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Thursday, October 18, 2012

#83 - TGI Whitepaper - BOF End-Point Prediction

By Joseph Maiolo and Doug Zuliani
 
Using a process control and optimization system first developed for EAFs, an advanced statistical methodology can predict end-point carbon from off-gas composition trends and process parameters.
 
The Expert Furnace System Optimization Process (EFSOP®) developed by Tenova Goodfellow Inc. (www.tenovagroup.com) is a dynamic process control and optimization system based on the real-time measurement of off-gas composition. Originally developed for electric arc furnaces, it has been applied recently for end-point control in basic oxygen furnace steelmaking. Through a three-year funding grant from Sustainable Development Technology Canada, a not-for-profit foundation, this first EFSOP system for the BOF was installed on a 165-ton BOF, used to convert a nominal mix of 120 tons hot metal and 45 tons of scrap into high-performance automotive steel.

Figure 1: Schematic of the EFSOP system applied to a basic oxygen furnace.
 
The EFSOP installation for oxygen steelmaking is shown in Figure 1. The system is made up of: • A patented water-cooled off-gas sampling probe.

  • The EFSOP off-gas analyzer, for sample conditioning and analysis. A customized purging system keeps the probe clear of dust and eliminates plugging.
  • A passive infrared gas pyrometer(s) for off-gas temperature.
  • A supervisory control and data acquisition (SCADA) system.
The sampling probe, designed to withstand the harsh conditions of steelmaking, is installed through a port in the panels of the BOF fume system. The probe is located sufficiently downstream of the combustion gap to ensure that the sampled off-gases are mixed completely and combusted. The gases are drawn through a heated sample line to the EFSOP analyzer, where they are analyzed in real-time for oxygen, CO2, CO, and hydrogen. Two infrared pyrometers, one located at the combustion gap and a second one at the downstream sampling location, are used to measure the temperature of the off-gas at the two locations.

This first application of the EFSOP analysis system proved highly reliable, with over 99% uptime. In addition to sampling and analysis, the EFSOP analyzer performs a secondary function of controlling the back-purging of the sampling circuit. To ensure a valid off-gas sample throughout the blowing period, the system is only purged during natural breaks in the process (e.g., during charging and tapping). This is more than sufficient to keep the probe from plugging.

Composition measurements, as well as operational alarms and outputs from the analyzer are linked to the plant’s PLC network. The EFSOP SCADA computer is linked to the same network and reads and logs off-gas data, as well as all relevant process data at a frequency of one second. In total over 300 BOF parameters are sampled and logged in real time. Both historical and real-time plots of the data are made available to the operator. Off-gas data, process data, and EFSOP system alarms are emailed to Tenova Goodfellow, allowing process engineers to follow the operation remotely.

Figure 2: A profile of the measured downstream off-gas composition and temperature for a typical heat.

Figure 2 shows a sample plot of the measured off-gas composition and temperature profile for a random heat. The pattern displayed is typical and fairly consistent from one heat to the next. This BOF vessel operates with an open-combustion system (not the more common, suppressed combustion system found in most BOP shops), which explains the high levels of oxygen and CO2 indicated in the figure. Large variations in the off-gas composition at the start of the heat are typical for this shop. The variation is due to that affect of additions (e.g. lime) to the vessel at the start of the blow and pre-ignition conditions in the off-gas. The off-gas temperature is fairly constant over the course of the heat and varies from 1,600° to 1,800° Kelvin, except for the sharp decrease at the end of the heat. Very little CO and hydrogen are present, indicating complete combustion of the off-gas with air entering the combustion gap. After ignition, the CO2 ramps up as the lance is lowered and decarburization begins. The slight delay is attributed to the early oxidation of elements with a higher affinity for oxygen than for carbon (e.g. Si, Mn). Near the conclusion of the heat, both CO2 and temperature diminish significantly as carbon is depleted. The pattern is mirrored in the concentration of oxygen.

