Mechanized logging on steep slopes using forestry machines equipped with winch-rope anchor systems to ensure equipment stability and safe operation is becoming increasingly popular. The parameters that characterize the dynamic behavior of both the harvester and the rope anchor system are crucial to the operational efficiency of the anchor system. The purpose of this study is to create a comprehensive mathematical 12-mass model for the dynamic system “harvester - manipulator - anchor system - natural anchor - log - soil”. The developed model combines all the key components of the system and enables assessment of their mutual influence on the quantitative parameters of the dynamic processes occurring in the system. The model includes 34 generalized coordinates that describe the displacement of the center of mass of each component of the harvester during its operations for felling trees and moving logs to the laying place. To construct a system of equations of motion characterizing the dynamics of the simulated system, an approach based on Lagrange equations of the 2nd kind was used. The model allows for analyzing the influence of the harvester’s design and operating parameters, and of the physical and mechanical properties of the ground, on the harvester load with a manipulator and on the structural elements of the anchor system. To demonstrate the model’s functionality, a specific 6-wheeled harvester weighing 20 tons was chosen as the study object while operating on slopes with a steepness ranging from 50% to 100%. The variable inertial loads on the manipulator from the displaced log cause oscillations in the tensile force of the anchor rope. The maximum values of the force in the studied range of slope steepness increased from 19 kN to 72 kN, while the average values increased from 16 kN to 65 kN, with an increase of oscillation in the range 6-14 kN. The oscillation frequency remains constant throughout the log’s motion, as it is determined by the geometric dimensions of the structural elements in the simulated dynamic system.
Keywords
, , , , ,
Citation
Lagerev A, Lagerev I, Makulina A (2026). Improving the mechanized logging safety on steep slopes through the analysis of dynamic behavior of harvester rope anchor systems. iForest 19: 283-291. - doi: 10.3832/ifor4983-019
Academic Editor
Rodolfo Picchio
Paper history
Received: Sep 09, 2025
Accepted: Mar 17, 2026
First online: Jul 28, 2026
Publication Date: Aug 31, 2026
Publication Time: 4.43 months
© SISEF - The Italian Society of Silviculture and Forest Ecology 2026
Open Access
This article is distributed under the terms of the Creative Commons Attribution-Non Commercial 4.0 International (https://creativecommons.org/licenses/by-nc/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
Breakdown by View Type
(Waiting for server response...)
Article Usage
Total Article Views: 61
(from publication date up to now)
Breakdown by View Type
HTML Page Views: 13
Abstract Page Views: 29
PDF Downloads: 18
Citation/Reference Downloads: 0
XML Downloads: 1
Web Metrics
Days since publication: 1
Overall contacts: 61
Avg. contacts per week: 427.00
Article Citations
Article citations are based on data periodically collected from the Clarivate Web of Science web site
(last update: Jul 2026)
(No citations were found up to date. Please come back later)
Publication Metrics
by Dimensions ©
Articles citing this article
List of the papers citing this article based on CrossRef Cited-by.
(1)
Aggestam F, Konczal A, Sotirov M, Wallin I, Paillet Y, Spinelli R, Lindner M, Derks J, Hanewinkel M, Winkel G (2020)Can nature conservation and wood production be reconciled in managed forests? A review of driving factors for integrated forest management in Europe. Journal Environmental Management 268: 9.
CrossRef |
Gscholar
(2)
Belart F, Leshchinsky B, Chung W (2025)Characterization of ground pressure at different cable tension on tether-assist tracked self-leveling feller-buncher. Journal of Forestry 123: 161-170.
CrossRef |
Gscholar
(3)
Berkett H, Visser R (2012)Measuring slope of forestry machines on steep terrain. Harvesting Technical Note HTN05-02, Future Forests Research Limited, Rotorua, New Zealand, pp. 7.
Online |
Gscholar
(4)
Bont L, Heinimann H (2012)Optimum geometric layout of a single cable road. European Journal of Forest Research 131 (5): 1439-1448.
CrossRef |
Gscholar
(5)
Breinig L, Hinte B, Schönauer M, Hoffmann S, Brokmeier H, Jaeger D (2025)Traction assistance of a forwarder in flat terrain: effects on wheel slip and soil disturbance. Croatian Journal of Forest Engineering 46 (1): 1-17.
CrossRef |
Gscholar
(6)
Ceccarelli M (2008)Robot manipulators. In-Tech, Vienna, Austria, pp. 546.
Online |
Gscholar
(7)
Di Fulvio F, Acuña M, Ackerman P, Ackerman S, Spinelli R, Abbas D, Kaakkurivaara N, Sánchez-García S, Guerra SPS (2024)Benchmarking operational conditions, productivity, and costs of harvesting from industrial plantations in different global regions. International Journal of Forest Engineering 35 (2): 225-250.
