3.
This study was designed to consider all nitrogen fertilizer-related effects on crop production and emission of greenhouse gases on loamy sandy soils in Germany over a period of nine years (1999–2007). In order to set up a CO2 balance for the production of energy crops, different nitrogen pathways were investigated, such as direct N2O emissions from the soil and indirect emissions related to NO3 leaching and fertilizer production. Fluxes of N2O were measured in an experimental field using closed chambers. Poplar (Populus maximowiczii × P. nigra) and rye (Secale cereale L.) as one perennial and one annual crop were fertilized at rates of 0 kg N ha?1 yr?1, 75 kg N ha?1 yr?1 and 150 kg N ha?1 yr?1. The mean N2O emissions from the soil ranged between 0.5 kg N ha?1 yr?1 and 2.5 kg N ha?1 yr?1 depending on fertilization rate, crop variety and year. The CO2 fixed in the biomass of energy crops is reduced by up to 16% if direct N2O emissions from soil and indirect N2O emissions from NO3 leaching and fertilizer production are included. Taking into account the main greenhouse gas emissions, which derive from the production and the use of N fertilizer, the growth of poplar and rye may replace the global warming potential of fossil fuels by up to 17.7 t CO2 ha?1 yr?1 and 12.1 t CO2 ha?1 yr?1, respectively.  相似文献   

4.
Miscanthus x giganteus (miscanthus) and Arundo donax L. (giant reed) are two perennial crops which have been received particular attention during the last decade as bioenergy crops. The main aim of the present study was to compare the above-ground biomass production and the energy balance of these perennial rhizomatous grasses in a long-term field experiment. The crops were cultivated from 1992 to 2003 in the temperate climate of Central Italy with 20,000 plants ha?1, 100–100–100 kg N, P2O5, K2O per hectare, and without irrigation supply. For each year of trial, biomass was harvested in autumn to estimate biometric characteristics and productive parameters. Besides, energy analysis of biomass production was carried out determining energy output, energy input, energy efficiency (output/input) and net energy yield (output–input). Results showed high above-ground biomass yields over a period of 10 years for both species, with better productive performances in giant reed than in miscanthus (37.7 t DM ha?1 year?1 vs 28.7 t DM ha?1 year?1 averaged from 2 to 12 years of growth). Such high yields resulted positively correlated to number of stalks (miscanthus), plant height and stalk diameter (giant reed). Moreover, these perennial species are characterised by a favourable energy balance with a net energy yield of 467 and 637 GJ ha?1 (1–12 year mean) for miscanthus and giant reed respectively.With such characteristics, both grasses could be proposed as biomass energy crops in Southern Europe with a significant and environmentally compatible contribution to energy needs.  相似文献   

5.
Switchgrass (Panicum virgatum) serves as a model dedicated energy crop in the U.S.A. Miscanthus (Miscanthus x giganteus) has served a similar role in Europe. This study was conducted to determine the most economical species, harvest frequency, and carbon tax required for either of the two candidate feedstocks to be an economically viable alternative for cofiring with coal for electricity generation. Biomass yield and energy content data were obtained from a field experiment conducted near Stillwater, Oklahoma, U.S.A., in which both grasses were established in 2002. Plots were split to enable two harvest treatments (once and twice yr?1). The switchgrass variety ‘Alamo’, with a single annual post-senescence harvest, produced more biomass (15.87 Mg ha?1 yr?1) than miscanthus (12.39 Mg ha?1 yr?1) and more energy (249.6 million kJ ha?1 yr?1 versus 199.7 million kJ ha?1 yr?1 for miscanthus). For the average yields obtained, the estimated cost to produce and deliver biomass an average distance of 50 km was $43.9 Mg?1 for switchgrass and $51.7 Mg?1 for miscanthus. Given a delivered coal price of $39.76 Mg?1 and average energy content, a carbon tax of $7 Mg?1 CO2 would be required for switchgrass to be economically competitive. For the location and the environmental conditions that prevailed during the experiment, switchgrass with one harvest per year produced greater yields at a lower cost than miscanthus. In the absence of government intervention such as requiring biomass use or instituting a carbon tax, biomass is not an economically competitive feedstock for electricity generation in the region studied.  相似文献   