End-point detection

A primary objective of BOF steelmaking is to achieve some desired end-point temperature and grade composition at the lowest cost and in the shortest time. To do so, operators rely on standardized BOF practices and static charge models. These models are mass and energy balances that account for the initial conditions (scrap and hot metal temperatures and compositions) and the desired end-point conditions of the bath and slag, and indicate to the operator the expected total oxygen and fluxes that are required to reach that end-point. The blow is stopped once the pre-determined amount of oxygen has been reached. In addition to the charge model, the operator relies on other cues, such as the change in the color of the flame at the mouth of the vessel and a characteristic drop in the steam flow in the fume system cooling circuit, to identify when carbon has been depleted.
 
In practice, static charge models have a limited ability to predict end-point because they do not account for process dynamics. End-point accuracy also is affected by uncertainties in the initial conditions (e.g. mass, temperature and composition of the hot-metal, mass and type of scrap and fluxes added) and by variations in the efficiency of the oxygen lance, not only within a heat as the height and flow of the lance is varied, but also from heat to heat as the lance wears and the geometry of the vessel changes with refractory wear.
 
The limitations of the charge-model based end-point determination are demonstrated in Figures 3a and 3b, showing the error between the aim and measured end-point. The data was collected over one month of operation and is based on 400 heats. Temperature and bath carbon were measured by “bomb Celox” samples taken at the conclusion of the heat, as dictated by the charge model.

Figure 3: Error distribution in end-point carbon and temperature, using the charge model.

Figure 3a is a histogram of the error in carbon (measured as points of carbon, i.e. % × 100). The average error is about 0.1 points of carbon with a standard deviation of 0.8. The measured carbon at first sample was, on average, lower than the aim. This particular operation tends to over-blow its heats, with respect to carbon. Figure 3b is a histogram of the error in temperature (measured in °Celcius). As indicated in that figure, the average error in temperature is -20°C with a standard deviation of 25°. The temperature at first sample was, on average, higher than the aim; indicating that the heats are also over-blown with respect to temperature. Over-blowing impacts not only yield and productivity but also has a significant environmental impact.
 
If too much carbon is removed from the bath it must be replaced in the ladle to meet cast specifications. The extra carbon, first removed and then replaced, unnecessarily contributes to additional greenhouse gas emissions. Despite the tendency to overblow, approximately 7% of the heats were found to be more than 1 point of carbon above the aim; meaning that the operator had to re-blow the heat after the first sample.
 
EFSOP end-point detection
 
The EFSOP strategy for end-point detection uses real-time off-gas composition, along with measured process variables, to determine more accurately when the temperature and carbon end-points have been reached and signal the end of the heat. The online information is used in two ways: Advanced multivariate statistical modeling of the process; and dynamic state-space modeling of the process.
 
The statistical component, of the EFSOP end-point predictor, is based on the fact that the off-gas profile is fairly consistent, from heat to heat, with respect to shape. It is well accepted that the kinetics of decarburization are driven by the rate of mass transfer of dissolved carbon to the reaction interface between liquid metal and iron oxide. At high carbon concentrations (approximately greater than 0.3% carbon), the mass transfer rate is sufficiently high that the rate of decarburization is controlled by the rate of oxygen supply to the steel bath. Below this concentration, the rate of decarburization is limited by the rate of carbon diffusion to the reaction interface. This mechanism is evident in the off-gas profile where CO2 concentrations tend to remain fairly constant throughout the heat, and then to decrease sharply as carbon is depleted near the end of the blow.
 
This feature, along with other process inputs, was used to develop a statistical model of the profile of decreasing carbon consumption at the end of the blow. An evaluation of the methodology was conducted to determine the accuracy with which bath carbon is predicted. Over 200 heats were evaluated off-line. Figure 4 plots the results and shows the cumulative percent of heats that fall within the error interval indicated. The error is determined as the absolute difference between the predicted carbon and the measured carbon. The figure shows that the statistical model for carbon end-point is able to predict within one point of carbon about 95% of the time. This is a significant improvement over the plant’s historical operation, in which the carbon end-point was within one point of the aim for only 85% of the time.
 
