欧美性大战xxxxx久久久√_大屁股大乳丰满人妻_日本最大色倩网站www_久久精品国产亚洲av不卡_无码av中文一区二区三区桃花岛

CISDI 3R blast furnace showcases marked reductions in carbon dioxide emissions and costs

Date:2024/9/29 Source: CISDI

Striking environmental, economic and social benefits are resulting from the roll out of two world-first 3R Carbon-Hydrogen blast furnaces at Zongheng Steel Fengnan Plant in China’s Hebei Province.

Achievements compared with China’s conventional blast furnaces of the same 2,300-cubic-metre volume:

           Solid fuel consumption reduced by 20 to 30kg per tonne of hot metal

           Mixed hydrogen and carbon monoxide gas replacement ratio ranges 0.50 to 0.57 kilogram per cubic metre in normal working conditions

           Carbon dioxide emissions during blast furnace production reduced by 5 to 10 per cent

           Smelting costs decreased by USD1.41 to 4.23 per tonne of hot metal.

These performance indicators were reached during the first year of operation.

The 3R Carbon-Hydrogen Reduction, Re-use and Recycle ironmaking tech lays a new pathway to economical and stable carbon emissions reduction at large blast furnace plants.

In July 2024, ground was broken on a project to create a further two Zongheng 3R C-H blast furnaces (at 2,000m3 level), and three more at a Jiangsu Province steel plant.

 

 

The world’s first 3R low-carbon blast furnace (2,000m3-level) demo at Zongheng Steel, Hebei, China

 

          Breakthroughs in theoretical study on carbon-hydrogen coupled intensified reducing

Long-term low-carbon ironmaking research has boosted CISDI’s theoretical foundation for intensifying the in-blast furnace reducing effect by coupling hydrogen and carbon monoxide.

Thanks to the team’s study on smelting basics and gas-solid flows and their massive analysis, simulation calculation and lab testing of iron oxide’s efficient reduction and low-carbon blast furnace operation, systematic C-H blast furnace ironmaking tech solutions have been formed.

These solutions define the most favourable hydrogen concentration, the optimal proportion between hydrogen-enriched and CO-enriched gases, and an expert gas blending and blowing method in the smelting process.

 

 

 

 

          Safe, reliable equipment and digital applications for stable and smooth low-carbon blast furnace operation

The CISDI 3R BF has been operating smoothly since its startup, thanks to its innovative tech applications and the methodological foundation of carbon-hydrogen coupled intensified reducing.

Achievements:

          Gas boosting and deep de-carbonisation

          Collaborative gas and coal powder injecting

          Smart regulation and control of furnace conditions

The gas decarbonisation system is demonstrating high standards of economy and efficiency. Removing carbon not only meets the recycled blowing requirement, but roots out mutual interference between carbon-recycling gas and the regulating of furnace conditions.

The innovative blowing and gas lance system relieves gas and coal powder’s interference in simultaneous combustion and enhances coal powder’s combustion efficiency.

It leads to stabler furnace conditions and safer blowing and injecting. The gas lance is designed to sustain safe and stable operation for a minimum of four months.

The 3R BF’s big data centre controls its entire operational data and is a basic platform for the development of an artificial intelligence-based multi-medium injection system.

Compared with conventional BFs with the same burden design, it operates more stably and is more resistant to fluctuations in raw materials and fuels.

 

 

          Recycling byproduct gas at a blast furnace – basic oxygen furnace integrated mill opens new horizons for low-carbon smelting

Based on the integrated mill’s gas balance calculation and its systematic analysis, CISDI proposes to progressively use gas - the integrated mill’s byproduct - as a reducing agent instead of a heating and burning medium. Its new role of replacing part of the solid carbon to be consumed by BF smelting reduces carbon from the source.

A new technological flow has been created for combined carbon and hydrogen recycling throughout blast furnace, coke oven and basic oxygen furnace processes. This is a steel sector first and takes the perspective of flow metallurgical engineering and five-flow theories (iron, mass, energy, emission and smart application flows).

This method has opened up a new paradigm for integrated mill low-carbon smelting, transforming carbon recycling at a single blast furnace procedure to a method which operates throughout process flows.

 


亚洲美综合乱码精品成| 国产00高中生在线无套进入| 午夜无码国产理论在线| 无码少妇a片一区二区三区| 亚洲av区无码字幕中文色| 精品久久精品午夜精品久久| 欧美深性狂猛ⅹxxx深喉| 五月色丁香婷婷网蜜臀av| 久久精品a亚洲国产v高清不卡| 老师脱了内裤让我进去| 四虎影视永久在线观看| 成 人影片 免费观看| 亚洲av无码久久忘忧草| 少妇性饥渴无码a区免费| 曰本极品少妇videossexhd| 夜夜春亚洲嫩草影院| 欧美性生交大片18禁止| 毛茸茸厕所偷窥xxxx| 精品亚洲一区二区三区在线观看| 国产真人做爰毛片视频直播| 一区二区二区三区av| 久久天天躁狠狠躁夜夜爽| 亚洲成av人片一区二区三区| 自慰无码一区二区三区| 18黄暴禁片在线观看| 国产一区二区三区乱码| 久久精品国产亚洲av果冻传媒 | 狠狠色噜噜狠狠狠狠97首创麻豆| 激情按摩系列片aaaa| 亚州av综合色区无码一区| 午夜亚洲av永久无码精品| 无码国内精品久久人妻| 亚洲婷婷综合色高清在线| 国产嫩草精品网亚洲av| 97超级碰碰人妻中文字幕| 亚洲日本一区二区三区在线 | 男女啪啪免费体验区| 欧洲无码八a片人妻少妇| 国产午夜福利久久精品| 宝宝好涨水快流出来免费视频| 500av导航大全精品|