Wobo Clean Energy-Based Ammonia Plant for Sustainable Food

Product Details
Customization: Available
Application Fields: New Energy, Food
Certification: ISO
Manufacturer/Factory, Group Corporation
Diamond Member Since 2022

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Plant Area
90000 square meters
Management System Certification
ISO 9001, ISO 14001, OHSAS/ OHSMS 18001, HACCP, ISO 13485
  • Wobo Clean Energy-Based Ammonia Plant for Sustainable Food
  • Wobo Clean Energy-Based Ammonia Plant for Sustainable Food
  • Wobo Clean Energy-Based Ammonia Plant for Sustainable Food
  • Wobo Clean Energy-Based Ammonia Plant for Sustainable Food
  • Wobo Clean Energy-Based Ammonia Plant for Sustainable Food
  • Wobo Clean Energy-Based Ammonia Plant for Sustainable Food
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  • Overview
  • Product Description
  • Product Parameters
  • Technical Principle
  • Equipment Advantages
  • Applications
  • Project Case
  • Certifications
Overview

Basic Info.

Model NO.
2000~20000TON/YEAR
Condition
New
Noise Level
Low
Parts
Nitrogen Preparation Unit, Compression Unit, Hydroge
Purpose
Gas Manufacturing
Name
Green Ammonia Equipment
Purity
≥99.99%
Working Pressure
0.4~0.6MPa
Ammonia Capacity
2000~20000ton/Year
Machine Size
Medium
Usage
Ammonia
Transport Package
Wooden Case or Container
Trademark
WOBO
Origin
China
HS Code
8419899090
Production Capacity
1000 Sets/Year

Product Description

Green Ammonia Plant

Wobo Clean Energy-Based Ammonia Plant for Sustainable Food

Product Description

Ammonia is a colorless gas with a strong, pungent odor. It has a density of 0.771 kg/m3 and a boiling point of -33.5°C. Ammonia can be easily liquefied, either by pressurizing it at room temperature or by subjecting it to low temperatures at atmospheric pressure. The human body is highly sensitive to the smell of ammonia, and concentrations as low as 5 parts per million (ppm) can be detected by humans. The strong and sharp odor of ammonia reflects its safety as a fuel.
 
The "green ammonia" technology primarily utilizes electricity generated from clean energy sources such as solar and wind power to electrolyze water and produce H2. This hydrogen then reacts with N2 to produce ammonia gas, making it a low-carbon or zero-carbon emission green technology.
 
The world has recognized the significant potential of green ammonia technology in reducing carbon emissions and contributing to the achievement of "net-zero" goals. WOBO possesses the technology to economically and efficiently realize this objective in the short term.

Product Parameters

Wobo Clean Energy-Based Ammonia Plant for Sustainable Food
WGA-2000 LAYOUTDIMENSIONS AND MAIN PARAMETERS            
Unit Length(M) Width(M) Height(M) Cooling Water(T/h) Electricity Consumption (kWh/h) Floor Area (m2)
Hydrogen Preparation Unit 13 6 5.5 80 2500 78
Nitrogen Preparation Unit 10 6 2.9 10 60 60
Compression Unit 10 5 1.7 5 55 50
Ammonia Synthesis Unit 12 2.5 2.8 6 37.5 30
Refrigeration Unit 6 2.5 2.5 20 85 15
Wobo Clean Energy-Based Ammonia Plant for Sustainable Food
WGA-20000 LAYOUTDIMENSIONS AND MAIN PARAMETERS            
Unit Length(M) Width(M) Height(M) Cooling Water(T/h) Electricity Consumption (kWh/h) Floor Area (m2)
Hydrogen Preparation Unit 30 28 10 800 25000 1680
Nitrogen Preparation Unit 15 7 4 100 600 105
Compression Unit 14 10 2.5 50 550 140
Ammonia Synthesis Unit 12 7 4.5 60 132 84
Refrigeration Unit 10 3.5 3 200 650 35
 

Technical Principle

Wobo Clean Energy-Based Ammonia Plant for Sustainable Food

 

1. Renewable Energy Generation: The device harnesses renewable energy sources such as solar power or wind power to generate electricity. These clean energy sources are sustainable and have minimal or no carbon emissions.
 
2. Electricity Conversion: The generated electricity is then utilized to power the electrolysis process. Electrolysis involves passing an electric current through water (H2O) to break it down into its constituent elements, hydrogen (H2) and oxygen (O2). This process occurs in an electrolyzer unit, which typically consists of two electrodes immersed in water.
 
3. Hydrogen Production: The electric current causes the water molecules to split, with hydrogen ions (H+) being attracted to the cathode (negative electrode) and oxygen ions (O2-) being attracted to the anode (positive electrode). The hydrogen ions combine to form hydrogen gas (H2) at the cathode, which is collected as a product.
 
4. Air Separation: A portion of the generated electricity is directed to an air separation unit. This unit utilizes techniques such as cryogenic distillation or membrane separation to separate the air into its main components, primarily nitrogen (N2) and oxygen (O2). The nitrogen gas is used in the subsequent step for the synthesis of ammonia.
 
