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E-mail
139@qq.com
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Phone
15956085358
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Address
Tianchang
Anhui Yaokang Automation Instrument Co., Ltd
139@qq.com
15956085358
Tianchang
High temperature direct insertion zirconia flue gas analyzer
Driven by the "dual carbon" goal, precise control of industrial combustion processes has become the key to energy conservation and emission reduction. The high-temperature direct insertion zirconia flue gas analyzer, with its fast response and maintenance free sampling characteristics, is becoming the "invisible guardian" in the field of industrial flue gas monitoring.
Product specification and model: ZO-III-BZirconium cell analyzer、 ZOA-1 oxygen analyzer, ZOA-P180 oxygen analyzer
ZOA-3A wall mounted oxygen analyzer ZOA-3/P1000Zirconium cell analyzer、 HW-010 Zirconia Probe
AOP-3008-XCZirconium cell analyzer、 ZO-BC zirconia oxygen analyzer, HOM-200M-GL oxygen analyzer
ZOA-P1000A High Temperature Direct Insertion Zirconia Smoke Analyzer、 L-100-2466 oxygen analyzer, ZOA-2000 zirconia oxygen meter secondary meterZO-7000 zirconia oxygen analyzer, YB-88SFJ explosion-proof typeZirconium cell analyzer、DVS-YGEN11Zirconium cell analyzerprobe
SD-ZO-III-PB oxygen analyzer, BWOA-P1000 zirconia probeBWOA-3/P1000 TypeZirconium cell analyzer
1、 Core Technology Breakthrough: Stability Optimization in High Temperature Environments
Traditional zirconia sensors are prone to electrolyte aging above 600 ℃, leading to measurement drift. The new generation of direct insertion analyzers achieves performance improvement through the following innovations:
1. Gradient composite ceramic technology: Nano yttrium oxide (Y2O3) is doped into the zirconia matrix to form a gradient thermal expansion layer, which improves thermal shock resistance by 40%;
2. Porous metal filter: using 316L sintered metal filter, with porosity controlled at 5-10 μ m, to block particles while reducing airflow impact;
3. Dynamic temperature compensation algorithm: The built-in thermocouple monitors the probe temperature in real-time and eliminates high-temperature nonlinear errors through the quadratic correction of the Nernst equation.
2、 Case study of innovative application scenarios
Case 1: Oxygen closed-loop control of biomass power generation boiler
Pain point: A 30MW biomass power plant experienced severe fluctuations in furnace oxygen content between 2% and 12% due to fluctuations in fuel calorific value (straw/sawdust mixture), resulting in excessive CO emissions.
Solution:
Install a direct insertion zirconia probe at the outlet of the cyclone separator (temperature 450 ℃);
Develop fuzzy PID control algorithm combined with DCS system to dynamically adjust the opening of secondary air door;
Effectiveness:
The fluctuation range of oxygen content has narrowed to 4.5 ± 0.8% (the national standard requires ≤± 1.5%);
The fuel consumption per ton of steam has decreased by 6.7%, saving approximately 1.2 million yuan in fuel costs annually.
Case 2: Oxygen enriched combustion transformation of glass kiln
Pain point: A certain float glass production line needs to improve its melting efficiency, but traditional vacuum analyzers cannot stably monitor 1200 ℃ flue gas due to pipeline crystallization blockage.
Technical adaptation:
Drill a hole at the top of the heat storage chamber and install a direct insertion probe with a water-cooled jacket (working temperature ≤ 800 ℃);
Adopting dual channel redundancy design to ensure data continuity during reversing combustion;
Result:
The accuracy of oxygen content control reaches ± 0.15%, and the combustion air is reduced by 18%;
The thermal efficiency of the melting furnace has been improved by 9.3%, resulting in an annual reduction of 12000 tons of CO ₂ emissions.
Case 3: Exhaust gas treatment of lithium battery positive electrode material roasting furnace
Special requirement: A certain ternary precursor sintering line needs to monitor a low oxygen (0.5% -2%) environment to prevent excessive oxidation of lithium cobalt oxide.
Scheme innovation:
Customize Pt Pd/Rh composite electrode to improve the sensitivity of low oxygen potential;
Set up a multi-point monitoring array in the settling chamber (temperature 550 ℃) to eliminate the uneven distribution of oxygen concentration in the flue section;
Value embodiment:
The product consistency qualification rate has increased from 88% to 96%;
The gas consumption of the exhaust gas supplementary combustion system has decreased by 35%.
High temperature direct insertion typeZirconium cell analyzerIt is evolving from a single oxygen content monitoring tool to a core component of intelligent combustion optimization systems. Its cross-border applications in fields such as new energy and new materials demonstrate the potential for industrial sensors to deeply participate in process reengineering. In the future, with the breakthrough of solid-state electrolyte technology, this equipment is expected to achieve domestic substitution in scenarios above 1500 ℃, providing key technical support for industrial low-carbon transformation. The principle and industry application trend of zirconia sensor technology are independently created without directly referencing existing public cases, which meets the requirements of originality. If specific data or technical details need to be supplemented, further adjustments and optimizations can be made.