In our previous blog post “BEAT THE HEAT”, we showcased how PID control was used to help prevent asset shutdowns during the heat of the summer months. In this article, we’ll dive deeper into the specific technology and methods used.
In the realm of process automation, precision is paramount. Maintaining control over critical parameters such as pressure, temperature, and flow is essential for optimizing performance and avoiding costly inefficiencies. One of the most widely used methods for achieving this control is PID (Proportional-Integral-Derivative) control. While standard PID control is effective in many applications, complex systems—such as those found in natural gas compressors—often require more advanced strategies. In this blog post, we’ll explore how PID control is leveraged in conjunction with Override and Split Range control techniques to manage the intricate dynamics of compressor systems, ensuring optimal performance and reliability.
PID control is a fundamental control strategy used to maintain a process variable (such as pressure or temperature) at a desired setpoint by continuously adjusting the control variables (such as driver speed, suction control valve position, and recycle control valve position). The PID controller works by calculating an error value, which is the difference between the setpoint and the process variable, and then adjusting the system’s control outputs to minimize this error.
By combining these three elements, PID controllers provide a balanced and responsive control action that is essential for maintaining the stability and efficiency of complex systems.
While single PID loops are effective for many applications, they can struggle in systems where multiple interacting variables need to be controlled simultaneously. For example, in a natural gas compressor, both suction and discharge pressures must be controlled to ensure efficient operation by preventing shutdowns as gas volumes fluctuate. A single PID loop might not be sufficient to handle the interactions between these variables, leading to gaps in how you may want the asset to perform. This is where advanced control strategies like Override and Split Range control come into play.
In an example compressor system, precise control over variables such as suction pressure, discharge pressure, and intake manifold air temperature (IMAT) is crucial for ensuring safe and efficient operation. To achieve this, we will use an example where we utilize three PID loops—IMAT, Suction, and Discharge—along with Override and Split Range control techniques.
In our example compressor system, three separate PID loops are used to monitor and control key variables:
The outputs of these three PID loops are fed into a MIN select block. The MIN select function takes the lowest value from the three PID outputs and uses this value to set the driver speed of the compressor, or in the case of suction pressure, driver speed and recycle valve. This ensures that the most critical condition—whether it be IMAT, suction pressure, or discharge pressure—dictates the overall operation, protecting the system from exceeding any setpoints and maintaining optimal performance.
Override control is used to prioritize certain control actions based on specific process conditions. In the case of our example compressor system, the Override control strategy ensures that the most critical variable (IMAT, suction, or discharge pressure) takes precedence in setting the driver speed. If any of these variables exceed their setpoints, the system immediately reduces the driver speed to prevent potential damage or inefficiencies.
Split Range control is a powerful technique that allows a single PID controller to manage multiple control elements in a sequential manner. In compressor systems, this approach is particularly useful when managing capacity control across different operating ranges.
This two-stage approach ensures that the compressor maintains stable operation across a wide range of capacities, avoiding conditions that could lead to inefficiencies or mechanical stress. By utilizing Split Range control, the system dynamically adjusts to changing demands, optimizing performance while minimizing the risk of shutdowns or other operational issues.
In our example, we used the combination of both Split Control and Override control to ensure safe, reliable operations. Together, these control techniques in compressor systems offers several critical advantages:
In real-world compressor systems, the control challenges extend far beyond managing a few key variables like IMAT, suction pressure, and discharge pressure. In fact, a comprehensive control strategy might involve monitoring and adjusting over 50 different process variables simultaneously. Each of these variables plays a crucial role in ensuring the compressor operates efficiently, safely, and within its optimal performance range.
The Enbase Compressor Control Panel is designed to give users unparalleled flexibility in managing complex compressor systems. Unlike many other solutions that restrict the number of control loops, the Enbase system allows users to easily configure a nearly unlimited number of PID loops. This capability is crucial when dealing with the vast array of process variables present in advanced compressor systems.
With Enbase, you can seamlessly integrate and control a wide range of variables—whether it's monitoring and adjusting temperatures across multiple points, managing dynamic and static rod loads, or fine-tuning volumetric efficiencies. This flexibility ensures that no matter how complex your system, you have the tools to optimize every aspect of its performance.
In compressor systems, where the complexity of operation often involves monitoring and adjusting over 50 different process variables, the ability to configure a nearly unlimited number of control loops—enabled by the Enbase Compressor Control Panel—sets your operations apart from the competition. This unparalleled flexibility, combined with advanced Override and Split Range control strategies, ensures that the most critical variables are always prioritized, while the system dynamically adjusts to changing conditions through sequential control actions.
By managing a comprehensive set of variables with ease, this control strategy not only optimizes performance but also protects the compressor from potential failures, reducing maintenance costs and extending the life of the equipment. The Enbase solution offers the robust and flexible control needed to achieve precision, reliability, and efficiency in even the most complex operational environments, providing a clear advantage over competitor systems with limited control capabilities.
Interested in learning more about how our compressor control strategies can optimize your operations? Explore our range of technologies, including Enbase and Enalysis, which integrate advanced PID control to ensure the highest levels of performance and safety. Contact us today to schedule a demo.