The EFSOP dynamic model component makes use of real-time off-gas composition to calculate a dynamic mass and energy balance over the course of the blow — unlike the static charge model approach, in which only initial and final conditions are taken into account. The off-gas composition and temperature are used to calculate, in real-time, carbon, oxygen and enthalpy balances of the gas-phase of the process. From the carbon balance, the rate of decarburization is determined over the course of the blow. The oxygen balance provides information not only of the total rate of oxidation, but also the extent of post-combustion (CO to CO2) and the relative fraction of oxygen reacting with either bath carbon or participating in slag-forming reactions. An enthalpy balance of the gas phase makes it possible to calculate energy leaving the system with the off-gas. Any remaining energy is either lost through the walls of the vessel or attributed to heating the bath/slag or melting and heating of scrap.

Figure 4: Cumulative distribution of the prediction interval using EFSOP end-point model.
 
Predicting end-points accurately is improved with the use of dynamic off-gas information, which makes it possible to estimate the properties of the bath and slag over the course of the heat. The EFSOP advantage over static charge models, where only initial and final conditions are taken into account, is that the off-gas information provides a measure of oxygen utilization over the course of the heat and allows a dynamic evaluation of the actual efficiency of the oxygen imparted to the process for both bath refining and post combustion. Variability in the efficiency with which oxygen is delivered to the bath is not unexpected and is affected by lance wear, variations in the height of the lance, variations in the lance rate, refractory wear, among other factors.

The greatest challenge encountered in the development of the dynamic model has been tuning the model to the process. The accuracy in the initial conditions (i.e. initial mass and composition of scrap and hot metal), as well as the accuracy in the measured final bath conditions (i.e. measured end-point carbon and temperature and slag analysis), will influence significantly the predictive ability of the model. Uncertainties in the precision of the input data are common in steelmaking, however the current EFSOP installation confirms that efforts to improve input data precision will ensure a reliable tool for end-point prediction.

Future work

Off-line evaluation of the EFSOP approach to end-point prediction indicates that carbon end-point can be identified with greater accuracy than is possible with the plant’s current charge-model approach. The EFSOP off-gas based statistical model is able to predict carbon within one point of the measured value, for 95% of cases. Based on these results, the plant has implemented the EFSOP off-gas system online for end-point carbon prediction. Online trials have started and are on-going at this writing.

A dynamic model of the BOF process, based on real-time offgas measurements, has been developed and tuned. The model is being validated off-line and initial results are promising.

In a subsequent phase of this project the EFSOP off-gas analysis system will be used to control post-combustion in the BOF vessel. Building upon its successes in optimizing post-combustion in EAF steelmaking, Tenova Goodfellow aims to develop a system to control and optimize post-combustion in the BOF. The off-gas model provides a dynamic measure of the extent of post-combustion occurring naturally in the process. Intentions are to use this information, in a feedback approach, to control both oxygen flow (primary for decarburization, and secondary for post-combustion) and lance height, in a dual-flow oxygen lance. It’s expected that energy recovered through the implementation of postcombustion will allow an increase in the scrap to hot-metal ratio to increase productivity in this hot-metal short operation. A reduction in the hot-metal to scrap ratio also will provide environmental benefits by reducing greenhouse gas emissions (kilograms of CO2 per ton of steel produced) from the integrated blast furnace/BOF process, measured as total CO2 per ton of steel produced.

Joseph Maiolo is the manager of Technology & Development, and Doug Zuliani is the director of Sales & Business Development, both with Tenova Goodfellow Inc., Mississauga, ON. Contact them at goodfellow@ca.tenovagroup.com

http://www.tenovagroup.com/
6711 Mississauga Road, Suite 200
Mississauga, ON, L5N 2W3 Canada
Phone +1 (905) 567 3030
Fax +1 (905) 567 3899

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Friday, October 12, 2012

#82 - Arcelor Mittal Chooses Tenova Again

ARCELOR MITTAL ONCE AGAIN CHOOSES TENOVA MELT SHOPS TO SUPPLY A LADLE FURNACE OF 300 TONS CAPACITY.
 