6.
《Biomass & bioenergy》2007,31(8):543-555
The energetic and environmental performance of production and distribution of the Brassica carinata biomass crop in Soria (Spain) is analysed using life cycle assessment (LCA) methodology in order to demonstrate the major potential that the crop has in southern Europe as a lignocellulosic fuel for use as a renewable energy source.The Life Cycle Impact Assessment (LCIA) including midpoint impact analysis that was performed shows that the use of fertilizers is the action with the highest impact in six of the 10 environmental categories considered, representing between 51% and 68% of the impact in these categories.The second most important impact is produced when the diesel is used in tractors and transport vehicles which represents between 48% and 77%. The contribution of the B. carinata cropping system to the global warming category is 12.7 g CO2 eq. MJ−1 biomass produced. Assuming a preliminary estimation of the B. carinata capacity of translocated CO2 (631 kg CO2 ha−1) from below-ground biomass into the soil, the emissions are reduced by up to 5.2 g CO2 eq. MJ−1.The production and transport are as far as a thermoelectric plant of the B. carinata biomass used as a solid fuel consumes 0.12 MJ of primary energy per 1 MJ of biomass energy stored. In comparison with other fossil fuels such as natural gas, it reduces primary energy consumption by 33.2% and greenhouse gas emission from 33.1% to 71.2% depending on whether the capacity of translocated CO2 is considered or not.The results of the analysis support the assertion that B. carinata crops are viable from an energy balance and environmental perspective for producing lignocellulosic solid fuel destined for the production of energy in southern Europe. Furthermore, the performance of the crop could be improved, thus increasing the energy and environmental benefits.  相似文献   

7.
The poplar bioenergy system has been analysed applying life cycle assessment (LCA) to compare its environmental performance to: Ethiopian mustard bioenergy system and natural gas. The life cycle impact assessment (LCIA) shows that the use of fertilizers is the highest impact in four of the 10 environmental categories, representing between 39% and 67% of the impact in them. The diesel used in transport vehicles and agricultural tractors also has a significant impact in another five of the 10 analysed categories 40–85%. The poplar bioenergy system contributes to global warming with 1.90–1.98 g CO2 eq MJ?1 biomass produced. The production and transport as far as the thermoelectric plant of the poplar biomass consumes 0.02 MJ of primary energy per 1 MJ of biomass stored. In comparison with Ethiopian mustard and natural gas, it reduces primary energy consumption by 83% and 89% and the greenhouse gas emission by 84% and 89%, respectively. The results of the analysis support that the poplar bioenergy system is viable from an energy balance and environmental perspective for producing energy in southern Europe, as long as it is cultivated in areas where water is available. This latter point and the better environmental performance of both crops in comparison to natural gas allows us to affirm that the combination of several crops adapted to the local agro-climatic conditions of the territory will be the most suitable strategy in Mediterranean areas that wish to reach the global energy production targets in terms of biomass established by the European Union (EU).  相似文献   

8.
The biofixation of carbon dioxide (CO2) by microalgae has been proven to be an efficient and economical method, mainly due to the photosynthetic ability of these microorganisms to use this gas as a source of nutrients for their development. The aim of this work was to study the growth of Spirulina LEB18 and Chlorella kessleri microalgae, exposed to controlled and non-controlled conditions, with the injection of different concentrations of CO2. The cultures was carried out in 6 L open raceway ponds, under controlled conditions at 30 °C and 39 μE m?2 s?1 and under non-controlled conditions, protected by a tunnel of transparent film. The experiments were subjected to CO2 injections at concentrations of 0.038, 6, 12 and 18% (v/v). The highest concentration of biomass (4.95 g L?1) and maximum daily fixation (0.21 g g?1 d?1) were obtained for Spirulina LEB18 in culture that was prepared in non-controlled conditions with an injection of 6% (v/v) of CO2. C. kessleri had maximum (p < 0.0008) specific growth rate (0.84 d?1) when grown with 18% (v/v) of CO2 in non-controlled conditions of cultivation.  相似文献   

9.
Food waste is approximately 20–30% of the household garbage in Taiwan. There are several ways to use recycled food waste, swine feeding and composting are the two main ways in Taiwan. The objective of this study was to evaluate the potentials of food wastes for power generation and energy conservation in Taiwan. The assessment was conducted by using the related statistics of Taiwan. The results showed that the total amount of food wastes recycled increased from 167,304 to 570,176 Mg y?1 (+240%) during the period from 2003 to 2006, and increased from 139,614 to 452,550 Mg y?1 (+224%) and from 22,290 to 112,666 Mg y?1 (+405%) for swine feeding and composting during the same period, respectively. Potential of food wastes for power generation was 68.0 GWh y?1, and that excluding swine feeding and composting were 14.0 and 54.5 GWh y?1 in Taiwan in 2006, respectively. On the other hand, energy conservation potential of food wastes for compost production was 122 MWh y?1, comparing with energy consumption of chemical fertilizer (ammonium sulfate and calcium superphosphate) production in Taiwan in 2006. The results also suggested that food wastes recycled can not only reduce the amount of the garbage, but also showed the potentials for power generation and energy conservation.  相似文献   

