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March 6, 2026Mining0 citationsOpen Access

Experimental Stress Analysis of Mast–Counterweight Connection in a Modified Bucket-Wheel Excavator ERc 1400-30/7 Using Strain-Gauge Measurements

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AAAngela AndreicaMAMădălin AndreicaMDMădălina Dănilă

Key Points

  • To analyze stress in the mast-counterweight connection of a modified bucket-wheel excavator to ensure its structural integrity after modifications.
  • Utilized a custom 10-channel strain-gauge data acquisition system for stress measurement.
  • Conducted measurements during both left and right bucket-wheel rotations.
  • Applied finite element analysis to validate experimental results.
  • Maximum equivalent stresses were measured at 210.0 MPa and 167.1 MPa in left and right anchoring lugs, respectively.
  • Left rotation resulted in 220–284% higher stresses compared to right rotation.
  • Dynamic stress amplification of 15–32% was observed, influenced by bucket-soil interaction.

Abstract

Background: Bucket-wheel excavators are critical assets in surface mining operations, where structural modifications to increase productivity must be validated through rigorous stress analysis to ensure operational safety. Following modification of an ERc 1400-30/7 excavator’s bucket wheel from 18 to 20 buckets, increased operational loads necessitated experimental verification of structural integrity. Methods: A custom 10-channel strain-gauge data acquisition system with 0–10 kHz bandwidth measured stresses in cable anchoring lugs and H-type diagonal members under operational conditions at the Jilț lignite mine, Romania. Measurements were performed during both left and right bucket-wheel rotation. Finite element analysis validated experimental results. Results: Maximum equivalent stresses of 210.0 MPa and 167.1 MPa were measured in the left and right anchoring lugs, respectively, during left bucket-wheel rotation, representing 59% and 47% of material yield strength with safety factors of 1.69 and 2.12. Significant load asymmetry was observed, with left rotation inducing 220–284% higher stresses than right rotation. FEA validation showed <15% agreement with measurements. Dynamic stress amplification of 15–32% above quasi-static values was attributed to bucket–soil interaction and structural vibration. Conclusions: Despite increased operational loads, measured stresses remain below yield strength, confirming structural adequacy. Both anchoring lugs require prioritized monitoring due to elevated stress levels and load asymmetry. The validated methodology provides a framework for post-modification verification of large mining equipment.

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Cite This Study

Andreica et al. (2026) studied this question.

synapsesocial.com/papers/69aa701a531e4c4a9ff59893https://doi.org/10.3390/mining6010020
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