In 1927, the limestone desulfurization process was first applied in the Barthes and Bansside Power Plants (total
120MW) beside the Thames River in UK to protect high-rise building in London. Up to now, over 10 desulfurization processes have been launched and applied. Based on the desulfurizing agent being used, there include calcium process (limestone/lime), ammonia process, magnesium process, sodium process, alkali alumina process, copper oxide/zinc process, active carbon process, ammonium dihydrogen phosphate process, etc. The calcium process is commercially available and widely used in the world, i.e. more than 90%. Flue gas desulfurization processes, survey made by the coal research institute under the International Energy Agency shows that the wet-process desulfurization accounts for 85% of total installed capacity of flue gas desulfurization units across the world. The wet-process desulfurization is mainly applied in countries, like Japan (98%), USA (92%), Germany (90%), etc. The limestone-gypsum wet desulfurization process, the most mature technology, the most applications, the most reliable operation in the world, may have rate of desulfurization of more than 90%. Currently, the flue gas desulfurization technology used at thermal power plants at home and abroad tends to be higher rate of desulfurization, bigger installed capacity, more advanced technology, lower investment, less land acquisition, lower operation cost, higher level of automation, more excellent reliability, etc. This paper briefs current situations and trends of flue gas desulfurization technology also append short descript of different type of FDG and their category.
Flue gas desulfurization is commonly known as FGD and is the technology used for removing sulfur dioxide (SO2) from the exhaust combustion flue gases of power plants that burn coal or oil to produce steam for the turbines that drive their electricity generators.
Flue gas desulfurization is commonly known as FGD and is the technology used for removing sulfur dioxide (SO2) from the exhaust combustion flue gases of power plants that burn coal or oil to produce steam for the turbines that drive their electricity generators.
Desulphur - A new Desulphurisation TechniqueTecnoVeritas
This Presentations intends to present a new technique of Desulphurisation, a revolutionary product to help the environment and the marine/ shore industry.
Application: Chemical agents employed in natural gas processing include drilling fluid additives, methanol injection for freeze protection, glycol injection for hydrate inhibition, produced water treatment chemicals, foam and corrosion inhibitors, de-emulsifiers,and drag reduction agents. Chemicals are frequently administered by way of chemical injection skids.
Challenges: Level monitoring controls chemical inventory
and determines when the tanks require filling.The careful
selection and application of level controls to chemical injection systems can effectively protect against tanks running out of chemicals or overfilling.
Sweetening and sulfur recovery of sour associated gas in the middle eastFrames
Effective and efficient removal of hydrogen sulfide (H2S) is an essential step when sweetening gas for downstream processes. By simultaneously turning the captured hydrogen sulfide into elemental sulfur, a Frames THIOPAQ O&G system improves gas value, while creating a saleable chemical widely sought after in the agricultural and bulk chemical industry.
Flue gas desulfurization is commonly known as FGD and is the technology used for removing sulfur dioxide (SO2) from the exhaust combustion flue gases of power plants that burn coal or oil to produce steam for the turbines that drive their electricity generators.
Flue gas desulfurization is commonly known as FGD and is the technology used for removing sulfur dioxide (SO2) from the exhaust combustion flue gases of power plants that burn coal or oil to produce steam for the turbines that drive their electricity generators.
Desulphur - A new Desulphurisation TechniqueTecnoVeritas
This Presentations intends to present a new technique of Desulphurisation, a revolutionary product to help the environment and the marine/ shore industry.
Application: Chemical agents employed in natural gas processing include drilling fluid additives, methanol injection for freeze protection, glycol injection for hydrate inhibition, produced water treatment chemicals, foam and corrosion inhibitors, de-emulsifiers,and drag reduction agents. Chemicals are frequently administered by way of chemical injection skids.
Challenges: Level monitoring controls chemical inventory
and determines when the tanks require filling.The careful
selection and application of level controls to chemical injection systems can effectively protect against tanks running out of chemicals or overfilling.
Sweetening and sulfur recovery of sour associated gas in the middle eastFrames
Effective and efficient removal of hydrogen sulfide (H2S) is an essential step when sweetening gas for downstream processes. By simultaneously turning the captured hydrogen sulfide into elemental sulfur, a Frames THIOPAQ O&G system improves gas value, while creating a saleable chemical widely sought after in the agricultural and bulk chemical industry.
Study of the Sulfur Trioxide Generation Mechanism and Control Method Using We...inventionjournals
In coal fired power plant, especially using sulfur content fossil fuels, much attention in recently paid to sulfur trioxide and sulfuric acid mist emission, because conventional desulfurization system should not be removed, which is installed to meet air quality standard for sulfur dioxide. Sulfur trioxide is highly reactive with water vapor and generally convert to sulfuric acid mist in atmosphere. Sulfuric acid is very fine under-submicron sized particulate matter or droplets. Recently sulfur trioxide cause air pollution and public health, discussion comes out, especially in the United States and Japan, that regulations and guideline should be enlarge the sulfur dioxide to sulfur trioxide and sulfuric acid. Moreover most countries reinforce sulfur oxides emission regulations or guidelines from coal-fired power plant. In this study, focusing that how to control the sulfur trioxide and sulfuric acid mist. Sulfuric acid mist found depending on the flue gas temperature. Generation and conversion rate of sulfur trioxide were measured according to temperature. The absorbent was selected to remove sulfur trioxide and sulfuric acid using wet type desulfurization system which the most proven technology at this moment.
It describes how the Sulfur is removed from the coal and oil. Desulfurisation of coal and oil is very helpful to bring down the sulfur oxide emissions in the air from the industries and power plants.
We ensure safe execution of all natural gas dehydration processes. Formulated solvents are used for acid gas treatment to achieve proper bio gas processing. If you getting more information about that visit on to http://www.deltapurification.com/ or call (306)-352-6132
Sweetening and sulfur recovery of sour associated gas and lean acid gas in th...Frames
Effective and efficient removal of hydrogen sulfide (H2S) is an essential step when sweetening gas for downstream processes. By simultaneously turning the captured hydrogen sulfide into elemental sulfur, a Frames THIOPAQ O&G system improves gas value, while creating a saleable chemical widely sought after in the agricultural and bulk chemical industry.
Processing of Hydrogen Sulfide & Carbon Dioxide From Natural Gas StreamsMohamed Almoalem
This poster was presented in GPA (Gas Processors Association) 23rd technical conference in November 2015. It is the outcome of an individual research that was done voluntarily by me during my internship in Tatweer Petroleum.
H2 S and SO2 removal and possible valorizationSerge Vigneron
H2S is a common pollutant in gas and air. This presentation is a review of different techniques to remove H2S ,and possible ways of valorization to sulfuric acid via SO2.
B E Project - Manufacturing of Phosphoric AcidAniket Mali
A method is disclosed for the manufacture of phosphoric acid directly from phosphate rock slurry in a reaction vessel with additional sulphuric acid to produce dehydrate calcium sulphate (gypsum). The gypsum is separated from the recovery solution via filtration and removed as a by-product. Design of equipments like reactor, sedimentation tank and evaporator is done.
