Introduction

A System on a Module is essentially a compact, integrated circuit (IC) that combines a microcontroller or microprocessor with memory, power management, and sometimes other components necessary for a complete system. This integration facilitates the development of customized, high-performance industrial automation systems with reduced development time and increased reliability. 

It is a compact, self-contained computing platform that integrates essential components of a computer system into a single module. SoMs are designed to provide a scalable and flexible solution for embedded system development, allowing engineers to focus on application-specific functionalities rather than dealing with the complexities of hardware design. 

This technology is a transformative element in automation and industrial communication. It encapsulates the core computing capabilities required for advanced automation in a compact, flexible, and easily integrable package. SoMs enable the development of sophisticated, connected, and efficient industrial systems that can adapt to the dynamic demands of modern industrial environments. With their ability to support various communication protocols and integrate with PLCs, HMIs SCADA systems, and I/O modules, SoMs are instrumental in driving innovation and productivity in the industrial sector. 

Benefits of SoMs

  • Compact and Integrated Design

    SoMs integrate multiple functions, reducing the need for additional hardware and simplifying design processes, making them ideal for space-constrained industrial settings. 

  • Enhanced Communication Capabilities

    Built-in support for industrial communication standards (e.g., PROFINET, EtherNet/IP, EtherCAT) enables seamless data exchange and connectivity within industrial networks. 

  • Accelerated Development

    SoMs offer a ready-to-use computing platform, speeding up development, reducing costs, and shortening time-to-market by eliminating extensive hardware design and testing. 

  • Integration with PLCs and SCADA Systems

    SoMs enhance control, monitoring, and decision-making in industrial automation by handling complex data processing, while PLCs and SCADA systems manage real-time control and supervision. 

  • Compatibility with I/O Modules

    SoMs work with Input/Output modules, ensuring effective data collection and communication from sensors and actuators, providing comprehensive operational visibility and control. 

Applications

SoMs offer a compact, integrated design that simplifies the development process and reduces costs, making them ideal for a wide range of applications, as follow:  

  • Industrial Automation and Control Systems

    It is extensively used in industrial automation and control systems for tasks such as process monitoring, data acquisition, and control logic implementation. They serve as the computational backbone for PLCs (Programmable Logic Controllers) in manufacturing plants, refineries, power plants, and other industrial facilities.  

  • Embedded Computing and IoT (Internet of Things)

    SoMs play a crucial role in connecting legacy industrial equipment and sensors to cloud-based platforms, enabling remote monitoring, control, and optimization of industrial assets. 

  • Robotics and Motion Control

    SOM’s drive embedded controllers, motor drives, and robotic actuators, enabling precise positioning, trajectory planning, and coordination of robotic arms, conveyor systems, and automated guided vehicles (AGVs). SoMs support advanced motion control algorithms, sensor fusion techniques and flexibility of robotic systems in manufacturing and logistics operations. 

  • Communications and Networking

    SOM’s support a variety of communication protocols and standards such as Ethernet, Modbus, CAN (Controller Area Network), Profibus, and OPC UA (Unified Architecture), enabling interoperability and data exchange between heterogeneous industrial devices and systems.  

Differences between SoCs and SoMs

The main differences between a System-on-Chip (SoC) and a System-on-Module (SoM) lie in their integration approach, flexibility, and application context. 

An SoC integrates essential electronic components such as a central processing unit (CPU), memory, input/output interfaces, and often peripheral units like GPUs and wireless communication modules, all within a single microchip. This high level of integration leads to a compact, power-efficient design. However, this compactness limits design flexibility. Changes or upgrades often require a complete redesign of the chip. 

In contrast, an SoM is a miniature circuit board that encapsulates all key components of a computing system on a PCB, including the CPU, memory, and communication interfaces. This modular approach allows for greater design flexibility and scalability, enabling seamless upgrades and customization without extensive redesigns. SoMs are particularly beneficial in industrial automation, medical devices, and IoT applications, where rapid development and adaptability are crucial. 

In essence, while SoCs offer efficiency and compactness suitable for mass-produced consumer devices, SoMs provide flexibility and scalability essential for customized, evolving hardware solutions. 