Milan, August 30th, 2012 - Tenova Melt Shops has recently been contracted by Arcelor Mittal to provide the turnkey supply of a 300 tons Ladle Furnace that will operate in integrated cycle in the Arcelor Mittal plant (ex Sidmar) located at Gent, Belgium, and specialized in high quality steel for automotive sector.


 


The turnkey technology will be operative in December 2013. This contract follows the Twin Ladle Furnace of 320 tons already supplied in 2006 to Arcelor Mittal Poland for the plant located at Dabrowa Gornicza and confirms the high reliability of Tenova Melt Shops technology.
 
Arcelor Mittal, Dabrowa Gornicza, Poland
Sidmar aka Arcelor-Mittal, Gent, Belgium
 
Tenova is a worldwide supplier of advanced technologies, products and engineering services for the iron & steel and mining industries providing innovative, integrated solutions for complete process areas. Tenova's network companies operate in 26 countries on 5 continents with more than 4,900 people.
 
For more information visit the company’s website at http://www.tenovagroup.com/
 
For information on gas analyzer systems, give Mike or Dave at Nova a call, or send us an e-mail.
1-800-295-3771
sales at nova-gas dot com
websales at nova-gas dot com
 
 
Ghent photo By Peter Dedecker, some rights reserved, Copyright © 2008
Dąbrowa Górnicza photo by Petr Štefek Copyright © 2008
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Thursday, October 4, 2012

#80 - Unique Application – Portable 8 Channel CO analyzer

There is a saying that a person with two watches never knows what time it is. What about someone with 8 watches?
 
A few years ago, we had an inquiry from a major automobile manufacturer for a multi-channel carbon monoxide analyzer. It had to have 8 separate channels of gas analysis and it had to be portable. The 8 channels were to be isolated from each other and have separate displays for each reading. This instrument was essentially 8 analyzers in one. The only common parts were the cabinet and some power supply components.
 
The intended use for this unusual instrument was to monitor 8 separate zones inside an automobile while driving on the test track.
 
 
 
The analyzer was ranged as follows:
Channels 1-6: 0-500 PPM CO
Channels 7-8: 0-2000 PPM CO
 
There was an individual 0-5V recorder output for each channel. The analyzer outputs were to be connected to the customer’s data recorder so that the entire test track results could be uploaded later to a personal computer for data analysis.
 
Each channel had its own sample pump and flow meter. So the instrument actively pulled the samples to itself through a tubing bundle which was extracting from each zone of interest in the automobile.
 
The response time was about 20-30 seconds per 90% of step change. The electrochemical sensors used in this instrument were customer-replaceable.
 
We thought that this analyzer was odd enough that we would likely never build one again. We were wrong. Copies of this analyzer have been purchased several times since by major auto manufacturers around the world.

Addendum Jan 31, 2013 - We just completed another two of these units for another major auto manufacturer - this time for General Motors in the USA. Two further clarifications:
  • The instrument has the Sample In ports located on the front of the cabinet for easy access to the operator. The Vents are located on the back of the cabinet.
  • There are 0-1V recorder output connections for each channel located on the front and the back panels. Again, this is for easy access for the operator.



