Connected Product Design & System-on-Module Strategy

2022-07-22 12:33:17
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Illustration: © IoT For All

Over the past two years, supply chain challenges have caused continuous headaches for design engineers. Shortages have made widely used components difficult or impossible to find. And in some cases, critical parts used in product designs have suddenly ceased production. Chip and component manufacturers are struggling with prolonged delays for materials, leading to long wait times for fulfilling customer orders. These challenges have thrown a series of wrenches into the plans of product engineers, causing major delays in their development timelines. But system-on-module (SOM) design with integrated wireless provides a way to bypass many of those challenges and accelerate development projects in the process.

'A SOM design strategy can enable engineers to bypass many of the shortages and delays that would otherwise slow or halt development timelines.' -Laird ConnectivityClick To Tweet

Advantages of SOM Design Strategy

A system-on-module design strategy can enable engineers to bypass many of the shortages and delays that would otherwise slow or halt development timelines. Companies are slashing 12-18 months off the projected timeline for projects by using a SOM that already includes wireless to simplify their connected designs in ways that reduce engineering time while also avoiding the current chip and component shortages.

Using a SOM strategy may be particularly helpful for engineering teams working on products that are not produced in ultra-high volumes like consumer products typically are. Some of the product types that SOM is often ideal for include medical devices for use in healthcare settings and in the home, industrial systems with visual displays, voice-activated handsets for commercial and industrial use cases, ruggedized scanner systems, and more healthcare, commercial and industrial use cases. Let’s take a look at several more advantages of system-on-module design:

#1: Eliminates Complex Tasks

The single-board design eliminates the complex engineering tasks that are required in the chip-down design to integrate the two key elements of a wirelessly enabled device onto a single board: the central processing unit with its associated memories and power management that supports the application and the wireless module that enables connectivity. This creates a single integrated circuit board that includes the wireless module, the device’s main processor, high-speed RAM, reliable flash memory, and power management. This allows design teams to leap ahead in the product development process. This approach also involves far fewer components, reducing the chances that projects will be bogged down by shortages and delays in the supply chain.

The integrated solution eliminates a significant amount of design work while also delivering features that would be complex to achieve with in-house engineering resources, including enhanced security, rich multimedia, enhanced connectivity, machine learning, and more. Security is one I should put a spotlight on because so many of the use cases I discussed above – including medical devices and industrial sensors – must meet stringent regulations or corporate standards for security like FIPS and secure boot. Building out these security elements can require months for a chip-down design approach because of how much of the work is time-consuming and done from scratch. It is slow, expensive, and risky. System-on-module design using pre-designed hardware and software solutions can deliver those security features out of the box, saving months of development time in the process.

#2: Resource Partitioning

Resource partitioning is another important tool to use in SOM design. Resource partitioning on the board gives designers the ability to build layers of protection and isolation within the overall design. The first form of this is the ability to run a Linux OS and RTOS simultaneously on different parts of a multi-core heterogeneous application processor. This allows the device’s most critical functions to run in real-time on the microcontroller without being interfered by user-interruptible processing priorities like touchscreen displays.

#3: Virtualization

Virtualization is typically a design concept in the world of servers and data centers where the computing resources within and between servers are used in highly flexible ways to launch, support, and upgrade applications. Virtualization in a server and data center allows organizations to direct computing resources exactly where they are needed, and the same is true within a wireless device. Virtualization within the device’s multi-core microprocessor allows different features to be fully supported by their own dedicated versions of Linux that are firewalled from one another.

For example, connectivity can be isolated to its own Linux instance while display and user input are isolated to a different Linux instance. This ensures that critical features do not have to compete against one another and are prioritized with their dedicated version of the embedded Linux OS. Another benefit of virtualization in a system-on-module system is enhanced security, allowing engineering teams to build firm walls between the wireless radio and wired networking that communicates externally and the rest of the device. This ensures that network-based attacks cannot access other critical functionality and data.

Speed & SOM

The above examples are compelling advantages of a system-on-module design strategy, particularly for applications where security is a priority. But the primary benefit is undoubtedly speed. Supply chain issues make this approach to wirelessly-enabled product design a practical necessity, and SOM design will continue to be a strategy for accelerating design projects even after supply chain challenges subside.