Study of the Sulfur Trioxide Generation Mechanism and Control Method Using We...inventionjournals
In coal fired power plant, especially using sulfur content fossil fuels, much attention in recently paid to sulfur trioxide and sulfuric acid mist emission, because conventional desulfurization system should not be removed, which is installed to meet air quality standard for sulfur dioxide. Sulfur trioxide is highly reactive with water vapor and generally convert to sulfuric acid mist in atmosphere. Sulfuric acid is very fine under-submicron sized particulate matter or droplets. Recently sulfur trioxide cause air pollution and public health, discussion comes out, especially in the United States and Japan, that regulations and guideline should be enlarge the sulfur dioxide to sulfur trioxide and sulfuric acid. Moreover most countries reinforce sulfur oxides emission regulations or guidelines from coal-fired power plant. In this study, focusing that how to control the sulfur trioxide and sulfuric acid mist. Sulfuric acid mist found depending on the flue gas temperature. Generation and conversion rate of sulfur trioxide were measured according to temperature. The absorbent was selected to remove sulfur trioxide and sulfuric acid using wet type desulfurization system which the most proven technology at this moment.
It describes how the Sulfur is removed from the coal and oil. Desulfurisation of coal and oil is very helpful to bring down the sulfur oxide emissions in the air from the industries and power plants.
We ensure safe execution of all natural gas dehydration processes. Formulated solvents are used for acid gas treatment to achieve proper bio gas processing. If you getting more information about that visit on to http://www.deltapurification.com/ or call (306)-352-6132
Sweetening and sulfur recovery of sour associated gas and lean acid gas in th...Frames
Effective and efficient removal of hydrogen sulfide (H2S) is an essential step when sweetening gas for downstream processes. By simultaneously turning the captured hydrogen sulfide into elemental sulfur, a Frames THIOPAQ O&G system improves gas value, while creating a saleable chemical widely sought after in the agricultural and bulk chemical industry.
Processing of Hydrogen Sulfide & Carbon Dioxide From Natural Gas StreamsMohamed Almoalem
This poster was presented in GPA (Gas Processors Association) 23rd technical conference in November 2015. It is the outcome of an individual research that was done voluntarily by me during my internship in Tatweer Petroleum.
H2 S and SO2 removal and possible valorizationSerge Vigneron
H2S is a common pollutant in gas and air. This presentation is a review of different techniques to remove H2S ,and possible ways of valorization to sulfuric acid via SO2.
B E Project - Manufacturing of Phosphoric AcidAniket Mali
A method is disclosed for the manufacture of phosphoric acid directly from phosphate rock slurry in a reaction vessel with additional sulphuric acid to produce dehydrate calcium sulphate (gypsum). The gypsum is separated from the recovery solution via filtration and removed as a by-product. Design of equipments like reactor, sedimentation tank and evaporator is done.
International Journal of Engineering and Science Invention (IJESI)inventionjournals
International Journal of Engineering and Science Invention (IJESI) is an international journal intended for professionals and researchers in all fields of computer science and electronics. IJESI publishes research articles and reviews within the whole field Engineering Science and Technology, new teaching methods, assessment, validation and the impact of new technologies and it will continue to provide information on the latest trends and developments in this ever-expanding subject. The publications of papers are selected through double peer reviewed to ensure originality, relevance, and readability. The articles published in our journal can be accessed online.
TECHNOLOGIES OF SULPHUR DIOXIDE REDUCTION IN COAL FIRED THERMAL POWER PLANTIAEME Publication
This paper evaluates various methods to reduce sulphur dioxide from coal fired thermal power plant. Flue Gas
Desulphurization (FGD) is a technology which extracts sulphur dioxides from flue gases produced in coal based thermal
power plants, where sulphur content in coal is more than 0.5%.In FGD maximum sulphur dioxide reduction is possible
by controlling of flow of flue gases into the absorber unit by adjusting the blade pitch of axial flow booster fan using a
hydraulic system and varying the concentration of lime stone slurry. In addition, coal blending is one of the solution for
reduction in sulphur content. The results indicate that maximum SO2-reduction is possible with increase in limestone
purity. 100% SO2-reduction may be possible in FGD but at the higher it will cause the design and installation cost of FGD Plant
Liquefied Natural Gas has a number of major advantages as compared to current sources of energy. The major advantages of LNG would be: its ease of transport, its superb quality, its safety, its flexibility of use, and its sustainability.
CO2 Capture Using Activated Alumina in Gasoline Passenger VehiclesIJERA Editor
Now a days there is a tremendous change in the climatic conditions due to global warming and greenhouse
gases results in the floods, draughts and famine. Due to increase in the usage of fossil fuels, the emission of
harmful gases into the atmosphere and results in global warming and greenhouse effect. Carbon Dioxide is one
of the major component of Greenhouse gases results in greenhouse effect. Major amount of Carbon Dioxide
releases from the combustion of fossil fuels which are emitting from the Vehicles and Industries. For the control
of the emission of the carbon dioxide into the atmosphere we have chosen for adsorption of Carbon Dioxide
from the exhaust of the gasoline vehicles using Activated Alumina. For this Alumina is phase transformed to
Gamma – Alumina (Activated Alumina) which can adsorb the Carbon Dioxide from the gases and can be
recycled without causing any effect to the neighbouring gases and material used. The gasoline vehicle used for
testing is following the EURO – V emission norms and the Carbon Dioxide content releasing from the vehicle is
reduced to 7.6%.
CIGRE Position Paper on the Application of SF6
in Transmission and Distribution Networks
SF6 is essential for the transmission and distribution equipment and switchgear, because
of its excellent dielectric, arc quenching, heat transfer and chemical recombination
properties.
This has been successfully proven since the 1960s for high-voltage equipment and
since beginning of the 1980s for medium-voltage equipment. The size of equipment
and switchgear has been significantly reduced since the beginning of the SF6 technology.
Nowadays, SF6 technology is even more important to bring bulk power at high-voltage
level closer to the consumers as for mega cities.
Moreover, compact SF6 switchgear support applications such as offshore platforms or
wind power installations where small sizes and light weights are requested.
In spite of all the technical advantages of the SF6 technology, SF6 is a potent greenhouse
gas which is covered by the Kyoto Protocol [1]. Therefore SF6 must be managed within a
closed cycle, avoiding any deliberate release to the atmosphere. During the last 20 years, as
a consequence, significant effort has been undertaken to reduce SF6 emissions. The focus
for manufacturers and asset owners was on finding ways of increasing the tightness of
equipment and reducing handling losses.
