A Fault Detection System for a Geothermal Heat Exchanger Sensor Based on Intelligent Techniques

Author:

Aláiz-Moretón HéctorORCID,Castejón-Limas ManuelORCID,Casteleiro-Roca José-LuisORCID,Jove EstebanORCID,Fernández Robles LauraORCID,Calvo-Rolle José LuisORCID

Abstract

This paper proposes a methodology for dealing with an issue of crucial practical importance in real engineering systems such as fault detection and recovery of a sensor. The main goal is to define a strategy to identify a malfunctioning sensor and to establish the correct measurement value in those cases. As study case, we use the data collected from a geothermal heat exchanger installed as part of the heat pump installation in a bioclimatic house. The sensor behaviour is modeled by using six different machine learning techniques: Random decision forests, gradient boosting, extremely randomized trees, adaptive boosting, k-nearest neighbors, and shallow neural networks. The achieved results suggest that this methodology is a very satisfactory solution for this kind of systems.

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry

Reference44 articles.

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4. Heat Exchangers: Selection, Rating, and Thermal Design;Kakaç,2002

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