国产精品成人久久久久_制服丝袜影音先锋_最近免费看av_五月天综合网_99热免费观看_久99久精品视频免费观看_国产日韩在线一区二区三区

Combustion Chamber of Turbo Engines

What is Tungsten Alloy Turbo Engines?combustion chamber-01

As we know,tungsten alloy turbo engine is the heat engine which is conditioned by their maximum intake temperature, and tungsten alloy turbo engine is limited by the behavior of the constituent materials of the articles that are most exposed to heat and constraints. Tungsten alloy turbo engine is widely used in aviation.

Why Choose Tungsten Alloy Turbo Engine?

Concerns for environmental protection have led designers of aviation tungsten alloy turbo engines to search for means to reduce the proportion of pollutants in the exhaust gases of the engines. It is known that the principal problems in the matter of pollution of aviation tungsten alloy turbo engine is the emission of carbon monoxide, of hydrocarbons, and of various unburnt residues during operation on the ground and, on the other hand, the emission of nitrogen oxides and of particles during take-off and during cruising at altitude. Therefore, tungsten alloy turbo engines are increasingly accepted by public in this case.

Conventional combustion chambers are generally of optimized rating for take-off or near take-off operation. This signifies that, in the primary zone of the combustion chamber, a fraction of the air flow of the compressor is introduced so that, with the injected fuel, the fuel-air mixture in this zone would be essentially stoichiometric in these modes. Under these conditions, due to the levels of temperature and high pressures, as complete as possible a combustion is obtained, combustion yields greater than 0.99 are attained, the speeds of the chemical reaction being optimum for these stoichimoetric mixtures.

In contrast, at low ratings, at idle or nearly so, the total richness in the combustion chamber is only about half that at take-off; in addition, the pressures and temperatures at the outlet of the compressor are lower; the result is that the combustion chamber, with the partial charge is very much maladjusted and that the slow speed combustion chambers efficiency rarely goes beyond 0.93. The combustion chambers is, therefore, very incomplete, which means much higher concentrations of carbon monoxide and unburnt residues at the exhaust than under normal operation. The proportions of the pollutants are all the higher, the lower the total yield of the combustion chambers.

However, it appears to be possible to improve the performance of a combustion chamber by acting on four factors: combustion chamber-02
The timing of vaporization of the fuel,
The timing of the air-fuel mixture,
The timing of the fresh gas/burnt gas mixture,
The timing of the chemical reaction.

The first two times can be considered negligible at high ratings because of the pressures which are attained, but it is not so at low ratings. In fact, in order to increase the speed of the vaporization of the fuel, it must be transformed into fine droplets, which is easily realized by the conventional mechanical atomizing injector, but the performance which is obtained in the lower ratings is poor. This is due to the fact that, if the fuel is well divided into droplets, these are poorly mixed with air in the primary zone and local zones would appear which have a richness which is too high. In the end, it would be necessary that each droplet would have around it the quantity of gas necessary for its vaporization and for its combustion in combustion chambers, i.e., a quantity of gas which results in a stoichiometric mixture with the oxygen molecules after complete varporization. In order to accomplish this, systems such as aerodynamic injection have been proposed. Aerodynamic type injectors generally comprise whirling, or swirler vanes through which the air from the compressor is introduced, which serves to atomize the fuel. An air/fuel pre-mixture is thus obtained.

The fresh gas/burnt gas mixture must also be advantageous because tungsten alloy turbo engine contributes to the increase in the temperature of the carburized mixture and, therefore, aids in its atomization and consequently permits an improvement in the speed of the chemical reaction. In conventionally allowing this contact of the carburized mixture with the high temperature gas from the combustion chambers it is desirable to arrange for a recirculation of the latter by searching for a convenient turbulence level.

All of these solutions, which allow an improvement in the combustion chambers yield have, however, a maximum efficiency only for values sufficient for the pressures and temperatures of the air at the combustion chamber inlet.
As far as the reaction time is concerned, it is necessary to additionally research an optimization of the richness of the mixture, the ideal would be to be able to obtain a stoichiometric air/fuel proportion in the flame stabilization zone, regardless of the operation of the engine.

A first objective of this product is to provide a novel solution to the problem of low operating combustion chamber which includes aerodynamic type or pre-atomization injectors, which are mounted in the base of the chamber. In fact, in the case of a conventional combustion chamber of this type, which is arranged to provide a stoichiometric mixture at take-off, about one-third of the air flow necessary for the combustion chamber is introduced in the injection system and two-thirds by the primary orifices. tungsten alloy turbo engines

All of these factors are advantageous for a reduction of the reaction times and could lead to a reduction of the length of the combustion chamber and thus to a limitation of the dwell time of the gases in the tungsten alloy turbo engine.

