Product Thermal Capacity: 1 - 20 t/h
Working Pressure: 0.7 - 2 Mpa
Available Fuel: Nature gas, coke oven gas, biogas, methanol, liquid propane gas, diesel, heavy oil, light oil, crude oil, etc.
Available Industries: Heat supplying, chemical, food, textile, printing and dyeing, cigarettes and tobacco, fodder, pharmacy, building materials, brewery, rubber, hospital etc.
WNS series horizontal internal combustion boiler is a boiler shell type 3 passes wetback oil/gas fired boiler. After fuel is being atomized by burner, flame is full of the wave furnace and transfer heat via furnace wall, this is 1st pass; the high temperature smoke is collected in reversal chamber and then enters 2nd pass which is grooved tubes bundle area; after heat convection, air temperature gradually falls and goes to front smoke box and turn to 3rd pass, which is smooth tubes bundle area, and then enters chimney passing back smoke box and exhausted to the atmosphere.
1. Digitized manufacture
The key part such as material cutting, rolling, drilling are proceeded by advanced CNC machining process to reduce the assemble stress and extend boiler working lifetime.
The front and back smoke chamber plates are cut by CNC plasma cutting machine and looks tidy and beautiful.
2.Easy operation and maintenance
Fully automatically operating, with automatically adjustment and protection of burning, water level, temperature and steam pressure.
3. Longer working life
Smoke tube and tube sheet connection is expanded first to eliminate the gap between them, then adopt automatic argon arc welding to relief the stress and expand boilers working life.
Longitudinal and girth joint adopt advanced automatic submerged-arc welding for good welding quality. All longitudinal and girth joint will have 100% radiographic inspection.
Fin tube us ND steel or stainless-steel material which avoid low temperature corrosion.
Inspection procedure point is set up to guarantee the sequence of expanding and welding, avoid cracking of the tube sheet holes.
4. Less fuel consumption
High quality aluminum silicate fiber is used with fire clay insulation, to control the boiler body temperature below 45℃ to control heat lost.
Sufficient steam storage room and heating area makes boiler to generate high quality steam and high thermal power.
Condenser is added to reuse the waste heat of the exhausted smoke to increase feeding water’s temperature and reduce emission temperature, which can increase the thermal efficiency above 98% and save operating cost.
Few factories burn the bagasse fiber as fuel, when burned in quantity, it produces sufficient heat energy to supply all the needs of a typical sugar factory. The rest of the bagasse can be processed to biomass pellets, be used as raw materials of sugarcane bagasse pulp making and exported to other countries as fuel, which can bring the factory economic benefits. Sugarcane is a renewable resource, which …
A huge potential for power generation from waste biomass fuels exists within the sugar cane industry. An estimated 1.2 billion tonnes of sugar cane is harvested annually, which corresponds to a worldwide electricity production potential of 40 GW or 300 TWh/annum in the eighty countries where sugar cane is grown on a significant basis [ Morris and Waldheim, 2004 ].
Make Biomass Pellets from Sugarcane Bagasse During sugarcane manufacturing process in tropical and subtropical district, over one million tons of bagasse are produced. The economic value of direct burning or throwing away is very low, so a new applying method of making wood pellets from them has been developed and put into use.
The Group’s new plants are also designed to address the challenges associated with the energy transition: Galion 2, in Martinique, is the first all-bagasse/biomass power plant in Overseas France, and the combustion turbine in Saint-Pierre, Reunion Island, is the world’s first bioethanol-fuelled power plant.
We can offer you high quality biomass pellet machine to help you make bagasse into fuel. Abundant Sugarcane Bagasse as Raw Materials Brazil is the biggest sugarcane producer and the largest exporter of sugar in the world. The main production region distributes in South-Central Brazil, accounting for 90% cane harvesting of the whole country.
Many people associate the term biomass with renewable energy — often referred to as biofuel. Biomass sources for biofuels include wood, wood waste, straw, manure, sugar cane bagasse, and many other byproducts from a variety of agricultural processes. These biofuels have and continue to be a major source of energy in much of the developing world.
Sep 11, 2019· Sugarcane Trash as Biomass Resource. Sugarcane trash (or cane trash) is an excellent biomass resource in sugar-producing countries worldwide. The amount of cane trash produced depends on the plant variety, age of the crop at harvest and soil and weather conditions. Typically it represents about 15% of the total above ground biomass at harvest which is equivalent to …
Mar 20, 2017· Comparing with other biomass raw materials, the bagasse contains around 20% lignin, which can help the pellet forming. Meanwhile, the bagasse pellet has higher calorific value at 4461 kilocalorie per kilogram (kcal/kg) (or 4.5 kilowatt hours per kg), and lower ash content at less than 6.4%, compared with other biomass pellets.
Sep 08, 2015· utilization of sugarcane bagasse ash in concrete by snehith d kaushik n 2. CONTENTS INTRODUCTION PROCESS TO OBTAIN ASH FROM BAGASSE CRYSTAL STRUCTURES OF BAGASSE ASH GRINDING OF BAGASSE ASH PARTICLE SIZE ANALYSIS CHEMICAL AND PHYSICAL PROPERTIES OF BAGASSE APPLICATIONS ADVANTAGES CASE STUDY …
Cepero says that Florida Crystals’s biomass power plant, the largest in North America, uses 800,000 tons of sugarcane bagasse and 700,000 tons of urban wood waste each year. Since the sugarcane milling process does an excellent job of preparing the bagasse for combustion, not much else needs to be done to the bagasse so it is sent directly from the discharge of the milling plant to the boilers by …
Jun 13, 2001· Current Practices in Sugar Cane Harvesting and in Sugar Mill Energy Management. Green Harvesting, State‐of‐the‐art. Gasification of Sugar Cane Bagasse and Trash. Big‐Gt Integration with Typical Mill. Environmental Impact of Green Harvesting and Improved Energy Conversion. Conclusions. References
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