CrossRef |
Gscholar
(8)
Duka A, Papa I, Proto A, Latterini F, Mederski P, Borz S, Iordache E, Sokolovic D, Karisik A, Stojnic D, Danilovic M, Picchio R (2025)Forest accessibility and road network density: a global overview with a special focus on Europe. Current Forestry Reports 11: 26.
CrossRef |
Gscholar
(9)
Feyrer K (2015)Wire ropes. Tension, endurance, reliability. Springer-Verlag, Berlin, Heidelberg, Germany, pp. 336.
CrossRef |
Gscholar
(10)
Green P, Chung W, Leshchinsky B , Belart F, Sessions J (2020)Insight into the productivity, cost and soil impacts of a cable-assisted harvester-forwarder thinning in western Oregon. Forest Science 66 (1): 82-96.
CrossRef |
Gscholar
(11)
Grigorev I, Burgonutdinov A, Makuev V, Tikhonov E, Shvetsova V, Timokhova O, Revyako S, Dmitrieva N (2022)The theoretical modeling of the dynamic compaction process of forest soil. Mathematical Biosciences and Engineering 19 (3): 2935-2949.
CrossRef |
Gscholar
(12)
Grim D (2025)Winch assist systems for steep slope logging. TimberWest Magazine 3.
Online |
Gscholar
(13)
Holzfeind T, Visser R, Chung W, Holzleitner F, Erber G (2020)Development and benefits of winch-assist harvesting. Current Forestry Reports 6: 201-209.
CrossRef |
Gscholar
(14)
Holzleitner F, Kastner M, Stampfer K, Höller N, Kanzian C (2018)Monitoring cable tensile forces of winch-assist harvester and forwarder operations in steep terrain. Forests 9 (2): 53-65.
CrossRef |
Gscholar
(15)
Humphrey P, Harvey C, Visser R (2024)Deploying an early-stage cyber-physical system for the implementation of Forestry 4.0 in a New Zealand timber harvesting context. iForest - Biogeosciences and Forestry 17: 353-359.
CrossRef |
Gscholar
(16)
Ismoilov A, Sellgren U, Pirnazarov A, Anderson K, Löfgrenb B (2014)Investigating the dynamic behavior of a mid-sized forestry machine on sloped rough terrain. In: Proceedings of the “18th International Conference of the International Society for Terrain Vehicle Systems”. Seoul (Korea) 22-25 Sept 2014. Curran Associates, New York, USA, pp. 1-8.
Online |
Gscholar
(17)
Kormanek M, Dvorák J, Tylek P, Jankovsky M, Nuhlícek O, Mateusiak L (2023)Impact of MHT9002HV tracked harvester on forest soil after logging in steeply sloping terrain. Forests 14 (5): 977-988.
CrossRef |
Gscholar
(18)
Kovác J, Gregor I, Melichercík J, Kuvik T (2023)Analysis of the operating parameters of wood transport vehicles from the point of view of operational reliability. Forests 14 (7): 1511-1522.
CrossRef |
Gscholar
(19)
Lagerev AV, Lagerev IA, Milto AA (2014)Tool for preliminary dynamics and stress analysis of articulating cranes. International Review of Modeling and Simulation 7 (4): 644-652.
CrossRef |
Gscholar
(20)
Lagerev AV, Lagerev IA (2020)Designing supporting structures of passenger ropeways of minimum cost based on modular intermediate towers of discretely variable height. Urban Rail Transit 6 (4): 265-277.
CrossRef |
Gscholar
(21)
Lagerev AV, Lagerev IA, Makulina AV (2025)Improving the harvester functionality by optimizing the manipulator kinematic scheme. iForest - Biogeosciences and Forestry 18 (4): 227-233.
CrossRef |
Gscholar
(22)
Leschinsky B, Sessions J, Wimer J (2015)Analytical design for mobile anchor systems. International Journal of Forest Engineering 26 (1): 10-23.
CrossRef |
Gscholar
(23)
Lyons CK, Sessions J, Wimer J (2020)Design of continuous bridle multiple-stump anchors. International Journal of Forest Engineering 31 (1): 1-8.
CrossRef |
Gscholar
(24)
Machuga O, Shchupak A, Styranivskiy O (2024)Field and laboratory research of the rut development process on forest roads. Forests 15 (1): 74-90.
CrossRef |
Gscholar
(25)
Marchi L, Mologni O, Trutalli D, Scotta R, Cavalli R, Montecchio L, Grigolato S (2019)Safety assessment of trees used as anchors in cable-supported tree harvesting based on experimental observations. Biosystems Engineering 18: 71-82.
CrossRef |
Gscholar
(26)
McEwan A, Marchi E, Spinelli R, Brink M (2020)Past, present and future of industrial plantation forestry and implication on future timber harvesting technology. Journal of Forest Research 31 (2): 339-351.
CrossRef |
Gscholar
(27)
Mergl V, Kašpárek J (2022)Verifying the lifting and slewing dynamics of a harvester crane with possible levelling when operating on sloping grounds. Forests 13 (2): 357-376.