Similar to Application and development trend of flue gas desulfurization (fgd) process a review (20)
Technical communication of automation control system in water treatment planthunypink
This paper presents technical communication of automation industry which describes the technical issues of
automation control system in operation development, improving management level and high efficiency process in water treatment system. Today’s water treatment plants are applied for water conservancy projects, emerged by the technology of automation control system is to ensure safe, continues, high quality water supply to municipal and for multi-purpose usage. Along with automation technology, computer technology, network communication development, advanced water treatment monitoring system is realized in Nantong pengyoa water purification plant. The Nantong pengyoa water purification plant has an important beneficial industry relationship to People’s Republic of China improving living status and environment condition mainly expounds the water supply, to build well-off society, comparatively improving the labor production growth & level of implementation of targets as well as high water quality requirements. In this paper, it develops the task and tells the technical solutions of water treatment plant which has been centralized in fully automated operation in some developed industries since many years. And also append short description of its current practices such as networking, and real-time monitoring control, composition & structure, process flow and automatic process control which are performed in water treatment plants to achieve high efficiency in quality of productivity.
ANALYSIS, DESIGN AND IMPLEMENTATION OF ZERO-CURRENT-SWITCHING RESONANT CONVER...hunypink
This paper presents a Buck type circuit structure, the designing of ZCS resonant Buck converter and analysis of the working principles involved. The designed buck converter uses ZCS technique and the function is realized so that the power form is converted from 12V DC to 5V DC (1A). A detailed analysis of zero current switching buck converters is performed and a mathematical analysis of the mode of operation is also presented. In order to reduce the switching losses in associated with conventional converters; resonant inductor and resonant capacitor (LC resonant circuit) is applied which helps to turn on-off the switch at zero current. The dc-dc buck converter receives the energy from the input source, when the switch is turned-on. If the switch is turned-off the LC resonant circuit pumps the energy by ensuring that the current does not come to zero. During the hardware implementation Ton, Toff, duty cycle & operating frequency values were determined and thoroughly tuned through the NE555 IC circuit. As a result of this various waveforms across capacitors,inductors and load resistor were observed. A simulation study was carried out and the effectiveness of the designed converter is verified by PSpice simulation results.
Mathematical model analysis and control algorithms design based on state feed...hunypink
XZ-Ⅱtype rotary inverted pendulum is a typical mechatronic system; it completes real-time motion control using DSP motion controller and motor torque. In this paper, we recognize XZ-Ⅱrotational inverted pendulum and learn system composition, working principle, using method, precautions and software platform. We master how to build mathematical model and state feedback control method (pole assignment algorithm) of the one order rotational inverted pendulum system and finish simulation study of system using Mat lab. In the end we grasp debugging method of the actual system, and finish online control of the one order rotational inverted pendulum system as well.
A battery charging system & appended zcs (pwm) resonant converter dc dc buck ...hunypink
This paper presents technique for battery charger to achieve efficient performance in charging shaping,
minimum low switching losses and reduction in circuit volume .The operation of circuit charger is switched
with the technique of zero-current-switching, resonant components and append the topology of dc-dc buck.
The proposed novel dc-dc battery charger has advantages with the simplicity, low cost, high efficiency and
with the behaviour of easy control under the ZCS condition accordingly reducing the switching losses. The
detailed study of operating principle and design consideration is performed. A short survey of battery
charging system, capacity demand & its topologies is also presented. In order to compute LC resonant pair
values in conventional converter, the method of characteristic curve is used and electric function equations
are derived from the prototype configuration. The efficient performance of charging shaping is confirmed
through the practical examines and verification of the results is revealed by the MATLAB simulation. The
efficiency is ensured about 89% which is substantially considered being satisfactory performance as
achieved in this paper.
Applied analysis and construction of prevention, monitoring and early warning...hunypink
To prevent from the hazards of mountain torrent disasters, today’s monitoring and early warning system is widely
used in mountain areas to keep alert from the rainstorm. Mountain torrent disaster caused by the rainstorm and is one of the most important reasons, resulting in transportation blocks and mass casualties. Mountain torrent disaster occurs frequently depends on the weather of mountain’s country. It can be distinguished and predicted by monitoring and early warning system to provide the safety reference in disaster presentation and reduction. This paper presents the analysis and key management of monitoring and early warning system of mountain torrent which mainly includes monitoring system and early warning system of water and rain information. In order to achieve better effect of disaster prevention and reduction, establish an organization system of mass observation and mass prevention and enhance training propaganda. The monitoring system of water and rain information mainly includes network layout of water and rain monitoring station, information acquisition, information transmission and communication networking and configuration of devices. Early warning system of mountain torrent is composed of platform-based early warning system of torrent defense and early warning system of torrent mass observation and mass prevention. And also appended short description of publicity and training includes popularization of knowledge about disaster prevention; preparations of disaster prevention, maintenance and operation of monitoring and warning facilities, publicity and rehearsal of proposal.
PHP Frameworks: I want to break free (IPC Berlin 2024)Ralf Eggert
In this presentation, we examine the challenges and limitations of relying too heavily on PHP frameworks in web development. We discuss the history of PHP and its frameworks to understand how this dependence has evolved. The focus will be on providing concrete tips and strategies to reduce reliance on these frameworks, based on real-world examples and practical considerations. The goal is to equip developers with the skills and knowledge to create more flexible and future-proof web applications. We'll explore the importance of maintaining autonomy in a rapidly changing tech landscape and how to make informed decisions in PHP development.
This talk is aimed at encouraging a more independent approach to using PHP frameworks, moving towards a more flexible and future-proof approach to PHP development.
State of ICS and IoT Cyber Threat Landscape Report 2024 previewPrayukth K V
The IoT and OT threat landscape report has been prepared by the Threat Research Team at Sectrio using data from Sectrio, cyber threat intelligence farming facilities spread across over 85 cities around the world. In addition, Sectrio also runs AI-based advanced threat and payload engagement facilities that serve as sinks to attract and engage sophisticated threat actors, and newer malware including new variants and latent threats that are at an earlier stage of development.
The latest edition of the OT/ICS and IoT security Threat Landscape Report 2024 also covers:
State of global ICS asset and network exposure
Sectoral targets and attacks as well as the cost of ransom
Global APT activity, AI usage, actor and tactic profiles, and implications
Rise in volumes of AI-powered cyberattacks
Major cyber events in 2024
Malware and malicious payload trends
Cyberattack types and targets
Vulnerability exploit attempts on CVEs
Attacks on counties – USA
Expansion of bot farms – how, where, and why
In-depth analysis of the cyber threat landscape across North America, South America, Europe, APAC, and the Middle East
Why are attacks on smart factories rising?
Cyber risk predictions
Axis of attacks – Europe
Systemic attacks in the Middle East
Download the full report from here:
https://sectrio.com/resources/ot-threat-landscape-reports/sectrio-releases-ot-ics-and-iot-security-threat-landscape-report-2024/
Welcome to the first live UiPath Community Day Dubai! Join us for this unique occasion to meet our local and global UiPath Community and leaders. You will get a full view of the MEA region's automation landscape and the AI Powered automation technology capabilities of UiPath. Also, hosted by our local partners Marc Ellis, you will enjoy a half-day packed with industry insights and automation peers networking.
📕 Curious on our agenda? Wait no more!