Hilscher & SoMs

Hilscher's netX communication controllers serve as central components in their range of industrial communication products. These chips are classified as System-on-Chip (SoC) solutions, specifically designed to facilitate flexible and integrated communication in complex industrial environments. Unlike Application-Specific Integrated Circuits (ASICs), which are designed for a particular application or protocol, netX chips support a broad range of industrial network standards through reloadable protocol firmware. This flexibility not only simplifies the integration of various industrial devices but also enables cost-effective updates and upgrades, eliminating the need to redesign hardware for compatibility with different communication standards. 

Furthermore, by using netX technology, vendors of automation technologies can address a wide array of applications. The chips can be embedded in human-machine interfaces, vision systems, industrial PCs, field devices, and encoders to facilitate network connectivity and data exchange. netX controllers are also engineered to operate in harsh environments. Thus, the integration benefits extend beyond hardware. netX technology offers a unified API for ease of use across different industrial protocols, supported by a comprehensive ecosystem of engineering tools and software packages. Based on its netX SoCs, Hilscher also offers a range of embedded modules and PC cards that require less integration effort. 

In terms of security, the netX 90 and future chip generations include comprehensive on-chip security features. These capabilities address potential vulnerabilities by implementing secure boot processes, data encryption, authentication mechanisms, and internal integrity monitoring. The chips are built to support security levels up to IEC 62443 Security Level 2, making them suitable for critical industrial applications where secure communication is paramount. 

More about that topic

하터스하임, 2023. 3. 15. – 힐셔(Hilscher Gesellschaft für Systemautomation mbH)는 netRAPID 90의 출시로 고도로 통합된 필드 장치의 산업 통신을 위한 당사의 칩 캐리어 포트폴리오를 확장합니다. netX-90 기반 모듈은 장치 인터페이스 역할을 하며 하나의 설계로 공통 필드버스, 산업용 이더넷 및 IIoT 프로토콜을 모두 지원합니다.

An actuator by SCHIEBEL painted in black on white background with a red spring incorporated on the left side.

Hilscher의 임베디드 모듈 netIC52netRAPID 90을 적용함으로써, 쉬벨(SCHIEBEL)사는 자사 액추에이터를 산업용 통신 네트워크에 연결하고, 새로운 제어 보드로 표준을 설정합니다.

하터스하임, 2023. 8. 10. – 힐셔(Hilscher Gesellschaft für Systemautomation mbH)는 이제 초소형 칩 캐리어 netRAPID 90을 지원하는 Open Modbus/TCP용 프로토콜 스택도 제공합니다. 따라서 산업용 통신 기술 전문업체인 당사는 이미 유연한 멀티 프로토콜 임베디드 모듈 제품 버전을 더욱 다양하게 만들고 있습니다.

Three colorful circles overlapping each other. There is Hardware, Software and Services written in the circle. In the middle is a black netX SoC.

통신 솔루션은 다양한 제조업체의 컴포넌트로 구성되는 경우가 많습니다. 이는 높은 복잡성과 낮은 성능은 물론, 다양한 도구 사용으로 인한 번거로운 구성을 초래합니다. 우리의 플랫폼 전략은 단일 소스에서 모든 것을 제공한다는 것입니다 - 여러분에게 유리합니다! 더 알아봅시다.

The logos of the OS Windows, Linux, VxWorks, INtime, IntervalZero, QNX, WinAC on a angular shape in light grey. Below that is aslightly darker angular shape with icons for PC cards, embedded modules and network controller in it. The background is colorful in red and blue.

운영 체제에서 하드웨어 컴포넌트의 통합을 위해서는 디바이스 드라이버가 필요합니다. 힐셔는 모든 주요 산업 운영 체제를 위한 다양한 드라이버를 제공합니다. 당사의 netX 네트워크 컨트롤러, cifX PC 카드 또는 임베디드 모듈을 통합하는 방법에 대해 더 자세히 알아봅시다!

The inside of a factory with a conveyor belt and grey boxes. On the right side is the PROFINET logo.

PROFINET IRT는 짧은 주기 시간뿐만 아니라 결정론적 동작도 요구합니다. 따라서 산업용 네트워크는 특정 요건들을 충족해야합니다. 힐셔의 netX가 적용된 PROFINET IRT에 대해 더 자세히 알아봅시다!