Implementing Pressure Sensors Effectively with Integrated Closed Loop Systems

2022-06-02 08:25:21 By : Ms. Nina Lam

We use cookies to enhance your experience. By continuing to browse this site you agree to our use of cookies. More info.

A closed-loop control system automatically regulates a process to the desired state based on continuous feedback from the system. It includes at least one electronic or mechanical device that is fine-tuned based on the feedback of the current state. Where necessary, the system can be adjusted to reach the preferred state.

Across many devices, closed-loop systems – often referred to as feedback control systems – are designed to achieve and maintain the preferred state autonomously without any human intervention.

Figure 1. Basic Control Loop System. Image Credit: Superior Sensor Technology

Pressure sensors are frequently used to measure the flow or pressure in systems. It is often the case that under these circumstances, the sensor output is used directly as feedback in a closed-loop system.

Differential pressure sensors measure the density, level or flow of gas and air. They are often the key feedback component of many important systems in the industrial, medical, energy, automotive, aviation and HVAC fields.

Whilst many systems utilize the pressure sensor as the center of a control loop feedback system; they often use software as the external control mechanism. However, by using software, a higher speed CPU is needed that subsequently requires more power.

Furthermore, additional hardware is required, and the system is prone to injected system noise that can negatively affect sensor performance. To reduce noise, the sensor is run at a higher speed. There are several limitations to this kind of implementation, including:

Integrated into all of its differential pressure sensors, Superior Sensor Technology’s proprietary NimbleSense architecture combines processing intelligence with intelligent algorithms and signal path integration to make modular building blocks that are easily selectable to support numerous applications.

One building block component in NimbleSense is a closed-loop controller (CLC). This enables the company to integrate this function directly into specific sensor products.

This optional capability reduces the need to design and implement a complex control loop system. This subsequently results in better efficiency and reliability whilst reducing the cost of the products.

Superior Sensor’s CLC adds additional controls, allowing flow rates to be set and maintained via pressure measurement in the sensor. The CLC can directly control actuators, valves and motors to maintain flow rate targets.

Additionally, NimbleSense runs at a fast speed and has sophisticated filtering capabilities. This eliminates sensor-induced mechanical noise before it generates an error signal, preventing any adverse impacts on a system’s performance.

The integrated CLC design significantly decreases loop delays in the electronic circuit by up to 100. 

Figure 2. Closed Loop Control – Air Quality Application Example. Image Credit: Superior Sensor Technology

Figure 2 shows a block diagram of an implementation of the Superior Sensor CLC for an air quality application.

To efficiently measure air quality, maintaining a known/constant airflow through the viewing window is required. The differential pressure across the venturi flow element directly measures the flow into this viewing window.

The system establishes a target pressure level across the venturi. The differential pressure sensor automatically increases or decreases the drive to the pump. This maintains the targeted differential pressure, thus ensuring a continual airflow into the viewing window.

This is achieved by using the integrated NimbleSense closed-loop circuit. Additionally, it can also be used in combination with the company’s proprietary noise filtering, which can reduce loop delay by 100.

The NimbleSense CLC capability can be valuable for many products, including, but not limited to, sleep apnea machines (CPAP, BiPAP, APAP), ventilators, anesthesia machines, oxygen concentrators, HVAC systems and flow meters.

In summary, the benefits of the NimbleSense integrated Closed Loop Control include,

This information has been sourced, reviewed and adapted from materials provided by Superior Sensor Technology.

For more information on this source, please visit Superior Sensor Technology.

Please use one of the following formats to cite this article in your essay, paper or report:

Superior Sensor Technology. (2022, June 01). Implementing Pressure Sensors Effectively with Integrated Closed Loop Systems. AZoSensors. Retrieved on June 02, 2022 from https://www.azosensors.com/article.aspx?ArticleID=2583.

Superior Sensor Technology. "Implementing Pressure Sensors Effectively with Integrated Closed Loop Systems". AZoSensors. 02 June 2022. <https://www.azosensors.com/article.aspx?ArticleID=2583>.

Superior Sensor Technology. "Implementing Pressure Sensors Effectively with Integrated Closed Loop Systems". AZoSensors. https://www.azosensors.com/article.aspx?ArticleID=2583. (accessed June 02, 2022).

Superior Sensor Technology. 2022. Implementing Pressure Sensors Effectively with Integrated Closed Loop Systems. AZoSensors, viewed 02 June 2022, https://www.azosensors.com/article.aspx?ArticleID=2583.

Do you have a question you'd like to ask regarding this article?

AZoSensors speaks with Yuhan Huang from the University of Technology Sydney about his research into the development of on-road remote sensing technology that can rapidly and accurately identify high-emitting vehicles.

We speak with Okan Atalar about new research that could one day allow simple cameras, such as those on smartphones, to see the world in 3D.

AZoSensors speaks with Niraj K. Jha from the Electrical and Computer Engineering faculty at Princeton University. This interview explores the research proposing a framework called CovidDeep. CovidDeep combines efficient deep neural networks with commercially available wearable medical sensors for pe

The MCT469-SF Washdown is a compatible on-line NIR Sensor designed for continuous moisture and constituent measurement. It is ideal for washdown conditions in the food industry.

The MX 256 is a new control unit, completely digital, aimed at making the detection and measurement of gases easier. It can also be used for the processing of any digital signal from digital sensors (OLCT 10N types), and more.

Columbia Models SI-702AI and SI-702AIHP are biaxial force balance inclinometers designed with an output circuit configuration made for use in 4–20 mA data transmission systems.

AZoSensors.com - An AZoNetwork Site

Owned and operated by AZoNetwork, © 2000-2022