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  • Innovative Applications of Insertion Thermal Mass Flowmeters in the Wastewater Treatment Industry

    Innovative Applications of Insertion Thermal Mass Flowmeters in the Wastewater Treatment Industry

    The wastewater treatment industry plays a critical role in protecting public health and the environment. It involves the collection, treatment, and disposal of wastewater from households, businesses, and industries.

    One of the most critical processes in wastewater treatment is airflow measurement, which is used to monitor and control the flow of air through the treatment plant. Insertion thermal mass flowmeters are an innovative solution for this application.

    Insertion thermal mass flowmeters are designed to be inserted directly into a pipe or duct for air flow measurement from aeration blowers. They are highly accurate and reliable, even in harsh industrial environments. They are also cost-effective, as they require minimal installation and maintenance costs, and do not require additional hardware or accessories to function.

     

    Applications of Insertion Thermal Mass Flowmeter in the Wastewater Treatment Industry

     

    1. Measurement of Flow of Aeration Air

    One of the most important applications of insertion thermal mass flowmeters in the wastewater treatment industry is in the measurement of aeration air flow.

    Aeration is the process of introducing air into wastewater to promote the growth of microorganisms that break down pollutants. Accurately measuring aeration air flow is essential for the proper operation of the treatment plant.

    If aeration air is insufficient will prevent growth of microbes so poor treatment whereas high aeration air has kill microbes due to hunger. High aeration air increase energy consumption.

    To ensure that the plant is not over or under-aerating the wastewater. Insertion thermal mass flowmeters can accurately measure the flow of air used for aeration, providing precise control over the aeration process.

     

    2. Measurement of Flow of Compressed Air

    Another innovative application of insertion thermal mass flowmeters in the wastewater treatment industry is in the measurement of compressed air flow.

    Compressed air is often used in wastewater treatment plants for various processes, such as agitation and mixing. Insertion thermal mass flowmeters can accurately measure the flow of compressed air, enabling precise control over the process and helping to optimize energy consumption.

     

    3. Measurement of flow of Exhaust Air

    In addition, insertion thermal mass flowmeters can be used to measure the flow of exhaust air in wastewater treatment plants.

    Exhaust air carries odors and pollutants from the treatment process and must be properly treated before it is released into the environment. Insertion thermal mass flowmeters can accurately measure the flow of exhaust air, providing critical data for compliance with environmental regulations.

     

    Conclusion

    In conclusion, Insertion thermal mass flowmeters are an innovative solution for air flow measurement in the wastewater treatment industry. They are cost-effective, accurate, and reliable, even in harsh industrial environments. They can be used for the measurement of aeration flow, compressed air flow, and exhaust airflow in wastewater treatment plants.

    With their ability to perform in various conditions and applications, insertion thermal mass flowmeters are becoming a go-to solution for the wastewater treatment industry.

    Contact us to know more about how using insertion thermal mass flowmeter can benefit your facility.

  • How to Measure Compressed Air Flow Accurately & Efficiently?

    How to Measure Compressed Air Flow Accurately & Efficiently?

     

    Compressed Air Flow is a vital resource in various industrial applications from operating pneumatic tools and machinery for performing required functions either in production or processes.

    However, managing compressed air usage can be challenging as it is often one of the most expensive forms of energy used in a facility. One of the key factors in managing compressed air usage is the accurate measurement of compressed air flow rate.

     

    Why accurate measurement of compressed air is important?

    Accurate measurement of compressed air flow is essential for industrial facilities in several ways.

