Emerson 8800 instruction manual Band Heater Height, Install COe Sensor Assembly

Models: 8800

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Instruction Manual

IM-106-880, Rev 1.0 January 2007

OCX 8800

Figure 6-15. Band Heater Height

COe Sensor

 

0.37 in.

 

 

(9,4 mm)

 

 

Band Heater

Insulator

37390058

Install COe Sensor Assembly

1.Apply pipe thread sealant (Loctite #567) to the exposed pipe threads of eductor elbow (12, Figure 6-13). Do not apply sealant to the first turn of the pipe threads.

2.Screw sensor holder (11) onto eductor elbow (12).

3.With wrenches on eductor elbow (12) and on flats of sensor holder (11), tighten sensor holder. Do not allow eductor elbow to turn.

4.Tighten sensor holder (11) to align outside flat with matchmark on sensor housing flange, as shown in Figure 6-16.

The heater insulator prevents current leakage between the band heater and the sensor holder. Failure to properly install the insulator may cause the device to trip a ground fault interrupt circuit.

5.Wrap heater insulator (9) around sensor holder (11). Make sure the insulator joint lines up with the band gap of the COe band heater (10).

6.Slide COe band heater (10, Figure 6-13)up onto sensor holder (11). Do not tighten the band heater at this time. Heater must rotate freely around sensor holder.

7.Check for proper height of COe heater thermocouple (Figure 6-12). Thread bayonet connector up or down to adjust height.

8.Install and fasten thermocouple (8, Figure 6-13).

9.Position band heater as shown in Figure 6-15and Figure 6-16and tighten band heater clamp screw. The heater insulator (9) end joint must line up with the band gap of the COe band heater (10).

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Emerson 8800 instruction manual Band Heater Height, Install COe Sensor Assembly

8800 specifications

The Emerson 8800, a pivotal instrument in industrial automation, stands out for its robust features and cutting-edge technologies. Designed to enhance process efficiency and reliability, this device is integral to numerous industries, including oil and gas, chemical, and power generation.

One of the standout features of the Emerson 8800 is its advanced control capabilities. It incorporates a highly flexible control architecture that supports a wide variety of control schemes. This adaptability allows engineers to implement customized solutions tailored to specific process requirements. Additionally, the 8800 series includes integrated predictive diagnostics that continually monitor system performance, alerting operators to potential issues before they escalate into serious problems.

The technology powering the Emerson 8800 is equally impressive. Equipped with state-of-the-art microprocessors, it can handle complex calculations and data processing with remarkable speed and accuracy. The device supports multiple communication protocols, including Foundation Fieldbus, HART, and Modbus. This flexibility ensures seamless integration with existing systems, thereby enhancing data sharing and communication between devices.

Moreover, the Emerson 8800 features a user-friendly interface that simplifies operation and monitoring. The intuitive display allows operators to easily navigate through various settings and real-time data, promoting better decision-making and faster response times. This ergonomic design enhances usability in high-pressure environments, ultimately contributing to improved safety and operational efficiency.

Another key characteristic of the Emerson 8800 is its durability and reliability. Built to withstand the rigors of industrial environments, the device boasts a robust enclosure, ensuring protection against dust, moisture, and extreme temperatures. This reliability minimizes the risk of downtime, making it a cost-effective choice for industries where uptime is critical.

In summary, the Emerson 8800 emerges as a powerhouse in the realm of industrial automation. With its advanced control systems, diverse communication capabilities, user-friendly interface, and rugged design, it embodies efficiency and reliability. As industries continue to evolve, the Emerson 8800 stands ready to meet the challenges of modern automation, driving innovation and productivity in complex environments.