Rapid Detection of Moisture in Chlorine Processing
Plant Name: North American Electrolysis Plant
Industry: Chemical
Product(s): Chlorine
Application
Chlorine is used as an intermediate chemical in the production of high-demand products such as bleach, acids, and PVC. To achieve the quality required for each product, chlorine manufacturers know the importance of measuring moisture levels in the chlorine gas at key points as it moves through the process toward liquefaction.
Electrolysis plants create hydrogen and chlorine from a brine solution. Chlorine gas generated from the anolyte of the electrolysis tank generally contains between 0.5 to 2.0 vol% H2O (figure 1). The sample is then cooled and filtered to remove brine, subsequently emerging as wet chlorine gas. The wet gas flows to a drying tower where it is treated with sulfuric acid to reduce the moisture content down to ppm levels. Acid mist remaining in the dry chlorine gas flows to a dry chlorine tower where it is removed. The dry chlorine gas is then sent to a reciprocating compressor for liquefaction.
Challenges
Learning immediately if there is ineffective drying or ingress of moisture into the process is critical to safe and smooth operation. For example, the presence of even trace levels of moisture after the dry chlorine tower causes corrosion of the chlorine compressor and contaminates the product with chlorine hydrate and hydrous iron chloride. When a specified level of corrosion is detected, the process must be shut down to correct these issues.
Since manufacturers must respond rapidly to the presence of moisture, they rely on sensors for alerts. A conventional moisture sensor with a range of 1-5 ppm could have a T90 response time of an hour (note: T90 is the amount of time it takes for the sensor to measure 90% of the maximum analyte level). After measuring moisture in the process, the conventional sensor must recover quickly to allow it to recognize another event. Due to sensor saturation, recovery time from large concentration spikes of moisture can take more than 24 hours. A slow-recovery sensor could miss the presence of additional moisture and lead to further contamination and corrosion.
If a sensor is not operating, the manufacturer cannot detect moisture in the chlorine and must stop the process. Unfortunately, sensors can deteriorate and deliver inaccurate measurements due to contact with the process. This deterioration leads to maintenance costs that are associated with recalibrating or replacing the sensor.
Solution
To maximize chlorine production, manufacturers need to prevent corrosion of equipment and increase the time between shutdowns. To support safe and continued chlorine production, Yokogawa’s TDLS8000 Laser Analyzer responds accurately to low quantities (in ppm) of moisture, recovers quickly after a moisture detection event, and simplifies maintenance. Since it uses solid-state electronics, the sensor will not drift and will not require re-calibration.
The TDLS8000 can respond to single-digit ppm step changes and recover from the presence of moisture in as fast as one second. Since the sensor does not contact the process, it does not degrade and will provide accurate readings over a longer period of time than conventional sensors; therefore, manufacturers are alerted more reliably to immediate, potential issues.
Since device design is modular and provides isolation from the process, maintenance is greatly simplified. In an extreme event such as a lightning strike or contaminated gas purge, any part of the TDLS8000 can be serviced or repaired in the field. For added ease, all modular components are automatically detected by the analyzer and no additional configuration is required.
In addition to measurement, the TDLS8000 Laser Analyzer assists in troubleshooting by storing 50 days of spectral data and diagnostics. This enables manufacturers to review spectral images and attain positive verification that an event was caused by moisture and not an analyzer fault. This information can be conveniently accessed via a USB flash drive, remotely via a network, or through the HMI.
Key Advantages
• High sensitivity in the sensor enables users to address process issues more quickly. Minimum range is 0-30 ppm H2O. 
• The sensor’s rapid recovery times enable faster corrective action to address moisture issues.
• Since the sensor does not drift, maintenance and shutdown costs are substantially reduced.
• TDLS is a non-contacting measurement that never requires calibration or consumables.
相关行业
-
大宗石化
无论是生产石化产品、无机化学品还是中间体,化工企业都面临着持续的成本和利润压力,需要在保持安全合规运营的同时,以高效及时的方式将产品交付给客户。此外,企业还需应对原料与能源价格的波动,并能向市场提供具有盈利性的产品组合。
横河电机长期服务于全球大宗化学品市场。凭借产品、解决方案和行业专业知识,横河电机深谙市场和生产需求,并将与客户携手,在工厂的整个生命周期内提供可靠且具成本效益的解决方案。
-
基础化工
横河电机长期服务于全球大宗化学品市场。凭借产品、解决方案和行业专业知识,横河电机深谙市场和生产需求,并将与客户携手,在工厂的整个生命周期内提供可靠且具成本效益的解决方案。
-
石化
石化企业的需求具有多样性。为了在当今竞争激烈的市场中脱颖而出,生产商正致力于提升质量与生产效率。横河电机基于在该领域长期且广泛的经验,可为这些需求提供量身定制的解决方案。
-
化工
化工厂存在连续生产与批次生产两种流程,两者对控制系统需求各异。连续工艺要求控制系统具备高稳定性与可靠性,避免因故障导致生产线停机;而批次工艺则强调灵活调整配方、工序等参数的能力。两类系统均需实现产品质量追溯管理,并支持非常规操作执行。横河电机凭借丰富的产品组合、资深系统工程师团队及全球销售服务网络,可为不同工艺流程提供定制化解决方案。
相关产品&解决方案
-
TDLS8000在线气体分析仪
横河电机的新TDLS™8000功能强大,将诸多先进工业特性集成于一台耐用设备中。其平台设计适用于现场测量,无需进行样品抽取和样品处理。
-
氧分析仪
氧分析仪在燃烧控制、工艺质量、安全环保等领域提供有价值的测量数据。