    1. Optimizing the operation of compressed air systems: By monitoring the flow rate, facilities can identify and correct leaks, adjust compressor settings, and reduce the use of unnecessary air. This can result in significant cost savings, as compressed air is often one of the most expensive energies used in a facility.
    2. Improving Efficiency of equipment and processes: For example, in a paint spray booth, the compressed air flow rate must be carefully controlled to ensure that the paint is applied evenly. If the flow rate is too low, the paint will be poorly atomized and will not be applied evenly. If the flow rate is too high, the paint will be over-atomized, resulting in wasted paint and higher costs.
    3. Compliance with Industry Standards: Accurate flow measurement is also necessary to meet industry standards and regulations, such as ISO 50001 for energy management and OSHA regulations for employee safety.
    4. Leak Detection and Reduction: Accurate flow measurement enables real-time monitoring of compressed air usage and a higher turndown ratio helps to identify and reduce leaks in compressed air systems, reducing energy consumption and costs.
    5. Energy Management: Accurate flow measurement is essential for effective energy management and tracking energy usage in compressed air systems, helping facilities meet energy efficiency targets and reduce costs.

     

    What is Insertion Thermal Mass Flowmeter?

    Insertion thermal mass flowmeters are nowadays becoming one of the most reliable and accurate ways of measuring compressed air flowrate. These meters use the principle of thermal dispersion to measure the flow of real gases, including compressed air.

    It works on King’s Law where a thermal sensor having two pt-100 sensors one having a heater sensor & another reference sensor that maintains constant differential temperature is installed in a compressed air pipeline. The higher the air mass flow rate higher the cooling effect of the heater sensor which is directly proportional to heater power consumption. The rate of change of mass flow rate is directly related to heater power consumption.

    Insertion thermal mass flowmeters are highly accurate and have a NO pressure drop & higher turndown ratio making them well-suited for use in compressed air systems.

     

    Conclusion

    Overall, accurate measurement of Compressed Air Flow is essential for optimizing the operation of compressed air systems, improving efficiency, and ensuring the safety of industrial operations.

    Insertion thermal mass flowmeters are an ideal solution for measuring compressed air flow, providing high accuracy and No pressure drop. They are an ideal solution for industrial facilities that want to reduce energy consumption and costs, improve equipment and process efficiency, and ensure the safety of their operations.

    Contact us to accurately measure Compressed Air Flow at your plant.

  • Thermal Mass Flowmeter for Beverage Production & Chilling

    Thermal Mass Flowmeter for Beverage Production & Chilling

    Thermal mass flowmeter can be used in beverage production and chilling applications to measure the flow rate of fluids such as water, juice, and other beverages. In these applications, the flow meter is typically installed in a pipe or tube that carries the fluid.

    There are several benefits to using a thermal mass flowmeter in beverage production and chilling applications:

    • Accuracy: Thermal mass flow meters are known for their high accuracy, which is important for accurately measuring the flow rate of fluids in a beverage production process.
    • Low-pressure drop: Thermal mass flow meters have a low-pressure drop, which can be important in applications where the pressure of the fluid is a concern.
    • Versatility: Thermal mass flowmeter can be used to measure a wide range of fluids, including water, juices, and other beverages.
    • No moving parts: Thermal mass flow meters do not have any moving parts, which makes them low maintenance and less prone to wear and tear.
    • Good repeatability: Thermal mass flow meters tend to have good repeatability, meaning they produce consistent results when measuring the same flow rate multiple times.

    The Thermal mass flowmeter can be an effective and accurate tool for measuring the flow rate of fluids in beverage production and chilling application.

  • Importance of Compressed Air Thermal Mass Flowmeter in Beverage Production & Chilling

    Importance of Compressed Air Thermal Mass Flowmeter in Beverage Production & Chilling

    Compressed air thermal mass flowmeters are a type of thermal mass flowmeter that is specifically designed to measure the flow rate of compressed air. In beverage production and chilling applications, compressed air thermal mass flow meters can be used to measure the flow rate of compressed air in various processes, including the production and packaging of beverages.

