scholarly journals A continuous and high-efficiency process to separate coal bed methane with porous ZIF-8 slurry: Experimental study and mathematical modelling

2020 ◽  
Vol 5 (3) ◽  
pp. 347-363
Author(s):  
Wan Chen ◽  
Xiaonan Guo ◽  
Enbao Zou ◽  
Mengling Luo ◽  
Mengzijing Chen ◽  
...  
2012 ◽  
Vol 229-231 ◽  
pp. 2470-2473 ◽  
Author(s):  
Bing Liu ◽  
Yao Guang Qi ◽  
Chao Wang ◽  
Chun Cheng Xu ◽  
Fen Na Zhang ◽  
...  

Coal particles cleanout which is regarded as the key technology in the operation of coal bed methane (CBM) wells, play an important part in making steady production. In oil wells, Sand cleanout is operated by circulating a liquid or a multiphase fluid into the wellbore to bring sand particles to the surface. Although the sand cleanout operations have been applied successfully in most wells with high efficiency and negligible leakage, it would leak working fluid into coal bed formation, destroy the structure of coal bed and jam the formed channel of gas production. In this paper, a new continuous vacuum cleanout technology has been developed to effectively remove coal particles in CBM wells by employing a jet pump. The Concentric Tubing String (CTS) which is assembled by 3.5 inch tubing and 1.5 inch tubing is also introduced in, because there is no CCT technology in China at the moment. Detailed structure and principle of the coal particles cleanout technology system are described, while a theoretical model is formulated to optimally design the system based on the coal particles settling experimental data and jet pumping theory. It has been shown from field applications that the coal particles cleanout technology makes significant improvements in achieving high efficiency and preventing leakage in CBM wells. Moreover, the new technology reduces the skin damage and increase the production compared to non-vacuum CBM wells.


Author(s):  
Hossein Ghezel-Ayagh ◽  
Anthony J. Leo ◽  
Hans Maru ◽  
Mohammad Farooque

Significant progress has been made in development of power generation products based on carbonate fuel cells. Carbonate fuel cell systems provide high efficiency and ultra-clean power generation from a variety of gaseous, liquid, and solid carbonaceous fuels. The high operating temperature of 650 °C in carbonate fuel cell allows significant system simplification by integrating the internal reforming feature into the fuel cell stack as well as use of the byproduct heat in an efficient bottoming cycle. Direct FuelCell® (DFC®) is a unique version of the carbonate fuel cell, which generates electricity directly from a hydrocarbon fuel by reforming the fuel inside the fuel cell and producing hydrogen. The direct reforming concept eliminates the need for an external reformer resulting in power plants with reduced capital cost. This feature also allows the DFC power plants to utilize the existing fuel distribution infrastructure. The first generation of products offered by FuelCell Energy (FCE) range from 250kW to 2MW and is suitable to operate on natural gas, digester gas and other fuels. Presently, a fleet of natural gas fueled units is operating in the US and Europe at customers’ sites. Additionally, there are subsequent power plants planned to operate on a variety of fuels, including coal-bed methane, digester gas, and coal-derived gas. A 2 MW fuel cell power plant (DFC3000) will soon be operating with coal gas in Wabash River, Indiana’s coal gasification plant. The field tests of a 1 MW unit (DFC1500) at King County (Seattle, WA) waste treatment will be demonstrating the unique features of the DFC technology with digester gas as a fuel. There are plans to operate a 250 kW (DFC300) unit on coal-bed methane fields in Cadiz, Ohio. FCE is also developing a 500 kW unit for the US NAVY, operating on marine distillate fuels. FCE is also developing fuel cell/turbine ultra-high efficiency hybrid power plants with efficiencies approaching 75%. In the Direct FuelCell/Turbine® (DFC/T®) power cycle, the fuel cell is integrated with an indirectly heated gas turbine. FCE has recently completed the operation of a ‘proof-of-concept’ system that combined a sub-megawatt DFC with a 30-kilowatt microturbine. The proof-of-concept tests demonstrated that the DFC/T hybrid concept, indeed, has the potential for achieving higher efficiencies than the single cycle fuel cell. The demonstration of two, packaged sub-megawatt DFC/T units, one in Danbury and one at a customer site in Montana, is planned. In addition to pioneering the Direct FuelCell technology, FCE has established a strong manufacturing base. Currently the manufacturing facility at Torrington, CT, has the equipment in place to produce 50 MW per year of fuel cells. FCE has also established commercial distribution alliances with electric power equipment sales and service companies, energy service and solution providers, and specialty application developers for marketing DFC products. The operation of FCE’s power plants at customer sites, continuing efforts in technology improvement, and the favorable reception of the customers for DFC-based units, combined with a network of partners for sales and services, are the key factors for market penetration of DFC products.


Fuel ◽  
2019 ◽  
Vol 255 ◽  
pp. 115860 ◽  
Author(s):  
Lin Jia ◽  
Kewen Li ◽  
Jianbin Zhou ◽  
Zhiming Yan ◽  
Yongwei Wang ◽  
...  

2014 ◽  
Vol 7 (2) ◽  
pp. 189 ◽  
Author(s):  
Kai Zhu ◽  
Dali Guo ◽  
Xiaohui Zeng ◽  
Shuguang Li ◽  
Chuanqing Liu

Author(s):  
I. A. Arhipov

The study presents data on methane, as one of the most dangerous greenhouse gases. An analysis of the role of coal bed methane in the impact on the Earth ‘s atmosphere is provided; Based on the experience of reducing coal bed methane, the main steps that will ensure the development of this industry are assumed; Comprehensive analysis of methods to ensure methane safety has been carried out. The methodology of scientific research is to analyse and systematize the main scientific papers in the field of reducing the negative impact of methane on the environment and to analyze the main characteristics of coal bed methane recovery technologies. As a result, a set of measures has been defined to reduce the NROS of coal bed methane and various technologies for its extraction from coal beds have been analysed; The main characteristics of coal bed methane recovery technologies are identified and analyzed, affecting the efficiency of reduction of NROS, economic efficiency, as well as methane safety. In the detailed examination of the results, the main positive and negative aspects of various ways to reduce the NROS of coal mine methane were identified; Taking into account the main regularities of gas balance, the trends of methods of gas release control are determined, as well as the high efficiency of reduction of NROS of mine methane during development of a complex solution for its extraction is revealed. Finally, activities have been identified to improve the efficiency of coal bed degassing as technologies that have a positive impact on all performance criteria; The integrated use of various methane safety technologies is justified.


2014 ◽  
Vol 28 (2) ◽  
pp. 766-773 ◽  
Author(s):  
Paul Massarotto ◽  
R. S. Iyer ◽  
Muthia Elma ◽  
Timothy Nicholson

Sign in / Sign up

Export Citation Format

Share Document