10:00 Welcome note - UiPath Community in Dubai
Lovely Sinha, UiPath Community Chapter Leader, UiPath MVPx3, Hyper-automation Consultant, First Abu Dhabi Bank
10:20 A UiPath cross-region MEA overview
Ashraf El Zarka, VP and Managing Director MEA, UiPath
10:35: Customer Success Journey
Deepthi Deepak, Head of Intelligent Automation CoE, First Abu Dhabi Bank
11:15 The UiPath approach to GenAI with our three principles: improve accuracy, supercharge productivity, and automate more
Boris Krumrey, Global VP, Automation Innovation, UiPath
12:15 To discover how Marc Ellis leverages tech-driven solutions in recruitment and managed services.
Brendan Lingam, Director of Sales and Business Development, Marc Ellis
GDG Cloud Southlake #33: Boule & Rebala: Effective AppSec in SDLC using Deplo...James Anderson
Effective Application Security in Software Delivery lifecycle using Deployment Firewall and DBOM
The modern software delivery process (or the CI/CD process) includes many tools, distributed teams, open-source code, and cloud platforms. Constant focus on speed to release software to market, along with the traditional slow and manual security checks has caused gaps in continuous security as an important piece in the software supply chain. Today organizations feel more susceptible to external and internal cyber threats due to the vast attack surface in their applications supply chain and the lack of end-to-end governance and risk management.
The software team must secure its software delivery process to avoid vulnerability and security breaches. This needs to be achieved with existing tool chains and without extensive rework of the delivery processes. This talk will present strategies and techniques for providing visibility into the true risk of the existing vulnerabilities, preventing the introduction of security issues in the software, resolving vulnerabilities in production environments quickly, and capturing the deployment bill of materials (DBOM).
Speakers:
Bob Boule
Robert Boule is a technology enthusiast with PASSION for technology and making things work along with a knack for helping others understand how things work. He comes with around 20 years of solution engineering experience in application security, software continuous delivery, and SaaS platforms. He is known for his dynamic presentations in CI/CD and application security integrated in software delivery lifecycle.
Gopinath Rebala
Gopinath Rebala is the CTO of OpsMx, where he has overall responsibility for the machine learning and data processing architectures for Secure Software Delivery. Gopi also has a strong connection with our customers, leading design and architecture for strategic implementations. Gopi is a frequent speaker and well-known leader in continuous delivery and integrating security into software delivery.
Smart TV Buyer Insights Survey 2024 by 91mobiles.pdf91mobiles
91mobiles recently conducted a Smart TV Buyer Insights Survey in which we asked over 3,000 respondents about the TV they own, aspects they look at on a new TV, and their TV buying preferences.
Pushing the limits of ePRTC: 100ns holdover for 100 daysAdtran
At WSTS 2024, Alon Stern explored the topic of parametric holdover and explained how recent research findings can be implemented in real-world PNT networks to achieve 100 nanoseconds of accuracy for up to 100 days.
The Metaverse and AI: how can decision-makers harness the Metaverse for their...Jen Stirrup
The Metaverse is popularized in science fiction, and now it is becoming closer to being a part of our daily lives through the use of social media and shopping companies. How can businesses survive in a world where Artificial Intelligence is becoming the present as well as the future of technology, and how does the Metaverse fit into business strategy when futurist ideas are developing into reality at accelerated rates? How do we do this when our data isn't up to scratch? How can we move towards success with our data so we are set up for the Metaverse when it arrives?
How can you help your company evolve, adapt, and succeed using Artificial Intelligence and the Metaverse to stay ahead of the competition? What are the potential issues, complications, and benefits that these technologies could bring to us and our organizations? In this session, Jen Stirrup will explain how to start thinking about these technologies as an organisation.
Le nuove frontiere dell'AI nell'RPA con UiPath Autopilot™UiPathCommunity
In questo evento online gratuito, organizzato dalla Community Italiana di UiPath, potrai esplorare le nuove funzionalità di Autopilot, il tool che integra l'Intelligenza Artificiale nei processi di sviluppo e utilizzo delle Automazioni.
📕 Vedremo insieme alcuni esempi dell'utilizzo di Autopilot in diversi tool della Suite UiPath:
Autopilot per Studio Web
Autopilot per Studio
Autopilot per Apps
Clipboard AI
GenAI applicata alla Document Understanding
👨🏫👨💻 Speakers:
Stefano Negro, UiPath MVPx3, RPA Tech Lead @ BSP Consultant
Flavio Martinelli, UiPath MVP 2023, Technical Account Manager @UiPath
Andrei Tasca, RPA Solutions Team Lead @NTT Data
Observability Concepts EVERY Developer Should Know -- DeveloperWeek Europe.pdfPaige Cruz
Monitoring and observability aren’t traditionally found in software curriculums and many of us cobble this knowledge together from whatever vendor or ecosystem we were first introduced to and whatever is a part of your current company’s observability stack.
While the dev and ops silo continues to crumble….many organizations still relegate monitoring & observability as the purview of ops, infra and SRE teams. This is a mistake - achieving a highly observable system requires collaboration up and down the stack.
I, a former op, would like to extend an invitation to all application developers to join the observability party will share these foundational concepts to build on:
DevOps and Testing slides at DASA ConnectKari Kakkonen
My and Rik Marselis slides at 30.5.2024 DASA Connect conference. We discuss about what is testing, then what is agile testing and finally what is Testing in DevOps. Finally we had lovely workshop with the participants trying to find out different ways to think about quality and testing in different parts of the DevOps infinity loop.
2. Rehan Jamil, Li Ming, Irfan Jamil, and Rizwan Jamil
ISSN : 2028-9324 Vol. 4 No. 2, Oct. 2013 287
desulfurization unit in a large scale in USA, Germany and Japan demonstrate good yields at proper control. Despite of
increasingly rising total installed capacity of power plants in the above 3 countries over the past few years, total amount of
emission of sulfur dioxide drops on a year-on-year basis [3]-[4].
2 DEVELOPMENT COURSE OF FLUE GAS DESULFURIZATION TECHNOLOGY
2.1 INITIAL STAGE
Between the early of 1970s and end of 1970s, the 1st generation of flue gas desulfurization technology based on the
limestone wet process started to be applied in power plants, which included limestone wet process, lime wet process, MgO
wet process, dual-alkali process, etc. The 1st generation of flue gas desulfurization units was mainly installed in the USA and
Japan [2].
2.2 DEVELOPING STAGE
Between the early of 1980s and end of 1980s, the flue gas desulfurization technology based on the dry process and semi-
dry process was shaped, including spray drying, limestone injection into the furnace and activation of calcium process,
circulating fluidized bed process, pipe jetting, etc. Amid the period, the wet limestone cleaning process experienced rapid
development. Particularly, great changes had been made on use of single tower, as well as design and general arrangement
of the tower.