    Some specific ways in which compressed air thermal mass flowmeters can be important in these applications include:

    • Process control: In beverage production, compressed air is often used to power various machines and equipment, such as filling and capping machines. Accurate measurement of the flow rate of compressed air can help optimize the production process by allowing for more precise control over the flow of air.
    • Energy management: Compressed air is a significant energy source in many industries, including beverage production. Accurate measurement of the flow rate of compressed air can help improve energy efficiency by allowing for the optimization of compressed air usage.
    • Quality control: In beverage production, accurate measurement of the flow rate of compressed air can help ensure that the finished product meets quality standards. Compressed air thermal mass flow meters can be used to verify that the correct amounts of air are being used and that the production process is operating within prescribed limits.
    • Chilling efficiency: In chilling applications, compressed air is often used to power refrigeration systems. Accurate measurement of the flow rate of compressed air can be important for optimizing the cooling process and ensuring that the desired temperature is maintained. Compressed air thermal mass flowmeters can be used to measure the flow rate of air and make adjustments as needed to ensure efficient and effective cooling.
    • Maintenance and troubleshooting: Accurate measurement of the flow rate of compressed air can also be useful for maintenance and troubleshooting purposes. Compressed air thermal mass flowmeters can help identify problems such as leaks or inefficient usage, allowing for timely repairs and adjustments.
  • Advantages of Thermal Mass Flowmeter

    Advantages of Thermal Mass Flowmeter

    Thermal mass flowmeters are devices used to measure the flow rate of gases or liquids by measuring the heat transfer between the fluid and a sensor. They have several advantages compared to other types of flowmeters:

    • High accuracy: Thermal mass flowmeters are known for their high accuracy, especially in applications where the flow rate is constant or changing at a slow rate.
    • Wide rangeability: Thermal mass flowmeters can measure a wide range of flow rates, making them suitable for a variety of applications.
    • Low-pressure drop: Thermal mass flow meters have a low-pressure drop, meaning they do not significantly restrict the flow of the fluid. This can be important in systems where pressure drop is a concern.
    • Good repeatability: Thermal mass flowmeters tend to have good repeatability, meaning they produce consistent results when measuring the same flow rate multiple times.
    • No moving parts: Thermal mass flowmeters do not have any moving parts, which makes them low maintenance and less prone to wear and tear.
    • Versatility: Thermal mass flow meters can be used to measure a wide range of fluids, including gases, liquids, and steam. They can also be used in a variety of industries, including chemical, petrochemical, power generation, and more.

     

    Conclusion

    This list of advantages is not exhaustive and you will be able to find various other features that suit your requirements if you use thermal mass flowmeters. The product can also be used for other applications because of its great performance.

    To know more about the products or how they can benefit your business, contact us today!

  • How to Choose the Right Insertion Thermal Mass Flowmeter for Your Application

    How to Choose the Right Insertion Thermal Mass Flowmeter for Your Application

    Insertion thermal mass flowmeters are important tools for measuring the flow rate of fluids in a pipe. These flowmeters are inserted into a pipe and use the heat transfer properties of the fluid to accurately measure its flow rate. Insertion mass flowmeters are preferred over other types of flowmeters in some applications because they are easy to install, require minimal maintenance, and are relatively inexpensive. They are also suitable for use in dirty or harsh environments because they are not affected by contaminants in the fluid or by changes in pressure or temperature.

    Insertion Thermal mass flowmeters are commonly used in a variety of industries, including oil and gas, chemical processing, water and wastewater treatment, and HVAC systems. They are particularly useful in applications where it is important to accurately measure the flow rate of fluids, such as in process control and monitoring, or billing and metering systems.

     

    Selecting the Right Thermal Mass Flowmeter

    There are several factors to consider when selecting an insertion thermal mass flowmeter for your application:

    1. Flow range: Make sure the flowmeter has a flow range that is appropriate for your application. For example, if you need to measure very low flows, you may need a flowmeter with high sensitivity.
    2. Fluids: Consider the properties of the fluid you will be measuring. For example, the fluid’s temperature, viscosity, and chemical compatibility can all affect the flowmeter’s performance.
    3. Pipe size: Select a flowmeter that is appropriate for the size of the pipe in which it will be installed.
    4. Accuracy: Determine the required accuracy of the flow measurement and select a flowmeter that meets or exceeds that requirement.
    5. Cost: Consider the cost of the flowmeter and ensure it fits within your budget.
    6. Maintenance: Consider the maintenance requirements of the flowmeter and ensure it is suitable for your application.
    7. Installation: Consider the installation requirements of the flowmeter and ensure it is compatible with your system.