10.
《Biomass & bioenergy》2006,30(4):296-303
Mitigating global climate change via CO2 emission control and taxation is likely to enhance the economic potential of bioenergy production and utilization. This study investigated the cost competitiveness of woody biomass for electricity production in the US under alternative CO2 emission reductions and taxes. We first simulated changes in the price of coal for electricity production due to CO2 emission reductions and taxation using a computable general equilibrium model. Then, the costs of electricity generation fueled by energy crops (hybrid poplar), logging residues, and coal were estimated using the capital budgeting method. Our results indicate that logging residues would be competitive with coal if emissions were taxed at about US$25 Mg−1 CO2, while an emission tax US$100 Mg−1 CO2 or higher would be needed for hybrid poplar plantations at a yield of 11.21 dry Mg ha−1 yr−1 (5 dry tons ac−1 yr−1) to compete with coal in electricity production. Reaching the CO2 emission targets committed under the Kyoto Protocol would only slightly increase the price of fossil fuels, generating little impact on the competitiveness of woody biomass. However, the price of coal used for electricity production would significantly increase if global CO2 emissions were curtailed by 20% or more. Logging residues would become a competitive fuel source for electricity production if current global CO2 emissions were cut by 20–30%. Hybrid poplar plantations would not be able to compete with coal until emissions were reduced by 40% or more.  相似文献   

11.
《Journal of power sources》2006,162(2):1421-1430
This paper discusses miniaturized Pb/HBF4/PbO2 reserve batteries (MRB) for military applications as in-flight power sources for small-caliber electronic fuzes, where the setback acceleration and high-spin force in firing environments are used to activate the MRB. The MRB is composed of a series configured 23 bipolar electrodes, an isolated glass ampoule filled with an electrolyte and an internal cutter for breaking the glass ampoule. The MRB is designed to furnish high-voltage electrical energy with a fast activation time in gunfire environments and must have a 20-year shelf life. The electrolyte volume is determined from the simulation results of a CFD program (FLUENT) for reduction in design time and cost. Two kinds of MRBs have been designed and fabricated: MRB-S with one narrow electrolyte-filling microchannel and MRB-D with two. In the experimental study, spin tests under 10,000 × g's and ∼20,000 rpm conditions and a fire test under 43,000 × g's and 57,000 rpm conditions have been made. The fabricated MRB with a diameter of 16 mm and a height of 13 mm has achieved a maximum voltage of 34.6 ± 0.4 V, an activation time of 8.6 ± 0.6 ms and a maximum capacity of 37.4 ± 0.4 W s at an optimized electrolyte volume of 180 mm3. The test results have verified that the activation time of the MRB at a low temperature of −32 °C can be improved by decreasing the flow resistance of the electrolyte in spite of the decreased ion mobility.  相似文献   

12.
As the largest agricultural country, China has abundant biomass resources, but the distribution is scattered and difficult to collect. It is essential to estimate the biomass resource and its potential for bioenergy utilization in China. In this study, the amount of main biomass resources for possible energy use and their energy utilization potential in China are analyzed based on statistical data. The results showed that the biomass resource for possible energy use amounted to 8.87 × 108 tce in 2007 of which the crops straw is 1.42 × 108 tce, the forest biomass is 2.85 × 108 tce, the poultry and livestock manure is 4.40 × 107 tce, the municipal solid waste is 1.35 × 106 tce, and the organic waste water is 6.46 × 106 tce. Through the information by thematic map, it is indicated that, except arctic-alpine areas and deserts, the biomass resource for possible energy use was presented a relatively average distribution in China, but large gap was existed in different regions in the concentration of biomass resources, with the characteristics of East dense and West sparse. It is indicated that the energy transformation efficiency of biomass compressing and shaping, biomass anaerobic fermentation and biomass gasification for heating have higher conversion efficiency. If all of the biomass resources for possible energy use are utilized by these three forms respectively, 7.66 × 1012 t of biomass briquettes fuel, 1.98 × 1012 m3 of low calorific value gas and 3.84 × 1011 m3 of biogas could be produced, 3.65 × 108 t to 4.90 × 108 t of coal consumption could be substituted, and 6.12 × 108 t to 7.53 × 108 t of CO2 emissions could be reduced. With the enormous energy utilization potential of biomass resources and the prominent benefit of energy saving and emission reduction, it proves an effective way to adjust the energy consumption structure, to alleviate the energy crisis, to ensure the national energy security and to mitigate the global warming trend.  相似文献   