Japan Ebara proposed the dry flue gas desulfurization process as early as in the early of 1970s and made joint research
with Japan Atomic Energy Research Institute (JAERI). In 1980s, a pilot plant of 24,000 Nm3
/h in the Indiana of USA was built
for testing. Currently, over 20 test units and pilot projects have been put in place in Japan, USA, France, Russia, etc. For the
semi-dry flue gas desulfurization technology, it is outcome of joint efforts made by the American JOY and Denmark NIRO
[2],[5]. Since the 1st industrial unit adopting such process was built in the North America in 1978, the process has been
experiencing rapid growth, which is thus utilized in 12 countries and market shares have arrived at 10.29%. The rotary spray
dry process (SDA), suitable for medium and low-sulfur coal in the past, is now upgraded to be compatible with high-sulfur
coal. Since the process may function with good economic return, it is recognized as the 1980s‘FGD technology [6].
2.3 MATURE STAGE
With entry into the 1990s, many developing countries (especially the Asian countries) have stipulated some emission
standards designed to control acid rain. After development of two generations, FGD technology has advanced into a new
period, i.e. simplification of redundant system in the desulfurization process greatly benefits operation reliability.
3 CURRENT SITUATION OF FLUE GAS DESULFURIZATION TECHNOLOGY
With FGD technology experiencing development and application over the past decades, some processes have been
eliminated for technical or economic reasons. On the other hand, main processes, such as limestone/lime humidification
process, flue gas circulating fluidized bed process, limestone injection into the furnace and activation of calcium process,
spray drying process and upgraded humidification ash circulation NID process, etc., have grown up and become more
mature, which may be demonstrated in the following areas:
3.1 HIGH DESULFURIZATION EFFICIENCY
The optimized wet process may yield desulfurization efficiency of more than 95%, spray drying and NID process 85%-90%,
improved limestone injection into the furnace and activation of calcium process 85%, circulating fluidized bed process more
than 90% in the case of same rate of utilization of absorbent as the wet process.
3.2 HIGH UTILIZATION
With in-depth understanding of chemical reaction principle of desulfurization process, appropriate control of reaction
process and correct selection of structure material, as well as quality assurance from the desulfurization unit manufacturer, a
high efficiency of utilization for the desulfurization system is achievable to ensure that it operates with the boiler in a
synchronized step.
3. Application and Development Trend of Flue Gas Desulfurization (FGD) Process: A Review
ISSN : 2028-9324 Vol. 4 No. 2, Oct. 2013 288
3.3 SIMPLIFIED PROCESS FLOW
Taking the limestone-gypsum wet process as an example, the process was first proposed by British Royal Chemical
Corporation. Since 1970s, the process experienced 3 generations of development in the industrial applications over the past
3 decades, as a result of which the wet-process limestone/lime-gypsum flue gas desulfurization technology has well
developed and widely applied [7]-[8].
The 1st generation of wet-process limestone/lime-gypsum flue gas desulfurization technology was put into the industrial
applications since the early of 1970s. At that time, the desulfurization absorption unit was made up of 3 towers and 1 tank,
i.e. Pre-scrubber, scrubber, oxidization tower and reaction interim storage tank [9], which is illustrated in fig.1
Fig. 1. 1st
Generation of wet-Process Limestone/Lime-Gypsum Flue Gas Desulfurization System Schematic
Approximately in the middle of 1980s, the 2nd generation of wet-process limestone/lime-gypsum flue gas desulfurization
technology occurred. The absorption unit using the technology puts the pre-scrubber and scrubber together and eliminates
the interim storage tank [10], as illustrated in fig.2
Fig. 2. 2
nd
Generation of wet-Process Limestone/Lime-Gypsum Flue Gas Desulfurization System Schematic
In the 1990s, the 3rd generation of wet-process limestone/lime-gypsum flue gas desulfurization technology took shape, in
which such unit was configured to integrate the pre-scrubber, scrubber and oxidization tower together to increase the
velocity of flue gas, reduce the diameter of tower and acquire less floor space, as shown in fig.3. Utilization of the process
may greatly cut the investment of desulfurization unit, approximately down 30-50% for initial investment; essentially address
fouling, blocking problems, and enhance the system safety and reliability (≥95%); improve exposure of gas to liquid in the
tower by making improvement on tower‘s internal parts to bring the rate of desulfurization to a higher level; make wider the
commercial application of desulfurization byproduct based on research and development on recovery and utilization of such
byproduct [11]-[12].
4. Rehan Jamil, Li Ming, Irfan Jamil, and Rizwan Jamil
ISSN : 2028-9324 Vol. 4 No. 2, Oct. 2013 289
Fig. 3. 3rd
Generation of wet-Process Limestone/Lime-Gypsum Flue Gas Desulfurization System Schematic
1)Lower system power consumption
2)Less investment and costs of operation
Over the recent years, simplified desulfurization process and optimized design parameters, system investment and
operation costs are lowered by 1/3-1/2. Development and application of new wet desulfurization process such as integration
of cooling tower with flue duct, deletion of GGH, multiple boiler with one tower, multiple tower with one boiler, etc. The flue
gas desulfurization processes, survey made by the coal research institute under the International Energy Agency shows that
the wet-process desulfurization accounts for 85% of total installed capacity of flue gas desulfurization units across the world.
The wet-process desulfurization is mainly applied in countries, like Japan (98%), USA (92%), Germany (90%), etc. The
limestone-gypsum wet desulfurization process, the most mature technology, the most applications, the most reliable
operation in the world, may have rate of desulfurization of more than 90%. Its byproduct-gypsum may be reused, or disposed
of [13]-[14].
4 DEVELOPMENT TRENDS OF FLUE GAS DESULFURIZATION TECHNOLOGY
With rapid progress in science and technology over the recent years, some new desulfurization technologies have been
launched in foreign countries, but majority of which is still under test. Industrial applications in a large scale have not yet
started [15]. Please see Table.1 for flue gas treatment technologies under R&D in foreign countries.
Table 1. Current Situations on Research of Desulfurization Technology in Foreigner Countries
Desulfurization
process
Category Research institute Desulfurization Current situations
NOx SO technology Dry process
US Department of Energy Pittsburgh
Energy Technology Centre (PETC) and
NOxSO company
α-Al2O3 ball soaked
with sodium
carbonate
Industrial
demonstration
SNOx technology Dry process Demark Haldor-Tops Φ A/S company Ammonia gas Industrial pilot test
DESONOx /REDOX
process
Dry process
Germany Degussa A.G and Stadtwerk
M ünster
Ammonia gas Industrial pilot test
E-SOX process Semi-dry Process US Acurex company Lime cream slurry
Industrial application
in limited locations
Urea process Wet process
Medeleev Institute of Chemical
Technology of Russia
Urea
Industrial application
in limited locations
LBL pHoSNOx process Wet process
US Laurence Berkeley Lab and Bechel
company
Sodium sulphite Industrial pilot test
Seawater
desulfurization
Wet process US Marilyn Bechtel Group Seawater plus lime Industrial pilot test
5. Application and Development Trend of Flue Gas Desulfurization (FGD) Process: A Review
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There tends to a diversified, comprehensive and resource-oriented development of flue gas desulfurization process.