     

    Conclusion

    It may be helpful to consult with a flow measurement expert or the manufacturer of the flowmeter to determine the best flowmeter for your specific application. Leomi Instruments is a manufacturer of Insertion Thermal Mass flowmeter. We can help you select the perfect flow meter for your application, contact us for our help.

  • Importance of Thermal Mass Flowmeters in Thermal Plants

    Importance of Thermal Mass Flowmeters in Thermal Plants

    Thermal mass flowmeters are important tools in thermal power plants for measuring the flow rate of fluids, such as water, steam, and fuel. Accurate flow measurement is critical in thermal power plants to ensure efficient and safe operation, as well as to optimize energy production and reduce costs.

     

    Applications of Thermal Mass Flowmeters in Thermal Power Plants

    There are several applications in thermal power plants where thermal mass flowmeters can be used:

    • Fuel gas measurement: Thermal mass flowmeters are used to measure the flow rate of fuel gases, such as natural gas or coal gas, used to generate electricity in the power plant. Accurate measurement of the fuel gas flow is important for optimizing the combustion process and maximizing the efficiency of the power plant.
    • Boiler feedwater measurement: Thermal mass flowmeters are also used to measure the flow rate of boiler feedwater, which is used to generate steam to power the turbine. Accurate measurement of the flow rate of the boiler feedwater is important for optimizing the steam production process and maximizing the efficiency of the power plant.
    • Flue gas measurement: Thermal mass flow meters can also be used to measure the flow rate of flue gases, which are the gases produced during the combustion process. Accurate measurement of the flue gas flow is important for monitoring the performance of the power plant and ensuring compliance with emissions regulations.
    • Steam distribution: Thermal mass flow meters can be used to measure the flow rate of steam being distributed to various parts of the plant, such as the turbine or heat exchangers.
    • Fuel flow measurement: Thermal mass flow meters can be used to measure the flow rate of fuel, such as coal, natural gas, or oil, being supplied to the boiler.
    • Cooling water: Thermal mass flow meters can be used to measure the flow rate of cooling water being supplied to the condenser or other cooling systems.

     

    Conclusion

    Overall, thermal mass flow meters are an important tool in thermal power plants for accurately measuring the flow rate of fluids, which is critical for efficient and safe operation. To know how a thermal mass flowmeter can be beneficial for your application, feel free to contact us.

  • Blast Furnace Gas Flow Measurement in Steel Plant

    Blast Furnace Gas Flow Measurement in Steel Plant

    In steel industries Blast furnaces have a key role in smelting iron ore together with fuel (coke) and flux (limestone) continuously supplied from the top of the furnace. Hot blast air with oxygen enrichment is blown into the lower section of the furnace through a series of pipes (tuyeres). This results in chemical reactions while material falls downwards in the furnace.

    Flue gas ( Blast furnace gas) a low calorie will exit from the top of the furnace which in turn is used in other low heating furnaces in other steel processes. Blast furnace gas typically consists of mainly N2(50-55%), CO (20-25%), CO2(16-18%) etc. It contains some moisture content and carbon particle dirt sticky in nature but cleanable.

    Leomi provides a Leomi-586 Insertion Thermal Mass flowmeter which works excellent in these demanding applications against existing Orifice Or Averaging Pitot tube-based DP type flow transmitters.

    The major advantage of Insertion Thermal Mass flowmeter in this application:

    • Measures too low velocity of 0.6m/s or less & No pressure drop
    • Easy installation in minimum time for large pipe diameter
    • Easily removable sensor probe for periodic cleaning when needed

    A major limitation of existing DP-type Flow meter in use:

    • Significant pressure drop limits low flow range measurement
    • Difficult to install and also time-consuming with the high initial cost
    • Non-removable design is difficult for such application

    Leomi-586 Installation in Blast furnace gas application large pipe

  • Advancement in Air & Process Gas Flow Monitoring in Cement Plants for Process Optimization

    Advancement in Air & Process Gas Flow Monitoring in Cement Plants for Process Optimization

     

    Cement Industry is one of the crucial core sectors for the development of construction and infrastructure with currently approx. 4.4 billion Tonnes of cement was produced in the world in the year 2021. The largest cement producer is China with more than 55% capacity and thereafter India accounts for the second largest product with around 7% of capacity.

