Hiwonder ROSOrin ROS2 Smart Car, Multimodal Large AI Model ChatGPT / Gemini / Grok / Llama, SLAM Navigation Programming, Mecanum Wheels Robot

Hiwonder ROSOrin ROS2 Smart Car, Multimodal Large AI Model ChatGPT / Gemini / Grok / Llama, SLAM Navigation Programming, Mecanum Wheels Robot

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Hiwonder ROSOrin ROS2 Smart Car, Multimodal Large AI Model ChatGPT / Gemini / Grok / Llama, SLAM Navigation Programming, Mecanum Wheels Robot

Hiwonder ROSOrin ROS2 Smart Car, Multimodal Large AI Model ChatGPT / Gemini / Grok / Llama, SLAM Navigation Programming, Mecanum Wheels Robot

Rs. 0.00

This is a pre order item. We will ship it when it comes in stock.(USUAL LEAD TIMES: 15 DAYS) 

PLEASE CHOOSE YOUR REQUIRED CONFIGURATIONA AND CONTACT US FOR PRICING:

For the Hiwonder ROSORin ROS2 Smart Car, the configurations shown are:

ROSORin Model Options

  1. Starter Kit
  2. Standard Kit
  3. Advanced Kit
  4. Ultimate Kit

Controller Options

  1. Without Controller
  2. Raspberry Pi 5 (8GB)
  3. Jetson Nano (4GB)
  4. Jetson Orin Nano Super (8GB)
  5. Jetson Orin NX Super (8GB)

ROSOrin: Multimodal ROS2 robot with modular chassis, Jetson/RPi5, LiDAR, 3D vision, and voice for autonomous embodied AI

Product Description
Hiwonder ROSOrin is a multimodal AI robot developed on ROS2. It features a modular chassis design that allows fast switching between Mecanum, Ackermann, and differential drive chassis, enabling flexible adaptation to diverse scenarios. ROSOrin robot is equipped with high-performance hardware, including NVIDIA Jetson, Raspberry Pi 5, LiDAR, 3D depth camera, and an integrated 6-microphone array. It easily supports motion control, mapping and navigation, path planning, 3D perception, tracking and obstacle avoidance, object recognition, target tracking, gesture interaction, and voice interaction.
Supporting hybrid online/local deployment, ROSOrin integrates multimodal large AI models with the OpenClaw agent framework. Its robust autonomy drives seamless natural voice interaction, scene understanding, and cross-platform collaboration. By unlocking advanced embodied intelligence applications—including information aggregation, proactive responsiveness, low-level dynamic invocation, and spatial vector memory—the platform serves as an ideal foundation for ROS development and AI robotics.
OpenClaw Framework Deployment
OpenClaw Framework Deployment
Deep OpenClaw integration utilizes versatile controls and multimodal inputs to precisely perceive complex environments, make real-time decisions, and autonomously plan and execute intricate workflows.
Multimodal AI Integration
Multimodal AI Integration
ROSOrin combines advanced AI for text, voice, and vision, delivering powerful cognition for natural conversations and smart visual understanding.
AI Vision & Tracking
AI Vision & Tracking
With built-in OpenCV vision algorithms, ROSOrin can quickly identify colors and objects, calculate their positions in real time, and track them accurately.
Built-in AI Vision Algorithms
Built-in AI Vision Algorithms
With YOLO26, MediaPipe, and OpenCV, ROSOrin handles object detection, face recognition, and gesture control with no complex setup required.

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ROSOrin: 3D depth camera for AI gaming, mapping, and visual navigation

3D Depth Camera

The 3D depth camera can not only realize AI visual game-play, but also enable advanced gameplay such as depth image data processing and 3D visual mapping navigation.

ROSOrin: LiDAR-enabled SLAM, path planning, and dynamic obstacle avoidance

STL-19P D500 TOF Lidar

ROSOrin is equipped with Lidar, which can realize SLAM mapping and navigation, and supports path planning, fixed-point navigation and dynamic obstacle avoidance.

Jetson: Parallel AI processing for detection, segmentation & speech

ROS Control System

ROS Control allows you to run multiple neural networks, object detection, segmentation and speech processing applications in parallel.

6CH mic array: Sound localization, voice control & navigation

6-Ch Far-field Microphone Array

The 6-Ch far-field microphone array and speakers support sound source positioning, voice recognition control, voice navigation and other functions.