4.1 DIVERSIFICATION
There are over 200 flue gas desulfurization technologies in place. Recently, some new ones have taken shape, including
calcium process, sodium process, magnesium process, manganese process, ammonia process, carbon process, seawater
process, biological process, plasma process, membrane process, iron process, amine process, etc.
4.2 COMPREHENSIVENESS
Dust collection desulfurization integration technology, simultaneous desulfurization and denitration technology, multi-
pollutant-aid removal technology are also on the agenda.
4.3 RESOURCE-ORIENTED
Now, various flue gas desulfurization technologies tend to turn byproduct into useful resources, such as recovery and
utilization of gypsum in the limestone-gypsum desulfurization technology, recovery and utilization of sulfur ammonium,
phosphorus ammonium in the ammonia desulfurization technology, recovery and utilization of sulfuric acid and sulfur in the
activated carbon desulfurization technology, etc.
The general trend of wet-process limestone/lime-gypsum flue gas desulfurization technology, which is applied in the
most areas, is to upgrade and optimize the system and make the equipment smaller so as to reduce investment and
operation cost. Turning byproduct into useful resources and producing no secondary pollution are also the objective of the
process.
5 CURRENT SITUATIONS AND DEVELOPMENT TRENDS OF FLUE GAS DESULFURIZATION TECHNOLOGY IN CHINA
China‘s research on flue gas desulfurization technology started at an earlier date, around 1950s. However, its
development falls behind and is limited to purification of nonferrous metallurgical off gas and sulfuric acid tail gas.
5.1 DEVELOPMENT COURSE OF CHINA’S FLUE GAS DESULFURIZATION TECHNOLOGY
As early as in the 1950s, the nonferrous metallurgical industry started to make acid with flue gas with concentration of
sulfur dioxide of higher than 0.5% through a purification process; carried out purification and recovery of sulfur dioxide in tail
gas in sulfuric acid units; recovered and produced ammonium sulfate in nitrogen fertilizer plants by purifying sulfur dioxide
tail gas; built and put into operation a number of large-scale plants [16].
Flue gas desulfurization test in coal-fired power plants started in the early of 1970s. Test and research on 6 different flue
gas desulfurization processes were carried out in Shanghai Yangpu Power Plant, Shanghai Zhabei Power Plant, Sichuan Baima
Power Plant and Douba Power Plant, Hunan 300 Plant and Songmuping Power Plant. Up to now, pilot test on spray drying
process in the Baima Power Plant, phosphorous amine fertilizer process in the Douba Power Plant and iodine-containing
activated carbon absorption flue gas desulfurization in the Songmuping Power Plant have been subject to technical
evaluation. However, pilot test on the rest of 3 flue gas desulfurization technologies has not made progress for technical,
management and economic reasons [17]-[18].
Currently, there are 8 kinds of flue gas desulfurization technology available in the country, including iodine-containing
activated carbon process, sodium sulfite circulation process, amine-acid process, spray drying process. However, such
processes are applied in some medium and small-size flue gas desulfurization units completing pilot test and are not
advanced to a level suitable for large flue gas desulfurization units in coal-fired power plants.
To stimulate research and development of FGD technology across the country, the government scheduled to import a
number of advanced technologies and units in a controlled way during the 7th and 8th Five-year Plan, as shown in Table.2
Such demonstration projects involve varieties of mature process, such as wet process from Japan, dry process and semi-dry
process from the Europe and USA. Despite of advanced equipment, reliable operation and high level of automation, such
projects cost too much on investment and operation, making difficult to be widely applied across the country. Deficiency of
proprietary intellectual property rights may not benefit sustainable development of China‘s desulfurization technology [18].
6. Rehan Jamil, Li Ming, Irfan Jamil, and Rizwan Jamil
ISSN : 2028-9324 Vol. 4 No. 2, Oct. 2013 291
Table 2. List of China Imported FGD Units
Imported by Process
Amount of flue gas
from boiler/(Nm3
.h-1
)
Desulfurizing
agent
Efficiency
(%)
Operation
since
Licensor
Shengli Oilfiled
Ammonia
sulfur/ammonium
process
2,100,000 NH3 H2SO4 90 1979 Japan Toyo
Nanjing Steel and
Iron Works
Basis aluminum
sulfate process
51,800
Al2(SO4 )
Al(OH)3
95 1981 Japan Dowa
Chongqing
Luohuang Power
Plant
Wet limestone-
gypsum process
1,087,000
Limestone
slurry
95 1992
Japan Mitsubishi
Corporation
Shangdong
Huangdao Power
Plant
Simple spray drying
process
300,000
Quicklime,
Coal ash
70 1995
Power
Development Co.,
Ltd of japan Inc.
Nanjing Xiaguan
Power Plant
Limestone injection
into furnace and
activation of calcium
process
795,000 Limestone 75 1997 Finland IVO
Taiyuan
Generation Plant
Small high-velocity
horizontal flow
600,000 Limestone 80 1996 Japan Hitachi
Guangxi Nanning
Chemical Plant
Simple limestone-
gypsum process
50,000 Ca(OH)2 70 1996 Japan Kawasaki
Chengdu Thermal
Power Plant
Electron beam
process
300,000 NH3 80 1997 Japan Ebara
Shangong
Weifang
Simple lime 100,000 Hydrate lime 70 1995 Japan Mitsubishi
Chemical Plant Gypsum process slurry Corporation
Over the recent decade, particular technological breakthrough was made on China‘s medium and small coal-fired
industrial boiler flue gas desulfurization process, including direct injection of lime/limestone into the furnace and boiling bed
limestone dry-process flue gas desulfurization, calcium alkali process, amine alkali process, sodium alkali process and
magnesium alkali process, etc. Currently, there are over 40 coal-fired industrial boiler flue gas desulfurization processes,
dozens of which operate well, with emission of sulfur dioxide up to the state permissible level. Please see Table.3 for China‘s
own typical FGD technologies [18]-[19].
7. Application and Development Trend of Flue Gas Desulfurization (FGD) Process: A Review
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Table 3. Typical FGD Technologies in China
Desulfurization
process
Developed by Desulfurizing agent Scale (Nm3
/h)
Rate of
desulfurization (%)
Current situations
Sodium sulphite
process
Hubei No.300
Plant, etc.
Pure caustic 10,000 90 Complete pilot test
Phosphorous
ammonia fertilizer
process
Xi’an Thermal
Power Institute,
Sichuan University,
etc.
Slag
coke/phosphate
ore
10,000 70-95 Industrial
demonstration
Basic aluminium
sulfate process
Chongqing
Tianyuan Chemical
Plant Power
Station
Basic aluminium
sulfate process
100,000 95 Industrial
application
Managanses
dioxide process
Sichuan University Manganese dioxide
slurry
7,000 >80 Complete pilot test
and evaluation
Phosphate ore
desulfurization
process
Hunan University Carbonate ore 5,000 63-70 Complete pilot test
Venturi
desulfurization
process
Environmental
Protection
Research Institute
for Electric Power
Alkaline solution 75,000 63-70 Complete pilot test
Rotary spray
drying process
Tsinghua University Ca(OH)2 70,000 85 Complete pilot test
and not in
industrial
application
Limestone
injection into the
furnace and
activation of
calcium process
Shenyang Liming
Company
Limestone 50,000 75 Complete industrial
test
Desulfurization
flue gas circulation
sulfurization
Beijing College of
Light Industry,
Tsinghua University
Limestone 20,000 >80 Industrial
demonstration
Activated coke
process
Nanjing Electric
Power Automation
Equipment General
Corporation
Activated carbon 200,000 95 Industrial
demonstration
Iron Process Dalian University of
Technology, etc.