    After the COVID-19 pandemic, there was a sudden rise in demand from rural and urban infrastructural developments across the world and mostly in undeveloped countries. Initiatives such as the Smart City project by India will see a long-term demand for cement products which will see huge technological upgradation of existing cement plants for cost and energy optimization.

    The cement industry is one of the most intensive energy consumers in the industrial sectors. Energy consumption represents 40% to 60% of production costs. Additionally, the cement industry contributes around 5% to 8% of all man-made CO2 emissions. Due to increasing demand efficiency and optimization will be the key criteria for today’s cement plant operators which will largely depend on the accurate and repeatable measurement of various process parameters such as Temperature, Pressure, Flow Rate & Level, etc.

    In the cement industry generally pressures, temperatures are used for calculating process gas flows in correlation with Fan/Blowers’s speed & power consumption, however, this is an assumption that generates high uncertainties against the actual gas flow rate and energy consumption of prime mover such as Fan/Blowers.

    There is an urgent need for optimum control of Air and process gas flow monitoring for improving the overall quality of cement, efficiency, and cost optimization for many process requirements as below:

    1. PREHEATER PROCESS EXHAUST GAS FLOW RATE MEASUREMENT

    Cyclone Preheaters are used before rotary kilns of cement production plants to heat the raw mix and drive off carbon dioxide and water before it is fed into the kiln. The quality of the preheater in a cement plant directly affects the stability of calcining temperature and cement clinker quality in the kiln. Measuring the exhaust gas flow rate in the downcomer can help in fine control of the ID Fan downstream for optimum control of the O2 content of the kiln off gas.

    Exhaust gas flow measurement generally is challenging due to the large diameter of the duct, high dust concentration, and high temperatures around 350⁰C-400⁰C. Generally, velocity is measured temporarily by Pitot tube with high uncertainties for cross-checking which doesn’t help in the efficient control of the process.

    2. CLINKER COOLER AIR FAN FLOW RATE MEASUREMENT

    The clinker cooler is a key device in the clinker production line which helps in quenching and transports the hot clinkers discharged from the rotary kiln and supplies hot air for the rotary kiln and preheater system. As the first equipment where high-temperature clinker releases heat, it plays an indispensable role in reducing coal and power consumption, increasing secondary and tertiary air temperature, and improving heat recovery rate.

    A good clinker cooler can help cement plants reduce energy consumption from two aspects: one is to improve the cooling efficiency and reduce the power consumption of the clinker cooler itself; the other is to reduce the coal consumption of rotary kiln and preheating systems by improving the heat recovery rate. Clinker cooler grate air fan efficient control is vital in achieving cooling efficiency and energy saving with a higher cooling rate concerning feed rate adjustment. Continuous cooling air flow rate measurement plays an important role in optimizing the operation of a clinker cooler.

    Measurement of a cooler air fan is a challenging task due to the high concentration of clinker dust with a high abrasion rate where flow sensors need to be robust and immune to high abrasion resistance. Currently, this application has a limited flow solution and less life expectancy about 1-6 months.

    3. AQC BOILER & PHP PROCESS GAS OUTLET FLOW MEASUREMENT

    Modern cement plants are equipped with Waste heat recovery (WHR) power plants installed in cement plants, using the heat generated through rotary kiln preheater (PH) and AQC exhaust hot gases for power generation. Waste heat recovery systems (WHRS) wherein hot waste gas heat from rotary kiln preheater & clinker cooler is fed to Preheater (PH) Boiler & After quenching chambers (AQC) boilers to recover heat energy for running boilers for electricity/power generation with the help of steam turbines. Typically, the 20 to 30 percent power requirement of the cement plant can be fulfilled using this waste heat for power generation applications, which is a substantial savings/reduction in the overall cost of production.