As far as the combustion chambers of the annular or nozzle-shaped type are concerned, it is possible to design the intermediate segment in the form of an annular zone which is common to all the injectors. The intermediate segment would then be formed of a circular base located in a plane which is perpendicular to the axis of the combustion chamber to which the injectors are attached, and of two annular lateral walls which are welded, at the one end, to the circular base and on the other end to the base of the chamber, defining an annular volume which flares towards downstream, various forms could be adapted for the lateral walls, in a manner analogous to the case of the intermediate segment itself to each injector. Tungsten alloy turbo engines could each particularly be generated by a straight line and then each form a conic wall at the downstream end on which the holes, which are designed for the introduction of the fourth flow of air are located, distributed over one or several circles which are located on one or several planes which are perpendicular to the axis of the chamber. Each of the lateral walls could be formed of two truncated conical sections, with the connecting axes welded end to end, of which the angles at the top increase towards downstream, the small diameter holes which are designed for the injection of the fourth air flow being located immediately ahead of the joint which is formed by the joining of the two truncated cones, and distributed over one or several planes which are perpendicular to the common axis of the truncated cones. Combustion chambers could also be formed of a first truncated portion, with a top angle between 60° and 100°, comprising, at its downstream end, an annular zone which is located in a plane. Tungsten alloy turbo engine is perpendicular to the axis of the chamber, in which the small diameter holes are drilled, which are designed for the injection of the fourth air flow, the holes being distributed over one or several circles which are coaxial with the said zone and having their axis normal to the generators of the truncated portion, to which an annular zone is joined where they are drilled. This last arrangement proves to be particularly advantageous in the case of a high performance combustion chamber because of the fact that it suppresses the hot slip-streams behind the jets which correspond to the fourth flow.

The diameter of the holes, which are designed for the injection of the fourth flow, in the intermediate annular segment, which will represent 1/6 to 1/3 of the primary air, will have a diameter between 1/10 and 1/40 of the maximum dimension of the flared segment, measured on a radius of the chamber.

The cooling of the downstream ends of each lateral wall by a fifth air flow obviously works, the holes which are designed for the injection of this fifth flow being located in the immediate proximity of the joint between each lateral wall and the chamber, the values of the angles and the flow being identical to that mentioned in the case of the chambers for which each injector possesses its own intermediate segment.

The penetration of the intermediate segment could also be realized in order to increase the volume of the secondary recirculation zone; its depth of penetration will then be between one-fifth and one-half of the maximum dimensions of the intermediate segment, measured on a radius of the chamber.

Chinatungsten can offer tungsten alloy turbo engines used in this case not only according to international standard, but also as per customer’s requirements. Tungsten alloy is a suitable material for combustion chamber of turbo engines. So if you have any interest in tungsten alloy turbo engines, please feel free to email us: sales@chinatungsten.com, sales@xiamentungsten.com or call us by: 0086 592 512 9696, 0086 592 512 9595. We are at your service.