 
Here are the Specifications :
 
METHOD OF DETECTION:
Customer replaceable electrochemical sensors

RANGES:
Readout 1-6: 0-500 PPM
Readout 7-8: 0-2000 PPM
 
RESOLUTION:
1 PPM in PPM Range
 
ACCURACY AND REPEATABILITY:
Better than 1% of full scale, based on a 0-2000 PPM range
 
DRIFT:
Less than 1% of full scale per day
 
RESPONSE TIME (T-90):
20-30 seconds per 90% of step change
 
AMBIENT TEMP. RANGE:
0-50°C (32° to 122°F)
 
LINEARITY:
Better than 1% of full scale
 
POWER:
12 VDC and rechargeable battery option
 
OUTPUT OPTIONS:
0-5 V
 
 
 
 
For information on these and other gas analyzer systems, give Mike or Dave at Nova a call, or send us an e-mail.
1-800-295-3771
sales at nova-gas dot com
websales at nova-gas dot com
http://www.tenovagroup.com/


Test track photo copyright © 2009 Truss, Bob & Jan of Holland
Bus test track photos Copyright © 2009, Mercedes-Benz-Blog. All rights reserved.
http://mercedes-benz-blog.blogspot.ca/2009/02/setra-s-411-hd-as-visitor-bus-at.html
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Tuesday, October 2, 2012

#79 - Nova Blog on WordPress now too


We are mirroring our blog on WordPress now @ http://novagas.wordpress.com/
 
As a start, we have published the 10 most popular posts.
 
Going forward, new posts will appear on Blogger and on WordPress.


1-800-295-3771
sales at nova-gas dot com
websales at nova-gas dot com
 
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Thursday, September 20, 2012

#77 - Sample Preparation for Corrosive Gases

Exhaust gas analysis is frequently required for incinerators and other combustion processes that produce corrosive waste gases such as SO2 and HCl.

Some gases are inherently corrosive while others are soluble and can produce acids when dissolved in condensate that is formed as gases cool. If these gases do not require analysis, the best approach is to remove them before analysis.

Ideally, the sampling system in these cases should be designed to continuously extract, filter, and scrub the flue gas before it goes to the gas analyzer.

Our preferred approach is to filter the gas at the sample point while it is still hot. This ensures that the particulate is removed prior to formation of condensate. After that, condensate formation may occur freely without risk of creating a particulate slurry and plugging the sample lines.




The 7240 / 7300 Series Systems have been designed for this purpose. The sample gases are drawn into the high temp probe and continue on into the heated particulate filter. Next, they travel to the water wash system where they are cooled and scrubbed of corrosives. They are then sent to the gas analyzer cabinet for final analysis.

FEATURES
  • Economical and reliable sample gas cleaning system
  • Allows analysis of acidic flue gases
  • Can be used on samples with high particulate
  • Only small amount of 'make-up' water required

We have used these systems on medical waste incinerators, municipal waste gasifiers, and other processes that produce corrosive or aggressive gases.

For information on these and other gas analyzer systems, give Mike or Dave at Nova a call, or send us an e-mail.

1-800-295-3771
sales at nova-gas dot com
websales at nova-gas dot com
http://www.nova-gas.com/
https://twitter.com/NOVAGAS
http://www.linkedin.com/company/nova-analytical-systems-inc-
http://www.tenovagroup.com/

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Tuesday, September 11, 2012

#76 - Live Security Platinum Virus

My home computer was recently infected with a nasty virus called Live Security Platinum. This particular virus is carried into and installs on a computer via a Trojan horse virus. It seems to have loaded onto my computer while I was downloading a graphics pattern for a construction diagram that I was producing.

This rotten malware takes control of the computer and poses itself as an anti-virus program. It flashes the usual fake warnings about dangerous virus and malware infections. To be saved, all you have to do is purchase a key code. The ‘program’ will then remove all of the ‘infections’.


The particularly annoying thing about this virus is that it prevents many other programs from starting. It may also block internet links, claiming that they are not trustworthy. The Remove Program function in Windows Control Panel also does not seem to work.

Fixing the problem requires consulting the internet using another computer that is not infected.

Some websites have posted the activation key for this fake antivirus ‘program’.

http://www.im-infected.com/rogue/live-security-platinum.html
64C665BE-4DE7-423B-A6B6-BC0172B25DF2

http://malwaretips.com/blogs/live-security-platinum-virus/
AA39754E-715219CE

I forget which key I used. This key doesn’t actually remove the virus, but it does cause it to settle down a little and allow other programs to work.

