See how hinged collision plates with inductive sensors detect rear obstacles and collision orie
See how a robotic work tool autonomously returns to a service point on malfunction, disabling o
By placing the tool container beneath the driver's seat, tools stay protected from rain and remain easy to reach without leaving the seat.
An autonomous cutting assembly lets the mower operate without manual handle control, reducing operator exposure to noise, dust, and fatigue.
A pivotable steering wheel assembly switches between working and storage positions to improve mower control, visibility, and storage space.
A pedal lever and position sensor map pedal angle to motor speed, giving faster, stronger walking control and stable parking.
A kinematics and dynamics controller uses compensation data to keep an autonomous mower on path without repeated trajectory recalculation.
Real-time calibration of lever displacement improves parking brake release timing in work vehicles, preventing unintended movement.
A pivoting front axle with rods and bushings keeps wide-deck mower caster wheels in contact on uneven ground, improving cut quality and comfort.
Opening the battery compartment cover automatically unlocks the pack, cutting removal steps while keeping the compartment closed for protection.
Image sensors and GNSS help mowing vehicles detect hidden roadside obstacles, alert operators, and log locations to avoid equipment damage.
A flexible link and bell crank lift mower cutting units through full travel while holding transport position without hydraulic pressure or electric power.
Hidden telecom boxes, power boxes, rocks, and debris are detected during roadside mowing, with alarms and location logging to prevent damage.
An adjustable blade carrier lets a robotic mower match cutting height to lawn conditions while reducing operator exposure to noise, dust, and fatigue.
Automatic brake motor actuation responds to anomaly signals in a manned mower, reducing manual braking effort and improving stopping reliability.
A grass shield blocks cut grass from fouling wheel brush bristles, keeping robotic lawn mower drive wheels cleaner during mowing.
Grass shields placed between the cutting disc and wheel brushes keep bristles clear, improving drive wheel debris removal on robotic lawn mowers.
A bell crank and flexible link lift mower cutting units through full motion and hold transport position without continuous hydraulic or electric power.
A modular stand-on utility vehicle uses movable controls, an adjustable platform, and interchangeable attachments to stay compact yet handle varied residential tasks.
A modular stand-on battery utility vehicle balances compact storage and single-user handling with cargo carrying and powered tool deployment.
A nested motor-to-input shaft connection shortens brake-side length, improving vehicle power transmission unit mountability.
A shared coupling element lets a vehicle height adjuster switch between motorized and manual modes without adding separate mechanisms.
Pivoting independent front wheels absorb terrain shocks, keep ground contact, and hold mower deck height for smoother cutting.
Spring-loaded, gear-driven twin latches secure larger batteries against vibration while keeping stack height low and removal easy.
A sliding travel mechanism detects off-ground states on uneven terrain and stops the harvester before impact or loss of control.
A split kinematics and dynamics controller corrects mower path drift without full trajectory recalculation, saving time and compute.
A single 3-axis magnetic flux sensor tracks shell deflection to detect obstacle direction and magnitude with less dirt and moisture sensitivity.
A resilient suspension member lets a stand-on mower platform fold for transport while damping vibration, jarring, and unsafe operator movement.
Dynamic collision thresholds use speed, mode, and chassis movement direction to cut false detections in robotic work tools.
Laterally offset steer wheels and interchangeable axle-deck modules improve cut swath alignment across different mower deck sizes.
Strategically placed integrated lights make outdoor power machines visible from front, rear, and sides to improve low-light safety.
By mounting more of the deck motor below the mower deck, blade-driven airflow improves cooling while reducing debris buildup and bearing stress.
Mode-based driveline control adjusts wheel torque, RPM, and power to keep zero-turn vehicles straight, limit slip, and aid hill starts.
LIDAR-based sensing detects solar panel orientation and infers obscured post locations, enabling autonomous mowers to navigate closely and safely.
A pivoting steering wheel assembly improves driving comfort while reducing riding lawn mower storage and transport space.
Route planning maps preferred and unsuitable regions so an autonomous work machine can reach destinations while avoiding lawn damage.
By placing the tool container beneath the driver's seat, tools stay protected from rain and can be reached quickly without leaving the seat.
A motion-ratio seat isolation assembly improves vibration damping for riding lawn mower operators across a wider range of body sizes.
An integrated wheel hub motor removes the gearbox to shrink smart mower size and weight while preserving low-speed driving control.
Mid-mounting the battery balances mower loads to prevent head-up on slopes and frees the control system for easier maintenance.
