Volume Determination Challenges in Waste Sorting Facilities: Observations and Strategies

Author:

Maus Tom1ORCID,Zengeler Nico1ORCID,Sänger Dorothee2,Glasmachers Tobias1ORCID

Affiliation:

1. Institut für Neuroinformatik, Ruhr-Universität Bochum, 44780 Bochum, Germany

2. Sutco RecyclingTechnik GmbH, Britanniahütte 14, 51469 Bergisch Gladbach, Germany

Abstract

In this case study on volume determination in waste sorting facilities, we evaluate the effectiveness of ultrasonic sensors and address waste-material-specific challenges. Although ultrasonic sensors offer a cost-effective automation solution, their accuracy is affected by irregular waste shapes, varied compositions, and environmental factors. Notable inconsistencies in volume measurements between storage bunkers and conveyor belts underscore the need for a comprehensive approach to standardize bale production. With prediction reliability being constrained by limited datasets, undocumented modifications to machine settings, and sensor failures, this task renders a challenging application area for machine learning. We explore related research and present dataset analyses from three distinct waste sorting facilities in Europe, addressing issues such as sensor usability, data quality, and material specifics. Our analysis suggests promising strategies and future directions for enhancing waste volume measurement accuracy, ultimately aiming to advance sustainable waste management.

Funder

German Federal Ministry for Economic Affairs and Climate Action

Publisher

MDPI AG

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