    Efficient control of PH & AQC Boiler needs an accurate and reliable inlet or outlet gas flow rate which demands a flow measurement device suitable for high temperature and abrasion resistance design.

    4. PRIMARY AIR FAN FLOW MEASUREMENT IN POWER GENERATION BOILERS

    Cement Plant is installed with Captive Coal Power Plant for fulfilling additional needs of electricity apart from AQC & PH Waste heat recovery Boilers. Primary airflow into the boiler is important to monitor for maintaining optimum stoichiometric air-to-fuel ratio for achieving efficient combustion efficiency. A reliable and accurate primary air flow measurement is needed which has low-pressure drop and works well at low static pressure and low maintenance.

    5. PROCESS & FLUE GAS FLOW MEASUREMENT IN EXHAUST STACK

    Exhaust process flue gas from clinker cooler and boiler needs to be monitored by the pollution control authority for keeping control on emission guidelines is a must. This needs accurate and reliable flow measurement solutions which will help in achieving high thermal efficiency and improve ESP performance & help to regulate harmful pollutants emission controls & provides useful information on optimizing mass balance.

    6. COMPRESSED AIR MEASUREMENT FOR UTILITY CONTROL AND CONSERVATION

    Compressed air is used as a utility in cement plants for the efficient operation of pneumatic equipment used in packing plants and other miscellaneous use needs to be monitored as it is invisible energy as for producing 4 scfm compressed air one horsepower (HP) electrical energy is consumed.

    cement manufacturing process air or gas flow measurement

    An accurate air & gas flow measurement in cement production helps in

    • Reducing Blower (ID/FD Fan) power consumption i.e., energy saving
    • Controlling the accurate and repeatable operation of kiln & improving clinker production quality
    • Improves energy efficiency of Clinker cooler fan & energy conservation

    Major Challenges in existing flow measurement solutions for the above applications

    • High-pressure drop means energy loss
    • Lower turn-down ratio implies limited operational range and leakage insensitive.
    • Lower accuracy & measurement resolution implies limited efficiency & performance analysis
    • Clogging and high wear factor
    • High cost of installation & needs frequent maintenance.

    Overcoming above challenges by advance proven calorimetric (heat dissipation) technology:

    Nowadays Insertion Thermal Mass (Heat dissipation) Flow meter technology is gaining technical ground for solving above limitations of existing conventional pitot tube or annbar differential pressure-based flow measurement.

    Insertion Thermal Mass Flowmeter

    Working Principle

    Thermal mass (calorimetric) flow meters work on the physical principle of thermal dispersion from a heated element to the ambient medium (e.g., air or gases). This is affected by the velocity, density (temperature and pressure) and by the characteristic of the medium. The amount of needed energy is a function of the temperature difference ∆T and the mass flow.

    Gas flowing through two RTD Pt-100 one reference (Tref) and another Heater (Th). The temperature difference (over temperature) ∆t between the reference sensor (medium temperature) and the heater sensor is controlled constant. As per King’s Law, higher the mass flow rate, higher the cooling effect of the heater sensor, thus higher the power required to maintain the differential temperature constant. Therefore, the heater power is proportional to the gas mass flow rate.

    Advantages of Insertion Thermal Mass Flow metering technology against conventional flow metering

    • Pipe sizes suitable 15mm to 10 metres
    • Easy Installation, orientation & rugged design with customized sensor material design
    • Working temperature upto 400⁰C & 16barg or higher can be achieved
    • Better accuracy < ±2%RD of mass flow rate
    • Highest turn down ratio 100:1 or better, too sensitive throughout flow ranges.
    • No pressure drop saves energy (pressure) loss
    • Versatile & Cleanable sensors (auto-purging) design
    • Can be used with too low upstream straight length with special installation procedure
    • Low cost of ownership against other flow technology

    Conclusion

    Cement plant mainly consists of large duct with blowers (FD & ID Fan) where conventional flow measurement is done with Differential pressure sensor as primary elements such as Averaging Pitot tube, Orifice, Aerofoil etc. which are prone to clogg, insensitive to changes in flow velocity, and considerable pressure drop occurs with lower accuracy is now proved to be overall uneconomical to be used against Insertion Thermal Mass flow ( Heat dissipation technique) metering the latest development after long proven track record.