Iron 100,000 95 Industrial
application
Circulating process Chengdu West
China Chemical
Research Institute
Lon liquid 10,000 98 Complete industrial
test
5.2 CURRENT SITUATIONS ON CHINA’S FLUE GAS DESULFURIZATION TECHNOLOGY
Recently, following China proprietary R&D and import, digestion, innovation, China‘s flue gas desulfurization industry had
made considerable progress and the units adopting our proprietary process are sized to meet the target on reduced
emission of sulfur dioxide set for the 11th Five-year Plan [25].
8. Rehan Jamil, Li Ming, Irfan Jamil, and Rizwan Jamil
ISSN : 2028-9324 Vol. 4 No. 2, Oct. 2013 293
5.2.1 CONSIDERABLE PROGRESS MADE ON FLUE GAS DESULFURIZATION INDUSTRY IN THERMAL POWER PLANTS
By the end of 2008, the total installed capacity of flue gas desulfurization units in thermal power plants across the country
has gone beyond 379 million kW, accounting for 66% of total installed capacity in thermal power plants. In 2008, China put
into operation 100,000-level kW and higher desulfurization units of thermal power generating units, totaling 110 million kW,
down by 5.2% compared with that in 2007 [20]. Currently, over 10 flue gas desulfurization processes have been applied,
including limestone-gypsum wet process, flue gas circulating fluidized bed process, seawater desulfurization process,
desulfurization dust collection integration process, semi-dry process, rotary spray drying process, limestone injection into the
furnace and activation of calcium process, activated coke absorption process, electron beam process, etc. Like the situation
in foreign countries, the limestone-gypsum wet-process flue gas desulfurization technology takes a leading position. Statistics
show that such process has been utilized for more than 90% of thermal power plant projects already in operation, being
constructed and signed [19]. China‘s flue gas desulfurization industry has grown up to a level able to complete design,
manufacturing and general contracting of desulfurization projects sized for 100 million kW level [20],[23].
5.2.1.1 LOCALIZATION RATIO OF DESULFURIZATION EQUIPMENT UP TO MORE THAN 90 %
Key equipment in the limestone-gypsum wet-process flue gas desulfurization technology, like slurry circulating pump,
vacuum belt filter, cyclone, boost-up fan, flue gas heat exchanger, flue gas damper, etc., are able to be designed and
manufactured in the country. For example, a series of desulfurization slurry circulating pump manufactured by Shijiazhuang
Pump Company have been applied in 96 desulfurization projects; desulfurization boost-up fan manufactured by Chengdu
Power Machinery Factory has been applied in 100 desulfurization projects; gas-gas heat exchanger manufactured by
Shanghai Boiler Plant has been applied in 60 desulfurization projects. In terms of purchase cost, equipment and materials
adopting the limestone-gypsum wet-process flue gas desulfurization technology have localization ratio of around 90%, some
flue gas desulfurization projects more than 95% and equipment for other processes more than 90%.
5.2.1.2 PROPRIETARY INTELLECTUAL PROPERTY RIGHTS AVAILABLE FOR MAIN FLUE GAS DESULFURIZATION TECHNOLOGY
Technology through Chinese own R&D and import, digestion and innovation, China has boasted main flue gas
desulfurization technology of proprietary intellectual property rights suitable for 300MW-level thermal power generating
unit, which has been tested in real units for more than 1 year. For example, China Power Investment Corporation Yuanda
Environmental Protection Engineering Co., Ltd. Has had full picture of MHI double contact flow scrubber wet-process
desulfurization technology, AEE spray tower wet-process desulfurization technology and AEE dry-process desulfurization
technology, and then created YD-BSP wet-process flue gas desulfurization technology of proprietary intellectual property
rights, which has been successfully applied in Nanyang Power Plant 2×300MW flue gas desulfurization project and Huaneng
Haikou 2×125MW units flue gas desulfurization project; limestone-gypsum wet-process flue gas desulfurization technology of
proprietary intellectual property rights developed by Suyuan Environmental Protection Engineering Co., Ltd. has been
successfully applied in Taicang Harbor Environmental Protection Generating Co., Ltd. Phase-II 2×300MW flue gas
desulfurization project; Beijing Guodian Longyuan Environmental Protection Engineering Co., Ltd. has boasted limestone-
gypsum wet-process flue gas desulfurization technology of proprietary intellectual property rights following digestion,
absorption and innovation of German technology, which has been successfully applied in Jiangyin Sulong Generating Co.,Ltd
phase-III 2×330MW flue gas Desulfurization project [20]-[21].
After two years ‘operation, the above three projects have been subject to the post-project evaluation. Experts view that
flue gas desulfurization technology of proprietary intellectual property rights owned by three companies is technically
mature, operationally reliable and highly compatible and thus is up to the internationally advanced level [22]. Even though
we also own other processes of proprietary intellectual property rights, they are only suitable for thermal power units of
200MW and lower. Some units of this kind are just put into operation or being constructed, thus requiring test for a certain
period.
5.2.1.3 AVAILABLE CAPABILITY OF GENERAL CONTRACTING OF FLUE GAS DESULFURIZATION PROJECT
By the end of 2008, about 50 enterprises, based on their technologies, funds and human resources, have experiences in
undertaking turnkey contracting of flue gas desulfurization project of 100MW and higher, in which more than 20 ones get
involved in total installed capacity of more than 3,000MW and 13 ones in that of 10,000MW. Beijing Guodian Longyuan
Environmental Protection Engineering Co., Ltd., China Power Investment Corporation Yuanda Environmental Protection
Engineering Co., Ltd, and other five companies total contractual capacity of more than 40,000MW, respectively [23].
9. Application and Development Trend of Flue Gas Desulfurization (FGD) Process: A Review
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5.2.1.4 CONSIDERABLE DECREASE OF COST OF DESULFURIZATION PROJECT
With considerable improvement of localization ratio of flue gas desulfurization equipment and market competition, cost
of flue gas desulfurization project drops by big margin. For example, the cost of new thermal power generating unit flue gas
desulfurization project of 300MW and higher has dropped from previous RMB 1,000 Yuan or above to existing RMB 200
Yuan or above per kilowatt. The cost of existing thermal power generating unit flue gas desulfurization project of 200MW
and lower has dropped below RMB 250 Yuan per kilowatt.