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Large AI Model–Driven Embodied AI Applications
ROSOrin Advanced Kit are equipped with a circular 6-microphone array. Going beyond the one-way command-response pattern of traditional AI models, ROSOrin—powered by ChatGPT—enables a cognitive leap from semantic understanding to physical execution, significantly enhancing the naturalness and fluidity of human-machine interaction. Combined with advanced machine vision, ROSOrin delivers outstanding capabilities in perception, reasoning, and action, making it ideal for developing sophisticated embodied AI applications.
embodied artificial intelligence robot car
vision tracking programming robot car
Vision Tracking
With the advanced perception capabilities of a vision language model, ROSOrin can intelligently identify and lock onto target objects even in complex environments, allowing it to perform real-time tracking with adaptability and precision.
voice control robot car
Voice Control
With ChatGPT integration, ROSOrin can comprehend spoken commands and carry out corresponding actions, enabling intuitive and seamless voice-controlled interaction.
autonomous patrolling robot car
Autonomous Patrolling
Utilizing semantic understanding from a large language model, ROSOrin can accurately detect and track lines of various colors in real time while autonomously navigating obstacles, ensuring smooth and efficient patrolling.
ROSOrin: Depth-enhanced visual AI for environment understanding and distance-aware intelligent responses
Distance Awareness
Hiwonder ROSOrin car combines a visual AI model with a depth camera to understand its environment and perceive distances. By combining visual recognition with distance data, it enables intelligent question answering.
Integration of Large AI Model with SLAM-Based Mapping and Navigation
ROSOrin combines multimodal large model to understand user voice commands via a large language model, enabling multi-point navigation. Once it arrives at the designated location, it uses a vision language model to gain a deep understanding of the surrounding objects and events. This approach greatly enhances the robot’s intelligence, adaptability, and overall user experience, making it better suited to meet real-world needs.
ROSOrin: Multimodal LLM for voice navigation and vision-based scene understanding
Intelligent Navigation
Intelligent Navigation
ROSOrin continuously sends environmental data to the vision language model for real-time in-depth analysis. It dynamically adjusts its navigation path based on user voice commands, allowing it to autonomously navigate to designated areas and deliver intelligent, adaptive routing.
Emotion Perception
Emotion Perception
Leveraging an extended RAG knowledge base, ROSOrin can recognize intent and analyze environmental context, anticipating potential needs without detailed instructions, autonomously planning tasks and responding dynamically.
Large AI Models × OpenClaw
Integrated SLAM Mapping & Navigation
Intelligent Navigation
Large AI Models × OpenClaw × Automated Task Decomposition
Driven by multimodal large model reasoning, ROSOrin deconstructs remote commands into action primitive sequences, directly translating ambiguous semantics into precise robotic arm execution via OpenClaw.
Emotion Perception
Large AI Models × Multi-Point Navigation × Scene Understanding
ROSOrin builds deep spatial cognition through environmental understanding. During multi-waypoint navigation, it autonomously plans optimal paths, avoids obstacles, and analyzes real-time visual feeds to precisely complete navigation and interaction tasks.
Intelligent Navigation
Large AI Models × OpenClaw × Intelligent Information Summary
By capturing field-of-view data and analyzing scene data, ROSOrin automatically synthesizes environmental information into intuitive decision reports, closing the intelligent loop from onsite perception to data delivery.
Emotion Perception
Large AI Models × OpenClaw × Proactive Response
Powered by global situational awareness, ROSOrin proactively investigates anomalies or ambiguous commands, proposing optimal alternatives and requesting authorization to ensure uninterrupted, efficient workflows.
Intelligent Navigation
Large AI Models × OpenClaw × Dynamic Low-Level Invocation
Leveraging multimodal AI models to evaluate environments and object states in real time, ROSOrin autonomously invokes low-level algorithms and routines, including chassis kinematics, to maximize efficiency in complex scenarios.
Emotion Perception
Large AI Models × OpenClaw × Spatial Vector Memory
Driven by environmental memory from daily interactions, ROSOrin retains historical target-scene associations. In similar scenarios, it autonomously recalls and reuses past execution strategies, closing the cognitive-operational loop efficiently.