To remove the virus, I used a free program called Chameleon by Malwarebytes. It worked quite well. It even resolved some other issues possibly caused by other viruses on the system.

http://www.malwarebytes.org/

This virus annoyed me because interfered with productivity and caused me to miss a minor deadline on a task. Thankfully, the fix was fairly simple and conclusive. There was a satisfying irony to using its own activation code to help deactivate and ultimately remove it.

Happy surfing!

NOVA Analytical Systems
1-800-295-3771
sales at nova-gas dot com
websales at nova-gas dot com
www.nova-gas.com
http://twitter.com/#!/NOVAGAS
http://www.tenovagroup.com/
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Thursday, August 2, 2012

#70 - Post #5 is our most popular blog post (Syngas and Gasification)



The folks at GEK Gasifiers have a nice introduction to this process.


This is not a new concept. It has been around for many years. 

Gasification and vehicles have long traveled together.


One great thing about this idea is that is very scalable. You can build a small gasifier out of a soup can. There are also mid-range gasifiers that can be thought of as ‘garage-scale’. And there are large industrial plant-scale gasifiers.

Gasification can serve as an intermediate step between many types of feedstocks and many other production processes as the chart below demonstrates.


Each of the processes mentioned in the chart above require a gas input of a specific makeup. This is why an analyzer system is frequently required between the output of the gasifier plant and the input of the receiving process.

We are frequently approached by manufacturers and educational institutions also. The end-users may be researching and developing a new gasifier design. Or they may be tuning a gasifier system for optimum performance and gas production. Having a reliable gas analyzer to measure oxygen / carbon monoxide / carbon dioxide / hydrogen / methane is an important part of this process.

The Nova 970 Series Syngas and Gasification Analyzers have been specifically designed with this application in mind. The gas that comes out of a gasifier frequently has conditions and constituents that are detrimental to an analytical instrument. Because of this reality, we have produced an instrument that is industrially hardened and user-friendly.



1. Process pipe  2. Probe and Filter  3. 970 Gas Analyzer
4.  Wire Connections available to customer


The materials of construction and the straight-forward layout of this instrument gives us a great deal of confidence in recommending it to our customers. If you have a gasifier and need analysis of your produced gas, think about buying a Nova. We have bench top configurations for temporary or intermittent analysis. We have wall–mount configurations for permanent continuous analysis.

For information on these and other gas analyzer systems, give Mike or Dave at Nova a call, or send us an e-mail.
1-800-295-3771
sales at nova-gas dot com
websales at nova-gas dot com
http://www.nova-gas.com/
http://www.tenovagroup.com/

If you have a LinkedIn account, search for Nova Analytical Systems under Companies and follow us if you want.

Update note Oct 2012 - two other posts have since surpassed Post #5.
#71 - Murdoch Puts Nova in Prison
#53 - What is CONSTEEL?

Update note Nov 2012 - This post about the most widely-read post has itself now become our most widely-read post. I'm sure there's a deep lesson on feedback dynamics somewhere in there. We have certainly seen a great deal of interest in our gasification analyzers.

Update note April 2014 - This post is again back on top as the most widely read post.
Following behind are:
#102 - Triple Point Analysis of Biogas at Palm Oil Facility
#149 - BombGirls Update




Pictures:

4 Processes of Gasification copyright © GEK Gasification
http://gekgasifier.com/gasification-basics/

Black & white picture - origin unknown

Gasifier scales photo from left to right
http://tube.7s-b.com/Prototype+Camp/
http://gekgasifier.com/gek-imbert-gasifier/
http://www.lignite.com/?id=78

Vehicleshttp://www.build-a-gasifier.com/
http://www.wired.com/autopia/2009/03/new-x-prize-ent/
http://driveonwood.com/forum/228


Chart on chemical processes fed by gasification adapted from The American Energy Security Study (2007), a USA initiative lead by the Southern States Energy Board (SSEB).

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