13.
The study attempts to quantify the root biomass and density, nodulation, crop biomass and grain yield of soybean, to analyze crop growth and energy (renewable and non-renewable) inputs in relation to fertilizer-NPK and organic manure. Observations were recorded from soybean grown with no fertilizer, NPK and NPK + FYM (farmyard manure). The root biomass (BMroot) increased significantly with NPK + FYM compared to NPK and control. The trend of BMroot was best fitted with a third order polynomial. Root length density was higher in NPK + FYM. Biomass of stem, petiole and leaf were significantly greater in NPK + FYM than other treatments, relative contribution to total biomass at physiological maturity were stem 29%, petiole 9%, leaf 17% and pod 46%; quadratic regression models best represented the stem, petiole and leaf biomass data. A maximum LAI of 4.88, total biomass of 633 g m?2 at maturity, CGR of 18.4 g m?2 d?1 were recorded in NPK + FYM. Grain yields increased by 72.5 and 98.5%, and stover yields by 56.0 and 94.8% in NPK and NPK + FYM, respectively over control. Though the total energy input in NPK + FYM was greater than those in NPK and control, the share of renewable energy was much higher with greater net energy output and non-renewable energy productivity in NPK + FYM than NPK. The use efficiency of non-renewable energy was also higher in NPF + FYM. Thus, a combination of NPK-fertilizer and organic manure (FYM) could be the viable nutrient management option for soybean production.  相似文献   

14.
In CdS/CdTe solar cells it is necessary to determine the efficiency limitations related with the intermixing at the interface between the CdS window layer and CdTe absorber layer. So understanding the properties of the solid solution (CdSxTe1?x on the CdTe side which is CdTe rich and CdS1?yTey on the CdS side which is CdS rich) that is always formed in this region is essential. We produced thin films of CdS1?yTey solid solution-which is CdS rich – by first producing CdS:In thin films on glass substrates by the spray pyrolysis technique and then annealing the films in nitrogen atmosphere at 400 °C in the presence of Te vapor. We are the first who produce this solid solution by this simple and low cost method. The composition and morphology of the films were determined by energy dispersive X-ray detection (EDAX) measurements and scanning electron microscopy (SEM) observations respectively. Eight values of y in the range 0 ? y ? 0.2845 were obtained. The transmittance was measured and used to investigate the optical bandgap energy by using the second derivative of the absorbance. It is found that the films show a single hexagonal phase for y ? 0.0852 and then a mixed (hexagonal and cubic) phase for 0.0997 ? y ? 0.2845. Bandgap energies in the range 2.259 ? Eg ? 2.528 eV were obtained. Urbach tailing in the bandgap was also investigated.  相似文献   

15.
In order to improve qualitative traits of harvestable biomass and enhance its conversion into second generation biofuels (e.g. bioethanol), much attention should be paid to manage woody-energy plantations. This work represents an attempt to estimate chemical composition of biomass at stand level in poplar plantations. Based on the relationship between chemical traits of stem cross-sections and the corresponding distribution of diameter classes within the whole plantations, three different harvesting cycles were compared in terms of biomass yield and chemical composition. Under 2-year rotation, the stand showed the lower biomass annual yield (11.7 tDM ha?1 y?1) and the lower cellulose (42.5%) and the higher lignin (22%) proportion. On the contrary, under the 4-year cutting cycle, annual yield was not only higher (18.4 tDM ha?1 y?1), but the biomass also presented the highest cellulose (51.6%) and the lower lignin (19%) share. These results suggest that different management practices, including the cutting cycle, may affect not only yields but also qualitative traits of harvestable biomass of poplar short-rotation coppice.  相似文献   

16.
Rob Bailis 《Biomass & bioenergy》2009,33(11):1491-1502
Current carbon accounting methodologies do not accommodate activities that involve emissions reductions from both land-use change and energy production. This paper analyzes the climate change mitigation potential of charcoal production in East Africa by examining the impact of changing both land management and technology. Current production in a major charcoal producing region of Kenya where charcoal is made as a by-product of land clearance for commercial grain production is modeled as the “business-as-usual” scenario. Alternative production systems are proposed based on coppice management of native or exotic trees. Improved kilns are also considered. Changes in aboveground, belowground, and soil carbon are modeled and two distinct baseline assessments are analyzed: one is based on a fixed area of land and one is based on the quantity of non-renewable fuel that is displaced by project activities. The magnitude of carbon emissions reductions varies depending on land management as well as the choice of carbonization technology. However, these variations are smaller than the variations arising from the choice of baseline methodology. The fixed-land baseline yields annualized carbon emission reductions equivalent to 0.5–2.8 tons per year (t y?1) with no change in production technology and 0.7–3.5 t y?1 with improved kilns. In contrast, the baseline defined by the quantity of displaced non-renewable fuel is 2–6 times larger, yielding carbon emissions reductions of 1.4–12.9 t y?1 with no change in production technology and 3.2–20.4 t y?1 with improved kilns. The results demonstrate the choice of baseline, often a political rather than scientific decision, is critical in assessing carbon emissions reductions.  相似文献   