5.2.2 KEY ENTERPRISES WITH RENOWNED BRAND EMERGED
For top 20 desulfurization companies in 2008, their contractual capacity accounts for 90.8% of the total, operation
capacity for 78.3% of the total, operation capacity of the same year for 87.1% of the total. Compared with 2007, the ranking
of top 10 desulfurization companies happen to no change, with Tsinghua Tongfang Environment Co., Ltd, and China Datang
Technologies & Engineering Co., Ltd. among top 10. Please see Table.4 for overview of main desulfurization companies in
China [24].
Table 4. Overview of Main Desulfurization Companies (by the end of 2008)
Item Unit name MW Total capacity
by contract MW
Technical source Proprietary
technology
1
Beijing Guodian Longyuan
Environmental Protection
Engineering Co., Ltd.
68,829 German Steinmüller limestone-gypsum
wet-process desulfurization technology
Longyuan wet-
process flue gas
desulfurization
technology
2
China Boqi Environmental
Protection Scientific and
Technological (Holding)
Co., Ltd.
52,496 Japanese Kawasaki spray tower
technology
None
3 Wuhan Kaidi Electric
Power Environmental
Protection Co., Ltd.
49,700 Wet-process flue gas desulfurization
technology from US B&W Co.
None
4 Fujian Longking
Environmental Protection
Co., Ltd.
42,360 Limestone-gypsum wet process, flue gas
circulating fluidized bed dry process
desulfurization technology from Germany
LLB
None
5 China Power Investment
Corporation Yuanda
Environmental Protection
Engineering Co., Ltd.
41,822 AEE wet-process spray and MHI double
contact flow scrubber
BSP wet process
6 Zhejiang University Insigma
Holding Electromechanical
Engineering Co., Ltd
39,300 France ALSTOM limestone-gypsum wet
process
None
7 Tsinghua Tongfang
Environment Co., Ltd.
26,872 AEE wet-process spray double contact
flow scrubber
None
8 Shandong Sanrong
Environmental Protection
Engineering Co., Ltd.
26,420 Wet process from Lurgi Bishchev None
9 China Huadian Engineering
Co., Ltd.
23,662 Wet-process flue gas desulfurization
technology from US MET Co.
None
10 Zhejiang Tiandi
Environmental Protection
Engineering Co., Ltd.
19,050 Wet-process desulfurization technology
from US B&W
None
10. Rehan Jamil, Li Ming, Irfan Jamil, and Rizwan Jamil
ISSN : 2028-9324 Vol. 4 No. 2, Oct. 2013 295
5.3 DEVELOPMENT TRENDS OF FLUE GAS DESULFURIZATION TECHNOLOGY IN CHINA
Compared with foreign flue gas desulfurization technology, China‘s flue gas desulfurization technology is challenged by
deficiency of mature proprietary flue gas desulfurization technology not applied in an economic and large scale in terms of
boiler in some large coal-fired power stations; less factor given to recovery of sulfur resource; less application of large
amount of byproduct, i.e., gypsum. In general, in view of existing problems, our flue gas desulfurization technology tends to:
5.3.1 ENHANCE CAPACITY FOR INDEPENDENT INNOVATION ON FLUE GAS DESULFURIZATION TECHNOLOGY
Up to now, only minority of desulfurization companies in the country boast flue gas desulfurization technology of
proprietary intellectual property rights for 300MW and majority has to utilize the foreign technology for digestion and
absorption but lack of capacity of re-innovation. On the other hand, we have to pay technology-introduced and used fees to
foreign company. Preliminary calculations show that about RMB 320 million Yuan have been paid to foreign companies on
licensing and RMB 300 million Yuan on royalty. Thus, improvement on our own independent innovation capacity of flue gas
desulfurization technology is one of the trends guiding the development of flue gas desulfurization technology in the country
[25].
5.3.2 REINFORCE DESULFURIZATION MARKET SUPERVISION
Recently, a great number of desulfurization environmental protection companies spring up like mashroom after rain to
meet the requirements from dramatic expansion of desulfurization market. However, lack of supervision on market access,
and detailed system in place to specify competence, talent, performance and financing for desulfurization companies lead
to desulfurization companies of different quality mixed up together. Some flue gas desulfurization projects built by
desulfurization companies are not acceptable. Furthermore, lack of or improper supervision on bid invitation or bidding
process for flue gas desulfurization projects takes place. Some bid invitation or bidding processes are not put in place.
5.3.3 RAISE THE OPERATION RATIO OF DESULFURIZATION DEVICE
According to the insiders, the operation ratio of existing flue gas desulfurization units already built is less than 60%, thus
not functioning as expected on reduced emission of sulfur dioxide. The reasons behind it are: first of all, some desulfurization
companies highly rely upon foreign technology and equipment, as a result of which they are not able to have full picture of
the technology being utilized, some systems are not designed well at the initial stage and individual equipment is difficult to
be repaired in case of failure; secondly, desulfurization electric power price system for some old power plants is not put in
place; thirdly, supervision or monitor on routine operation of desulfurization equipment is lacked due to slack law
enforcement; fourthly, some power plants shutdown desulfurization systems for their own benefits.
5.3.4 RESOURCE-ORIENTED UTILIZATION
China‘s reserves on sulfur deposit ranks the 2nd in the world. However, in 2004, our production of sulfur resource
amounted to 8.1 million tons and imported 7.34 million tons; in 2006, they are 9.16 million tons and 9.5 million tons,
respectively. China also boasts of abundant supply of gypsum. Gypsum, byproduct of desulfurization process, is not well
applied, thus leading to secondary pollution. Therefore, the limestone-gypsum desulfurization process commercially available
in foreign countries may not be suitable for the country. Instead, due factor shall be given to proper utilization of byproduct
resource [26].
In addition, deletion of bypass flue duct, selection of gas discharging methods after desulfurization, deletion of GGH,
economic operation and continuous monitor of flue gas are also key topics on flue gas desulfurization process under research
in the country.
CONCLUSION
Flue gas desulfurization (FGD), is a desulfurization technology widely applied and highly efficient and is recognized by
developed countries as the most economic and workable solution in the future. Flue gas desulfurization originated from the
wet process experiment in 1930s. The desulfurization unit adopting limestone cleaning process in UK London Power
Company and ammonia cleaning process in Canadian Cominco Company an earliest industrial were the earliest units of this
kind. Flue gas desulfurization is designed to use desulfurizing agent to remove sulfur dioxide in flue gas based on the gas
11. Application and Development Trend of Flue Gas Desulfurization (FGD) Process: A Review
ISSN : 2028-9324 Vol. 4 No. 2, Oct. 2013 296
absorption, gas adsorption or catalytic conversion desulfurization mechanism. Amid the development and industrial
application over the past few decades, over 200 desulfurization processes by making use of different desulfurizing agents or
varying desulfurization mechanism had been made available in countries across the world, over 10 of which, however, are
widely applied.
ACKNOWLEDGMENT
The authors would like to acknowledgement material support from China Power Investment Yuanda Environmental
Protection Engineering Co., Ltd and financial support from Yunnan Normal University, Kunming, China.
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