国产精品成人久久久久_制服丝袜影音先锋_最近免费看av_五月天综合网_99热免费观看_久99久精品视频免费观看_国产日韩在线一区二区三区
精品粉嫩超白一线天av| 久久久国产精品不卡| 日韩精品午夜视频| 欧美精品一区二区三区蜜桃视频| 国产99精品国产| 亚洲成人免费视频| 国产精品天天看| 欧美日本一道本在线视频| 国产丶欧美丶日本不卡视频| 午夜伦理一区二区| 亚洲日本欧美天堂| 久久久国产精品不卡| 日韩视频一区二区三区| 欧美伊人精品成人久久综合97 | 国产精品亚洲视频| 热久久一区二区| 亚洲成a人在线观看| 国产精品毛片大码女人| 精品免费国产二区三区| 555www色欧美视频| 欧美影院午夜播放| 色综合久久天天| 国产盗摄一区二区| 国产精品一区2区| 精品一区二区三区欧美| 日本美女视频一区二区| 亚洲一区二区三区爽爽爽爽爽| 欧美国产精品一区二区三区| 久久综合色8888| 日韩欧美成人激情| 91精品欧美久久久久久动漫| 欧美日韩日日骚| 欧美性猛交一区二区三区精品| 99视频一区二区| 成人精品在线视频观看| 成人18精品视频| av电影天堂一区二区在线| 成人免费不卡视频| 成人av网站在线| 91视频.com| 在线观看一区二区视频| 在线国产亚洲欧美| 欧美日韩国产精品成人| 欧美人妇做爰xxxⅹ性高电影| 欧美日韩激情一区| 欧美日韩一级二级三级| 在线不卡免费av| 精品国产人成亚洲区| 欧美成人a视频| 久久久久久久久久美女| 国产精品视频一二三区| 亚洲人成在线播放网站岛国| 亚洲精品国产精品乱码不99| 一区二区三区蜜桃网| 亚洲影视在线观看| 日韩福利视频网| 久久aⅴ国产欧美74aaa| 国产一二三精品| 成人高清视频在线观看| 色琪琪一区二区三区亚洲区| 精品视频在线视频| 91精品国产高清一区二区三区蜜臀| 91精品国产一区二区| 久久综合五月天婷婷伊人| 国产日韩欧美一区二区三区乱码| 中文字幕va一区二区三区| 亚洲精品日韩专区silk| 日韩国产欧美视频| 国产精品综合二区| 一本色道久久加勒比精品 | 成人自拍视频在线| 色狠狠桃花综合| 欧美剧在线免费观看网站| 精品久久人人做人人爱| 亚洲国产高清aⅴ视频| 亚洲最新视频在线播放| 麻豆国产一区二区| 成人久久久精品乱码一区二区三区| 欧美中文一区二区三区| 日韩美女一区二区三区四区| 国产精品妹子av| 五月天激情小说综合| 国产精品一区二区久久不卡| 欧美中文字幕一区二区三区| 久久久亚洲国产美女国产盗摄 | 97久久超碰精品国产| 欧美日韩一二三区| 久久久国产精品麻豆| 亚洲制服丝袜av| 国产一区二区在线观看免费| 91麻豆swag| 精品日产卡一卡二卡麻豆| 1024成人网| 久久精品国产免费| 91女厕偷拍女厕偷拍高清| 精品免费日韩av| 亚洲自拍偷拍图区| 国产激情视频一区二区三区欧美| 欧洲国内综合视频| 久久久久久久电影| 香蕉乱码成人久久天堂爱免费| 国产电影一区二区三区| 欧美一区二区三区视频在线| 樱桃国产成人精品视频| 国产激情91久久精品导航 | 国产日韩亚洲欧美综合| 丝袜亚洲精品中文字幕一区| 成人av动漫网站| 日韩精品一区二区三区四区| 一二三区精品视频| 成人黄色综合网站| 精品国产三级电影在线观看| 婷婷国产v国产偷v亚洲高清| 丁香六月综合激情| 日韩精品一区二区三区在线播放| 亚洲最大色网站| 99久久伊人久久99| 久久亚洲一区二区三区明星换脸 | 国产无遮挡一区二区三区毛片日本| 午夜精品爽啪视频| av电影一区二区| 国产精品素人视频| 国产福利一区在线| 精品国产麻豆免费人成网站| 日韩精品高清不卡| 欧美日韩一级二级三级| 一区二区三区不卡视频在线观看| 成人毛片视频在线观看| 久久美女高清视频| 久草在线在线精品观看| 91精品国产综合久久精品app| 亚洲卡通欧美制服中文| yourporn久久国产精品| 欧美国产日本视频| 国产成人综合网| 久久精品男人天堂av| 狠狠狠色丁香婷婷综合久久五月| 欧美高清视频一二三区 | 日韩免费观看高清完整版 | 9191精品国产综合久久久久久| 亚洲美女免费在线| 94色蜜桃网一区二区三区| 国产精品麻豆一区二区 | 日韩电影一区二区三区四区| 欧美日韩高清在线| 亚洲最色的网站| 欧美日韩精品系列| 亚洲国产中文字幕| 欧美日韩卡一卡二| 亚洲国产你懂的| 欧美日韩国产免费| 五月婷婷综合在线| 欧美精品自拍偷拍| 日本欧美大码aⅴ在线播放| 欧美电影一区二区| 秋霞电影一区二区| 日韩一二三四区| 精品一区二区三区免费播放| 久久亚洲一区二区三区明星换脸| 国产精品亚洲人在线观看| 欧美激情中文字幕| 91在线国产福利| 亚洲一区欧美一区| 日韩天堂在线观看| 国产福利一区二区三区视频| 国产精品入口麻豆九色| 91浏览器在线视频| 日产国产欧美视频一区精品| 精品国产成人系列| 成人一区在线看| 一区二区三区在线免费播放| 欧美男人的天堂一二区| 喷水一区二区三区| 国产精品婷婷午夜在线观看| 在线区一区二视频| 男女视频一区二区| 久久免费看少妇高潮| 99精品久久免费看蜜臀剧情介绍| 亚洲一区在线观看视频| 日韩欧美高清dvd碟片| 成人性生交大片免费看中文| 一区二区三区四区在线播放| 欧美一区二区三区四区久久| 国产成人日日夜夜| 一区二区三区蜜桃| 精品成人一区二区三区四区| 91在线丨porny丨国产| 蜜乳av一区二区三区| 中文字幕第一区综合| 欧美丝袜自拍制服另类| 国产精品一区二区果冻传媒| 亚洲一区在线视频观看| 久久久久久久免费视频了| 在线观看亚洲精品视频| 久久99国产精品麻豆| 亚洲精品视频在线看| 久久人人爽爽爽人久久久| 99re这里都是精品| 免费精品视频在线| 亚洲视频一二区|