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Tuesday, November 11, 2025

Claas to showcase first autonomous wheel loader for agriculture at Agritechnica


Claas will current the primary autonomous wheel loader for agricultural use at Agritechnica 2025.

In view of the rising scarcity of expert labour, the totally autonomous Torion has been designed to deal with repetitive and monotonous wheel loader duties with out an operator. Operators can pre-plan the autonomous use of the machine through Claas join, whereby the system works intuitively and requires only some inputs for versatile work orders.

Developed collectively with Liebherr, the Torion Autonomy join makes use of LiDAR sensors to document its setting and mechanically creates a digital twin of the work space to plan the work cycle. Separate surveying know-how isn’t required. Due to superior AI know-how, route discovering and materials pick-up are totally automated utilizing a so-called pile evaluation, with out the necessity to plan static routes prematurely.

Consequently, Claas Autonomous Silage Administration can select essentially the most environment friendly route for every journey. The autonomous system carries out jobs independently, adapts to adjustments within the setting and doesn’t require a GPS receiver, which makes it simple to make use of in buildings or beneath rows of bushes. The Torion might be operated each totally autonomously and manually, which provides a excessive diploma of flexibility for multifunctional purposes.

Along with this primary for the agricultural sector, Claas will deliver a bunch of technological options for agriculture within the innovation space of its stand (Corridor 13, Stand C18). The OEM says its focus will likely be on machines and reveals that redefine effectivity, sustainability and precision in agricultural apply via using synthetic intelligence (AI) and autonomous methods.

Along with Amazone, Claas has developed the Weed Detector which allows pinpoint dock management on grassland primarily based on infestation maps. Till now, selective remedy of dock – the one measure permitted in some areas following the ban on space spraying – was solely attainable mechanically or with a fancy and costly spot utility method specialising in dock in working widths of as much as 9 metres. Because the extent of the infestation and the precise location of the goal areas aren’t identified with these strategies, it’s not attainable to calculate the required utility charge prematurely or plan an environment friendly remedy route. As well as, your entire space have to be travelled over, though typically solely partial areas are affected.

Weed Detector is a sensible answer for detecting and localising dangerous crops in grassland instantly throughout mowing. AI-supported software program recognises dock crops utilizing two Claas Culti Cam cameras on the entrance mower. The detected dock leaves are instantly transmitted to CLAAS join as geo-referenced goal areas and created there as an infestation map. Information from a number of slicing edges might be taken into consideration and merged.

ABOVE: Throughout mowing, the dock crops are detected by two Claas Culti Cam cameras on the forage mower. After AI-based analysis of the info and the creation of infestation maps, dock management is carried out at a later stage utilizing spot spraying with an Amazone crop sprayer

Within the subsequent step, this infestation map is transferred to myAmazone operations through the AgIN interface (AEF), i.e. cloud-to-cloud. Relying on the prevailing spraying know-how, the required utility charges for the management measure are calculated prematurely.

Lastly, the spot utility map is transferred to the crop sprayer and the dock is selectively managed with most effectivity. With this answer, Claas provides an additional step in direction of process-optimized and resource-saving grassland administration.

Throughout mowing, the dock crops are detected by two Claas Culti Cam cameras on the forage mower. After AI-based analysis of the info and the creation of infestation maps, dock management is carried out at a later stage utilizing spot spraying with an Amazone crop sprayer.

Dynamic Subject Scout, developed in collaboration with Kiel College of Utilized Sciences and AgXeed, demonstrates how automated area surveys utilizing distant sensing and RTK know-how together with synthetic intelligence are revolutionising exact area mapping.

Based mostly on optical space info, the system mechanically creates precise area boundaries and makes use of AI-based picture evaluation to recognise obstacles reminiscent of bushes or water holes, that are transferred on to the Farm Administration Info System (FMIS) and steering system in use. This creates up-to-date, exact route and lane planning for each autonomous and manned machines. An important constructing block for the agriculture of tomorrow.

Along with AgXeed and Amazone, Claas is presenting a visionary idea that mixes autonomous area work, reminiscent of sowing, with digital logistics planning. The method developed throughout the 3A Group stands for holistic automation of agricultural processes during which autonomous machines, implements and logistics methods are digitally networked with one another.

The intention is to plan, coordinate and dynamically management your entire course of chain, reminiscent of sowing, fertilisation or crop safety utility prematurely, i.e. with steady and computerized adaptation to variable influencing elements. This leads to adaptive, just-in-time organised processes during which machines, working assets and personnel can be found precisely when and the place they’re wanted. The core is interoperable communication between digital platforms reminiscent of Claas join and myAmazone operations, which is standardised by the AEF Agricultural Interoperability Community (AgIN). The 3A Group’s idea illustrates how autonomous and extremely automated methods might be mixed to create an environment friendly total answer for operational processes.

Pictures: Claas

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