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  • Supply Chain and Logistics
  • Supply Chain Management

  • IoT Business Strategy
  • Supply Chain and Logistics
  • Supply Chain Management

参考译文
互联产品设计与模块系统策略
图示:© IoT For All → 在过去的两年中,供应链的挑战一直困扰着设计工程师。短缺使得广泛使用的组件难以甚至不可能找到。而在某些情况下,产品设计中关键的零部件突然停产了。芯片和元件制造商在材料上遭遇了长期延迟,导致满足客户订单需要长时间等待。这些挑战给产品工程师的计划带来了许多阻碍,导致他们的开发时间表出现重大延误。但采用集成无线功能的系统模块(SOM)设计提供了一种绕过许多这些挑战并加速开发项目的方法。 “SOM 设计策略可以帮助工程师绕过许多原本可能减缓或停滞开发计划的短缺和延迟。”——Laird Connectivity 点击推文 **SOM 设计策略的优势** 系统模块(SOM)设计策略可以帮助工程师绕过许多原本可能减缓或停滞开发计划的短缺和延迟。公司通过使用已经包含无线功能的SOM,将预计的项目时间缩短了12-18个月,从而以简化其连接设计的方式减少了工程时间,同时避开了当前芯片和元件的短缺问题。对于那些产品不是像消费类那样以超大规模生产的产品,SOM策略可能尤其有帮助。SOM通常非常适合的产品类型包括医疗设备(用于医疗环境和家庭)、带有视觉显示屏的工业系统、用于商业和工业场景的语音激活手持设备、坚固的扫描系统,以及更多医疗、商业和工业应用场景。 让我们再看看系统模块设计的几个额外优势:**#1:消除复杂任务** 单板设计消除了芯片设计方法中必需的复杂工程任务,将无线设备的两个关键元素集成在单板上:支持应用的中央处理单元及其相关内存和电源管理,以及实现连接性的无线模块。这创造了一个集成的电路板,包括无线模块、设备的主处理器、高速RAM、可靠的闪存和电源管理。这使设计团队在产品开发过程中可以快速前进。这种方法还涉及的组件更少,减少了项目因供应链的短缺和延迟而受阻的可能性。集成解决方案消除了大量设计工作,同时还提供了以内部工程资源难以实现的功能,包括增强的安全性、丰富的多媒体功能、增强的连接性、机器学习等。 安全性是值得特别强调的一点,因为我在上面提到的许多应用场景,包括医疗设备和工业传感器,都必须满足如FIPS和安全启动等严格的安全法规或企业标准。构建这些安全元素,在芯片设计方法下可能需要数月的时间,因为这些工作既耗时又需要从头开始。这种方式既慢又昂贵,且风险极高。使用预先设计的软硬件解决方案的系统模块设计可以从一开始就提供这些安全功能,节省数月的开发时间。**#2:资源分区** 资源分区是SOM设计中的另一项重要工具。板级资源分区使设计人员能够在整体设计中构建多层保护和隔离。第一种形式是能够在多核异构应用处理器的不同部分上同时运行Linux操作系统和实时操作系统(RTOS)。这使设备最重要的功能可在不被用户中断处理(如触摸屏显示)干扰的情况下实时运行在微控制器上。**#3:虚拟化** 虚拟化通常是服务器和数据中心设计中的一种概念,它能够以高度灵活的方式在服务器内部和服务器之间分配计算资源,以启动、支持和升级应用。在服务器和数据中心中,虚拟化允许组织将计算资源精准地分配到需要的地方,同样,这一点也适用于无线设备。设备内部的多核微处理器上的虚拟化允许不同的功能由其专用的、彼此隔离的Linux版本全面支持。例如,连接功能可以隔离到一个Linux实例,而显示和用户输入则隔离到另一个Linux实例。这确保了关键功能之间不需要相互竞争,并通过其专用的嵌入式Linux操作系统版本获得优先处理。 系统模块系统中虚拟化的另一大优势是增强的安全性,使工程团队能够在无线射频与外部通信的有线网络和其他设备功能之间构建牢固的隔离墙。这确保了基于网络的攻击无法访问设备的其他关键功能和数据。**速度与SOM** 上述示例充分说明了系统模块设计策略的优势,特别是对于安全性优先的应用场景。但最主要的优势无疑是速度。供应链问题使这种方法成为无线产品设计的现实必要,即使在供应链挑战缓解之后,SOM设计也将继续作为加速设计项目的策略。推文 共享 邮件 供应链与物流 供应链管理 → 物联网商业策略 供应链与物流 供应链管理
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