17.
《Biomass & bioenergy》2006,30(6):529-536
The primary goal of this research study was to evaluate the concept of combining bio-power production and nutrient removal by yearly biomass harvesting during ice-covered periods at Netley-Libau Marsh on Lake Winnipeg. Depending on the extent of vegetation within the marsh on any given year, removal rates range from 1.026 to 1.368 kt (3.1–4.2% of total Red River loading to Lake Winnipeg) of total nitrogen and 188–227 t (3.8–4.7% of total loading) of total phosphorus by harvesting 60% of the marsh area and 75% of the emergent parts of the vegetation. The effective management of water levels within the marsh was critical for vegetation growth and diversity. Suggestions on biomass harvesting and utilization methods were provided and a number of technologies were examined for the conversion of the harvested biomass to energy. The power produced in these systems ranged from 1.75 to 4.71 MW and, for some of the technologies, usable cogeneration heat was produced as a potential added value. CO2 emission credits of 55.07 kt y−1 can be expected with possible additional GHG credits for methane and NOx displacement.  相似文献   

18.
Sunn hemp (Crotolaria juncea), is a fast growing, high biomass yielding tropical legume that may be a possible southeastern bioenergy crop. When comparing this legume to a commonly grown summer legume – cowpeas (Vigna unguiculata), sunn hemp was superior in biomass yield (kg ha?1) and subsequent energy yield (GJ ha?1). In one year of the study after 12 weeks of growth, sunn hemp had 10.7 Mg ha?1 of biomass with an energy content of 19.0 Mg ha?1. This resulted in an energy yield of 204 GJ ha?1. The energy content was 6% greater than that of cowpeas. Eventhough sunn hemp had a greater amount of ash, plant mineral concentrations were lower in some cases of minerals (K, Ca, Mg, S) known to reduce thermochemical conversion process efficiency. Pyrolytic degradation of both legumes revealed that sunn hemp began to degrade at higher temperatures as well as release greater amounts of volatile matter at a faster rate.  相似文献   

19.
A detailed reliability assessment of bioenergy production systems based on poplar cultivation was made. The aim of this assessment was to demonstrate the Economic feasibility of implementing poplar biomass production for power generation in Spain. The assessment considers the following chain of energy generation: cultivation and harvesting, and transportation and electricity generation in biomass power plants (10, 25 and 50 MW). Twelve scenarios were analysed in accordance with the following: two harvesting methods (high density packed stems and chip production in the field), two crop distributions around the power plant and three power plant sizes. The results show that the cost of biomass delivered at power plant ranges from 18.65 to 23.96  Mg?1 dry basis. According to power plant size, net profits range from 3 to 22 million  per yr.Sensibility analyses applied to capital cost at the power plant and to biomass production in the field demonstrate that they do not affect the feasibility of these systems. Reliability is improved if benefits through selling CO2 emission credits are taken into account.This study clears up the Economic uncertainty of poplar biomass energy systems that already has been accepted as environmentally friendlier and as offering better energetic performance.  相似文献   

20.
Bio-hydrogen production by combined dark and light fermentation of ground wheat starch was investigated using fed-batch operation. Serum bottles containing heat-treated anaerobic sludge and a mixture of Rhodobacter sp. was fed with a medium containing 20 g dm?3 wheat powder (WP) at a constant flow rate. The system was operated at different initial dark/light biomass ratios (D/L). The optimum D/L ratio was 1/2 yielding the highest cumulative hydrogen (1548 cm3), yield (65.2 cm3 g?1 starch), and specific hydrogen production rate (5.18 cm3 g?1 h?1). Light fermentation alone yielded higher hydrogen production than dark fermentation due to fermentation of volatile fatty acids (VFAs) to H2 and CO2. The lowest hydrogen formation was obtained with D/L ratio of 1/1 due to accumulation of VFAs in the medium.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号