CrossRef |
Gscholar
(28)
Meyers M, Chawla K (2009)Mechanical behavior of materials. Cambridge University Press, Cambridge, UK, pp. 882.
CrossRef |
Gscholar
(29)
Mologni O, Dyson P, Amishev D, Proto A, Zimbalatti G, Cavalli R, Grigolato S (2018)Tensile force monitoring on large winch-assist forwarders operating in British Columbia. Croatian Journal of Forest Engineering 39 (2): 193-204.
Gscholar
(30)
Mologni O, Lyons C, Marchi L, Amishev D, Grigolato S, Cavalli R, Roser D (2021a)Assessment of cable tensile forces in active winch-assist harvesting using an anchor machine configuration. European Journal of Forest Research 140: 745-759.
CrossRef |
Gscholar
(31)
Mologni O, Nance E, Lyons C, Marchi L, Grigolato S, Cavalli R, Roeser D (2021b)Cable tensile forces associated to winch design in tethered harvesting operations: a case study from the Pacific North West. Forests 12: 827.
CrossRef |
Gscholar
(32)
Molotnikov V, Molotnikova A (2023)Theoretical and applied mechanics. Springer, Cham, Switzerland, pp. 684.
CrossRef |
Gscholar
(33)
Naillon T, Rappin C (2019)Best management and operating practices for steep slope machine logging. Technical Report no. 98-02-2019, Washington State Department of Labor and Industries, Safety and Health Assessment and Research for Prevention (SHARP) Program, Washington, DC, USA, pp. 43.
Gscholar
(34)
Papadopoulos E, Sarkar S (1997)The dynamics of an articulated forestry machine and its applications. In: Proceedings of the “IEEE International Conference on Robotics and Automation”. Albuquerque (NM, USA) 20-25 Apr 1997. Piscataway, NJ, USA, pp. 323-328.
CrossRef |
Gscholar
(35)
Placet V, Passard J, Perre P (2007)Viscoelastic properties of green wood across the grain measured by harmonic tests in the range 0-95 degrees C: hardwood
vs. softwood and normal wood
vs. reaction wood. Holzforschung 61 (5): 548-557.
CrossRef |
Gscholar
(36)
Pracejka HB (2006)Tire and vehicle dynamics. Elsevier Ltd, Oxford, UK, pp. 620.
Gscholar
(37)
Schäfer M (2006)Computational engineering - Introduction to numerical methods. Springer-Verlag, Berlin Heidelberg, Germany, pp. 321.
CrossRef |
Gscholar
(38)
Sessions J, Leshchinsky B, Chung W, Boston K, Wimer J (2017)Theoretical stability and traction of steep slope tethered feller-bunchers. Forest Science 63 (2): 192-200.
CrossRef |
Gscholar
(39)
Shoop SA (2001)Finite element modeling of tire-terrain interaction. Technical Report ERDC/ CRREL TR-01-16, Cold Regions Research and Engineering Laboratory, Hannover, Germany, pp. 59.
Gscholar
(40)
Siciliano B, Khatib O (2016)Springer handbook of robotics. Springer-Verlag, Berlin Heidelberg, Germany, pp. 2227.
CrossRef |
Gscholar
(41)
Sun J, Meng C, Zhang Y, Chu G, Zhang Y, Yang F, Liu Z (2020)Design and physical model experiment of an attitude adjustment device for a crawler tractor in hilly and mountainous regions. Information Processing in Agriculture 7 (3): 466-478.
CrossRef |
Gscholar
(42)
Vereecken H, Schnepf A, Hopmans JW, Javaux M, Roose DOT, Vanderborght J (2016)Modeling soil processes: review, key challenges, and new perspectives. Vadose Zone Journal 15: 1-57.
CrossRef |
Gscholar
(43)
Vinogradov OG (2000)Fundamentals of kinematics and dynamics of machines and mechanisms. CRC Press, Boca Raton, FL, USA, pp. 290.
Online |
Gscholar
(44)
Visser R, Raymond K, Harrill H (2014)Developing fully mechanised steep terrain harvesting operations. In: Proceedings of the “47th International Symposium on Forestry Mechanisation”. Gerardmer (France) 23-26 Sept. 2014. FORMEC, France, pp. 1-8.
Gscholar
(45)
Visser R, Stampfer K (2015)Expanding ground-based harvesting onto steep terrain: a review. Croatian Journal of Forest Engineering 36 (2): 321-331.
Gscholar
(46)
Visser R, Spinelli R (2023)Benefits and limitations of winch-assist technology for skidding operations. Forests 14: 296.
CrossRef |
Gscholar
(47)
Wassermann C (2018)Mastseilgerate fur die Holzernte: Eine Analyse des europaischen Herstellerangebotes [Mast rope devices for timber harvesting: an analysis of the European manufacturer’s offer]. Master’s thesis, University of Natural Resources and Life Sciences, Vienna, Austria, pp. 110. [in German]
Gscholar