The invention concerns a process for monitoring the condition of the protective jacket of a burner, which consists of fireproof material, and in particular a burner lance for firing of a rotary tubular kiln for the production of cement clinker from raw powder. The invention also concerns a device for performing this process.
In a cement clinker production line, calcinated raw cement powder is converted into cement clinker in the sinter zone of a rotary tubular kiln. For the heating of the rotary tubular kiln, a long burner lance is inserted into the kiln outlet end through the stationary kiln outlet housing, at whose mouth fuels introduced into the lance burn by forming a burner flame. Instead of liquid or gaseous fuels, solid fuels are increasingly used for this purpose, in particular coal dust, but also pneumatically transportable waste fuels as secondary fuels.
The cement clinker is ejected in the red-hot condition via the stationary kiln outlet housing downwards onto a clinker cooler, usually a grid cooler, in which the cement clinker is cooled. In this process, part of the hot cooler air trapped in the kiln outlet housing is used for the combustion process as hot secondary air, which in the stationary kiln outlet housing flows from below into the rotary kiln end under flow direction. This secondary air, which is at a high temperature of 1100° C. or more, is charged with cement clinker dust. Apart from the kiln outlet housing, the burner lance in particular is exposed to mechanically abrasive and high thermo-chemical wear. The current practice of the technology is therefore to surround the meter-long lance with a protective jacket of fireproof material, as a rule a tamped fireproof compound (Brochure 8-100d “Rotary tubular kiln systems” of KHD Humboldt Wedag AG, Page 28, FIG. 3). Despite the use of such a protective jacket, the service life of a burner lance is not unlimited, even if it is equipped with its own air cooling. Damage to the fireproof material, particularly in the area of the burner tip, has previously not been able to be determined reliably enough during operation of the rotary tubular kiln. Such damage quickly leads to damage to the burner nozzle head, and thus to costly repair work to the burner. Replacement of a rotary kiln burner or its nozzle head results in undesirable interruptions in operation of the rotary kiln, and thus the operation of the complete cement clinker line, so that such a replacement should only be carried out when absolutely necessary.
The invention is therefore based on the task of developing a process and a device by means of which the current condition of the protective jacket of fireproof material, and in particular of the rotary tubular kiln burner lance, can be monitored safely and reliably during operation of the kiln system.
This task is solved by the invention by the measures of the process described under claim 1 and the device with the features described under claim 4. Other beneficial features of the invention are described in the relevant sub-claims.
In the monitoring system described by the invention, a ring main extending around the circumference of the jacket, which consists of fireproof brick, or particularly of a tamped, formed compound, is embedded in the fireproof compound of the burner lance protective jacket in the area of the burner tip, by means of which damage to the protective jacket and the ring main at any point on the circumference generates a monitoring signal. If on the other hand individual thermo-elements distributed around the circumference were embedded in the protective jacket as temperature measurement elements, this would only enable monitoring at specific points, because damage to the fireproof compound due to detachment of pieces in the area between two neighboring temperature sensors could not be detected by means of a temperature increase. Thermo-elements would also be relatively expensive, would burn through in the event of severe damage to the fireproof compound and would then have to be replaced.
The ring main embedded in the fireproof compound of the burner lance protective jacket can be a thin-walled tubular ring main, containing gas, particularly air at over-pressure, in which the comparatively inexpensive tubular ring main burns through at the corresponding point on the circumference following damage to the fireproof compound. A pressure sensor measures the drop in pressure of the air and immediately generates the monitoring signal, e.g. a visual and/or acoustic signal in the control station of the cement works with the rotary kiln system.
In accordance with a further feature of the invention, the ring main embedded in the fireproof compound of the protective jacket can be an annular metal wire loop forming part of an electrical circuit, in which again the metal wire loop burns through at a point on the circumference in the event of severe damage to the protective jacket, breaking the electrical circuit and generating the monitoring signal.
In all variants described by the invention, sufficient time is allowed following generation of the monitoring signal, to shut down the rotary tubular kiln and replace the burner, before costly damage to the burner and/or other unplanned failures occur. When relining the fireproof compound, a new monitoring ring main is simply embedded.
The invention and its further features and benefits are described in greater detail by means of the design examples shown in schematic form in the figures.
These show:
The burner lance shown in
In the case of the burner lance of the design example shown in
The invention can be used not only for the monitoring of the condition of the fireproof compound in rotary kiln burners, but also for monitoring the condition of the fireproof material of other components subject to high mechanical and thermal/chemical stresses, such as the condition of immersion tubes of hot gas separating cyclones in cement works consisting of ceramic material etc.
Number | Date | Country | Kind |
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10 2005 053 820.7 | Nov 2005 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP06/10672 | 11/8/2006 | WO | 00 | 5/5/2008 |