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Key ROS Features

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Large AI Model Robot Comparison
Jetson robot car
Gazebo Simulation
Hiwonder ROSOrin employs ROS framework and supports Gazebo simulation. Gazebo brings a fresh approach for you to control ROSOrin and verify the algorithm in simulated environment, which reduces experimental requirements and improves efficiency.
Body Simulation Control
Body Simulation Control
Through robot simulation control, algorithm verification of mapping navigation can be carried out to improve the iteration speed of the algorithm and reduce the cost of trial and error.
URDF Model Display in RViz
URDF Model Display in RViz
Provide an accurate URDF model that can be visualized using the RViz tool to observe mapping and navigation performance, facilitating algorithm debugging and improvement.

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Aurora930 Pro Specifications
Module parameter Size 76.5 × 20.7 × 21.8 mm Imaging performance Depth data format 16-bit Raw
Baseline 40mm Depth resolution/Frame rate 640×400 @12fps (FOV: 74°×51°)
Interface USB 2.0 Wafer connector RGB data format NV12
Depth accuracy ±8mm @1m RGB resolution /Frame rate 640×400 @12fps (FOV: 74°×51°)
Working distance 15–300 cm IR data format 8-bit Raw
Operating temperature -10℃ to 55℃ IR resolution /Frame rate 640×400 @12fps (FOV: 74°×51°)
Operating humidity 0% to 95% RH (non-condensing) Firmware capabilities Firmware upgrade Supports USB OTA Update
Operating illuminance 3–80,000 Lux Hot start delay <300ms
Power supply 5V±10%, 1.5A System compatibility OS compatibility Linux / ARMv8 / ROS / Windows
Power consumption Average <1.6W
Safety rating Class 1 Laser safety

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robot car encoder gear motor

Wrapped Rear Tail Shell

It can effectively protect the PCB circuit and magnetic ring at the end of the motor from external influences, effectively improving the safety and service life of the motor.

robot car encoder gear motor

Permanent Magnet Brushed Motor

The permanent magnet DC motor has fast starting response speed, large starting torque and smooth speed change.

robot car encoder gear motor

High-precision Magnetic Encoder

The motor is equipped with a high-precision magnetic encoder, has strong horsepower, high precision, and strong anti-interference ability.

robot car encoder gear motor

Adapt to Various Scenes

The low speed of 1:90 ratio and the high torque of 15kg.cm enable the motor to adapt to car chassis made of various materials.

Hall Encoder Geared Motor
520 motor comes with high-accuracy encoder, and features strong force and high performance. The built-in AB phase incremental Hall encoder stands out for its high accuracy and anti-interference ability.
Mecanum Wheel
The mecanum wheel has a compact structure and flexible movement, supports 360° all-round movement, and realizes the full lateral movement of the car.
Multi-functional Expansion Board
The expansion board has a built-in IMU sensor which can detects robot posture in real time. There are 2-channel PWM, two keys, a LED, a buzzer, 9-channel serial bus servo interface, two GPIO expansion ports and two llC interfaces on it.
Lithium battery parameters
The fuselage has a built-in 11.1V 6000mAh large-capacity lithium battery to improve the robot's endurance.

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Specification Parameters
Machine model Mecanum chassis version (Standard) Ackerman chassis version (Standard) Four-Wheel Differential Chassis Version (Standard)
Product dimensions 277x212x166mm 277x204x169mm 277x204x166mm
Product weight 2.66kg 2.15kg 2.26kg
Motor 520 metal gear reduction motor
Encoder High-precision AB quadrature encoder
Chassis material Full-metal aluminum alloy chassis with anodized finish
ROS controller Jetson Nano / Jetson Orin Nano / Jetson Orin NX / Raspberry Pi 5 board
Multi-function expansion board STM32 ROS robot controller, Jetson multi-function expansion board
Control method App control, wireless controller control, PC software control
Depth camera Aurora 930 Pro 3D depth camera
LiDAR STL-19P D500 TOF LiDAR
Battery 11.1V 6000mAh 3C lithium battery
Audio/pickup WonderEcho Pro Al voice interaction box / 6-mic array module
Operating system Ubuntu 18.04 LTS + ROS Melodic / Ubuntu 22.04 / ROS2 Humble
Software iOS / Android app
Communication method WiFi / Ethernet
Programming tools Python / C / C++ / JavaScript
Storage 64G TF card (Jetson Nano, Raspberry Pi 5) 128G SSD (Jetson Orin Nano, Jetson Orin NX)
Servo model LD-1501MG
Map/Props AI sandbox map for autonomous driving, traffic lights, road signs
Tutorials Comprehensive tutorials, ROS source code, system image, supporting software
Dimensional Diagram
Hiwonder ROSOrin robot car

ros robot slam lidar

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