    Now further development on material compatibility with hot gas having heavy dust concentration and high abrasion are in progress which will satisfy most application demands in cement plants with few limitations of temperature upto 500⁰C. Still above 500⁰C operating temperature conventional technologies still rule the market. Hope this will help cement plant process operators to get benefit by implementing new technology against conventional flow measurement and acknowledge the benefits offered.

    Author

    Mr.Manish S Patel, A Chartered Mechanical Engineer with more than 24 years rich experience in process industries especially in flow measurement with a wide range of applications.

    Request to kindly write us your queries related to the flow measurement applications would be happy to assist at our best. For more information contact us.

  • Important Points to Take Care Before Installation of Insertion Thermal Mass Flow meter

    Important Points to Take Care Before Installation of Insertion Thermal Mass Flow meter

    points to take care before installation of insertion thermal mass flowmeter

    Application Study

    To conduct a site survey for understanding what is the purpose of gas flow measurement based on process conditions. E.g. Flue Gas stack flow measurement in Coal based Thermal Power plant.

    Insertion Thermal Mass Flow Meter Process Conditions

    Confirm fluid properties as below for optimum selection :

    • Standard Gas or gas mixture (total % proportion)
      Is it a real gas such as nitrogen or a gas mixture such as biogas with 75%methane + 15%CO2 + 5% Nitrogen + 3% water vapor + 2%H2S.
    • Specific gravity or Density or molecular weight
      Standard gas such as Nitrogen has specific gravity :1.25 or density :1250 Kg/Nm3
    • Flow rates (minimum, operating, maximum) based on customers process conditions. Flow rates should be at specific temperature & pressure conditions. E.g. Nm3/hr (DIN1343 – 0⁰C & 1.01325bar), Sm3/hr (Standard 20⁰C &1.01325bar OR ISO2533 15⁰C &1.01325bar ) or Actual m3/hr as per operating conditions.

    temperature & static pressure

    • Static pressure (minimum, operating and maximum in barg or suitable units).
      Static pressure of the gas flowing in the pipeline or duct.
    • Temperature (minimum, operating & maximum ⁰C )
      Temperature of the gas flowing in the pipeline or duct.
    • Gas conditions such as dry or wet gas or any details of RH% of gas flowing.

    • Gas contains dust or dirt if possible dust concentration in ppm
    • Gas corrosion properties or suitable material compatibility with wetted sensor part
    • Hazardous or Non Hazardous. Identify whether the area of use is hazardous than protection class, zone & gas group classification is needed. ( E.g. Zone I or II Gas group IIA IIB IIC etc). For Non-hazardous Ingress protection such as IP65,IP66,IP67 needed for enclosure & sensor probe housing.

    Mounting

    Confirm accurately below:

    • Pipe dimension: Measure Pipe OD, ID and Thickness OR confirm pipe schedule Sch40,Sch80 etc OR If available Pipe class Class A, Class B or Class C.
    • Duct Size & Type: If Duct is in use check whether it is Square or Rectangular and measure dimensions accurately & Wall thickness
    • Installation location & Mounting Type: Check plant site and identify suitable installation location having desired straight length available. If straight length not available discuss possible practical solutions.
    • With or without isolation valve: If an application demands an isolated sensor probe while running, the process isolation valve needs to be installed or else not.

    Orientation

    Identify sensor probe mounting based on space available nearby pipe or duct.

    • Horizontal
    • Vertical
    • Angular based on space available nearby pipe or duct.

    round and rectangle duct installation

    Recommendations

    Check additional points as below:

    • Upstream & Downstream straight length available at mounting site.
    • Power supply conditions