Selectable control modes adjust torque, RPM, and power to help zero-turn vehicles track straight, protect turf, resist slip, and maneuver tightly.
A magnetic base and friction sleeve secure a handheld tool on a lawnmower, resisting bumps, avoiding drilled mounts, and shedding debris.
An elastic receiver slot secures carried tools in one motion, replacing locks, latches, and straps on utility vehicles.
Motor acceleration thresholds detect wheel hopping in a walk-behind lawnmower, allowing drive shutdown before traction loss damages the drive system.
Autonomous docking with sensors and magnetic, clamp, or suction coupling sharpens lawn mower blades in place with better accuracy and less manual handling.
Central battery placement balances a riding mower between the axles to prevent head-up tipping and improve control system access.
Adaptive acceleration and turning control helps robotic lawn tools cross slopes and wet grass with less wear, slip, and track damage.
Two independent four-bar linkages isolate front and rear pitching forces to keep a utility vehicle operator platform stable on uneven terrain.
A detachable pressure-balance and seal-detection module keeps a robotic mower casing sealed while reducing noise, dust, and service difficulty.
Resilient damping pillows let each transaxle move independently, absorbing shock and vibration to improve riding mower comfort and control.
An automated cutting assembly uses blade lifting and height adjustment to improve mowing efficiency while reducing operator noise, dust, and strain.
Replaces front caster wheels with hydrostatic drive wheels and a universal front mount to add 4WD traction and implement versatility.
By splitting work areas and estimating mowing time, the server recommends the right mix of small and large lawnmowers for safe, efficient work.
Semantic segmentation and 3D point-cloud verification help the mower detect poor terrain and replan routes to avoid obstacles and cut power use.
By rewinding to the original trajectory and deleting only the wrong segment, the mower corrects boundary mapping errors without restarting.
An elastic edge trimmer slides in an arcuate groove to reach lawn edges and corners while buffering impacts to prevent damage.
Near-field sensor mapping helps an autonomous mobile robot find passable directions and escape trapped areas faster with less damage risk.
Boundary attributes assign different mowing modes to path segments, improving edge-cutting accuracy and reducing rework in robotic lawn care.
Multiple magnetic sensors and an offset reference point keep autonomous vehicles aligned to induction lines with less infrastructure burden.
GPS and stored elevation data let the controller anticipate slopes and adjust blade and traction speeds for smoother, more uniform cutting.
GNSS-based virtual boundaries separate safety zones from scheduled work zones, reducing setup effort while confirming safe operation on site.
User-rated mowing windows train AI with weather and lawn data to schedule garden tools more accurately and match user preferences.
Arcuate boundary turns let the cutting disc align parallel to borders, improving edge coverage without disrupting systematic lane mowing.
LIDAR-based landmark sensing lets an autonomous vehicle map fixed references and build path plans faster in solar sites with shifting obstacles.
Hybrid navigation switches between satellite guidance and boundary-wire sensing to keep robotic mowing accurate in poor reception areas.
Real-time work-path reassignment lets active machine fleets add or remove machines without dead zones or stalled project progress.
Users select only the boundary sections that need over-edge cutting, reducing mowing time and energy while improving edge coverage.
When boundary signals are blocked by obstacles or polarity reversal areas, rotating the sensor-carrying body part restores reliable robotic lawnmower navigation.
A conductive end cover and adjustable probe improve grassland sensing while reducing ground rubbing in robotic lawn mowing.
Preexisting aerial images are analyzed to map accurate virtual boundaries for robotic garden tools without manual image capture or robot-guided setup.
A two-rod folding lock with position sensing simplifies garden tool storage and packaging while preventing accidental startup.
Signal loops and onboard sensors help an autonomous lawn mower track boundaries, handle uneven gardens, and dock for charging and orientation.
By matching blade rotation with mowing strokes, this case cuts energy use, improves cut uniformity, and speeds grass clipping decomposition.
A perpendicular pivot layout and retaining element improve force transmission, lock stability, and resistance to unintentional activation.
Detachable lithium battery packs replace gasoline power in a riding mower, cutting emissions and maintenance while supporting large-area mowing.
Obstacle sensing and controller feedback let a manned mower slow, steer away, and manage impact forces to reduce collision risk.
Satellite position data and offset-based boundary definition let robotic work tools mark precise stay-out areas faster without boundary wires.
Path data with lift instructions predictively raises mower decks at turns and boundaries, improving cutting patterns without manual intervention.