采煤毕业设计外文翻译----关于采煤机截割次序的问题
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1、翻译部分 英文原文 High Productivity -A Question Of Shearer Loader Cutting Sequences K.Nienhaus,A.K.Bayer& H. Haut, AachenUniversity of Technology, GER 1. Abstract Recently, the focus in underground longwall coal mining has been on increasing the installed motor power of shearer loaders and armored face conv
2、eyors (AFC) ,more sophisticated support control systems and longer face length , in order to reduce costs and achieve higher productivity .These efforts have resulted in higher output and previously unseen face advance rates. The trend towards “bigger and better ” equipment and layout schemes, howev
3、er, is rapidly nearing the limitations of technical and economical feasibility. To realize further productivity increases, organizational changes of longwall mining procedures looks like the only reasonable answer. The benefits of opti-mised shearer sequences, leading to better performance, are disc
4、ussed in this paper. 2.Introductions Traditionally, in underground longwall mining operations, shearer loaders produce coal using either one of the following cutting sequences: uni-directional or bi-directional cycles.Besides these pre-dominant methods , alternative mining cycles have also been deve
5、loped and successfully applied in underground hard coal mines all over the world. The half-web cutting cycle as e.g. utilized in RAG Coal Internationals Twenty mile Mine in Colorado, USA, and the “Opti-Cycle” of Matlas South African shortwall operation must be mentioned in this context. Other mines
6、have also tested similar but modified cutting cycles resulting in improved output, e.g. improvements in terms of productivity increases of up to 40% are thought possible. Whereas the mentioned mines are applying the alternative cutting methods according to their spe-cific conditions, e.g. seam heigh
7、t or equipment used, this paper looks systematically at the differ-ent methods from a generalized point of view. A detailed description of the mining cycle for each cutting technique, including the illustrations of productivitve and non-productive cycle times, will be followed by a brief presentatio
8、n of the performed production capacity calculation and a summary of the technical restrictions of each system. Standardised equipment classes for different seam heights are defined, after the most suitalble and most productive mining equipment for each class are selected .Besides the technical param
9、eters of the shearer loader and the AFC ,the length of the long-wall face and the specific cutting energy of the coal are the main variables for each height class in the model . As a result of the capacity calculations, the different shearer cutting methods can be graphically compared in a standartd
10、ised way showing the productivity of each method. Due to the general character of the model potential optimizations (resulting from changes in the cutting cycle and the benefits in terms of higher productivity of the mining operation) can be derived. 3. State-of-the-art of shearer loader cutting seq
11、uences The question “Why are different cutting sequences applied in longwall mining?” has to be answered , before discussing the significant characteristics in terms of operational procedures. The major constraints and reasons for or against a special cutting method are the seam height and hardness
12、of the coal, the geotechnical parameters of the coal seam and the geological setting of the mine influencing the caving properties as well as the subsidence and especially the length of the longwall face. For each mining environment the application of either sequence results in different production
13、rates and consequently advance rates of the face. The coal flow onto the AFC is another point that varies like the loads on the shearer loader, especially the ranging arms and the stresses and the wear on the picks. A thorough analysis is necessary to choose the best-suited mining cycle ; therefore,
14、 general solutions do not guarantee optimal efficiency and productivity . A categorization of shearer loader cutting sequences is realized by four major parameters. Firstly, one can separate between mining methods, which mine coal in two directions meaning from the head to the tailgate and on the re
15、turn run as well or in one direction only. Secondly, the way the mining sequence deals with the situation at the face ends, to advance face line after extracting the equivalent of a cutting web, is a characteristic parameter for each separate method. The necessary travel distance while sumping varie
16、s between the sequences, as does the time needed to per-form this task , too. Another aspect defining the sequences is the proportion of the web cutting coal per run. Whereas traditionally the full web was used, the introduction so modern AFC and roof support automation control systems allows for ef
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