5. Ammonia Synthesis: The separated hydrogen gas from step 3 and the nitrogen gas from step 4 are combined in a reactor. Through a chemical synthesis process known as the Haber-Bosch process, the hydrogen and nitrogen react under specific temperature and pressure conditions, facilitated by catalysts, to produce ammonia gas (NH3). This ammonia gas can be collected and stored for various applications.
Wobo Clean Energy-Based Ammonia Plant for Sustainable Food
Green ammonia production and uses

Equipment Advantages

1. Flexible Capacity - 1,000MTPA~900,000TPY: The green ammonia device offers a significant advantage in terms of flexible capacity. It can accommodate a wide range of production capacities, ranging from 1,000 metric tons per annum (MTPA) to as high as 900,000 tons per year (TPY). This flexibility allows for scalability and adaptation to various production requirements, ensuring that the device can meet the specific needs of different industries and applications.
 
2. High Efficiency - Conversion rate more than 17.5%: The green ammonia device is designed for high efficiency in ammonia production. It achieves a remarkable conversion rate of more than 17.5%, meaning that a significant portion of the input energy is effectively utilized in the production process. This high efficiency contributes to optimized resource utilization, reduced energy waste, and improved overall productivity.
 
3. Smart Plant - Fully automatic operation: The green ammonia device incorporates smart plant technology, enabling fully automatic operation. Through advanced control systems, monitoring sensors, and data analytics, the device can efficiently regulate and optimize the production process without the need for constant manual intervention. This automation minimizes human error, enhances operational safety, and maximizes productivity by ensuring consistent and precise operation.
 
4. Superior Equipment - ASME, TEMA standards: The green ammonia device is equipped with superior components and equipment that adhere to internationally recognized standards such as ASME (American Society of Mechanical Engineers) and TEMA (Tubular Exchanger Manufacturers Association). These standards ensure the highest level of quality, reliability, and safety in the construction and operation of the device. The utilization of superior equipment enhances the overall performance, durability, and longevity of the green ammonia device.
 
5. Environmentally Friendly - No carbon emissions: One of the most significant advantages of the green ammonia device is its environmental friendliness. Unlike traditional ammonia production methods, the green ammonia device operates without carbon emissions. By utilizing renewable energy sources and employing clean and sustainable production processes, it contributes to the reduction of greenhouse gas emissions and helps combat climate change. This environmental benefit makes the green ammonia device a preferred choice for industries aiming to achieve sustainability goals and minimize their carbon footprint.

Wobo Clean Energy-Based Ammonia Plant for Sustainable Food

Applications

1. Fertilizer Production: Ammonia is a crucial component in the production of nitrogen-based fertilizers. Green ammonia equipment can be employed to produce ammonia gas in an environmentally friendly manner, providing a sustainable source of nitrogen for fertilizer manufacturing. This enables the production of green fertilizers that contribute to sustainable agriculture practices.
 
2. Energy Storage: Ammonia has the potential to serve as a viable energy storage medium, particularly in the context of renewable energy integration. Green ammonia equipment can produce ammonia using surplus electricity generated from renewable sources during periods of high production. This ammonia can be stored and later utilized to generate electricity through processes like combustion or fuel cells, providing a means of storing and utilizing renewable energy efficiently.
 
3. Hydrogen Fuel Production: Ammonia can be a valuable source of hydrogen for fuel cell applications. Green ammonia equipment can produce ammonia through the electrolysis of water, generating hydrogen as a byproduct. This hydrogen can be extracted and used as a clean and renewable fuel for various applications, including transportation, stationary power generation, and hydrogen-powered vehicles.
 
4. Chemical Industry: Ammonia is a key feedstock in the chemical industry, serving as a precursor for the production of various chemicals and materials. Green ammonia equipment can supply ammonia gas that meets the industry's demand for sustainable and environmentally friendly feedstocks. This allows for the production of chemicals and materials with reduced carbon footprints and environmental impact.
 
5. Industrial Processes: Ammonia finds application in various industrial processes such as refrigeration, metal treatment, and cleaning agents. Green ammonia equipment provides a greener alternative for these processes by producing ammonia without the use of fossil fuels, minimizing carbon emissions and environmental impact.
 
6. Fuel for Internal Combustion Engines: Ammonia can be utilized as a fuel in internal combustion engines, particularly in the maritime and shipping sectors. Green ammonia equipment can produce ammonia that meets the required specifications for combustion engines, enabling the use of ammonia as a cleaner alternative to traditional fossil fuels, thereby reducing emissions and contributing to cleaner transportation.
Wobo Clean Energy-Based Ammonia Plant for Sustainable Food
Wobo Clean Energy-Based Ammonia Plant for Sustainable Food
Wobo Clean Energy-Based Ammonia Plant for Sustainable Food
 

Project Case

Wobo Clean Energy-Based Ammonia Plant for Sustainable Food

Certifications

Wobo Clean Energy-Based Ammonia Plant for Sustainable Food

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