可编程电源管理解决方案为用户带来极大灵活性

January 12, 2024

In modern electronic devices, versatility and control have become paramount. The expectations for flexibility are higher than ever, including customizing the date format on an alarm clock, navigating complex menus on a bicycle helmet camera, or harnessing the power of AI to predict home occupancy patterns and intelligently manage heating, cooling and hot water systems in a smart home. Even in the industrial sector, the convergence of technology and the Industrial Internet of Things (IIoT) is pushing boundaries, empowering sensors and devices to autonomously make decisions about what to measure and when to report data.

All this flexibility is achieved through software, which can be pre-configured and updated at will, often over-the-air, to reflect changed circumstances, implement performance updates or fix bugs. At the hardware level, controllers and CPUs have become standardized, allowing data-processing components to be shared across multiple products and defining the final functionality during the last programming step on the production line.

Amidst all this progress, however, one aspect of electronic products often lags in flexibility: the internal power system. In the past, a 5V logic supply and a 12V source for electromechanical components sufficed for most applications. Today, even basic devices frequently require more than ten different power rails, catering to various components such as the CPU, static and dynamic memory, digital and analog interfaces, isolated gate drive supplies, and more. These voltage values can range from 0.6V-12V, with input power sources ranging from a single Li-ion battery cell (3V-4.2V) to fixed, system bus voltages of 3.3V, 5V, 12V, 24V or 48V, derived from an AC-DC power supply.

A Power Tree is the Starting Point

Product designers create a "power tree" that outlines their final power needs as a starting point. From there, they reverse-engineer a configuration of series and parallel DC/DC converters to fulfill these requirements. Subsequently, they adjust the power tree to enhance overall system efficiency, minimize power dissipation, maximize battery lifespan, reduce size, lower cost or optimize any other relevant parameter. Figure 1 serves as an illustrative example.

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可编程电源管理解决方案为用户带来极大灵活性

January 12, 2024

In modern electronic devices, versatility and control have become paramount. The expectations for flexibility are higher than ever, including customizing the date format on an alarm clock, navigating complex menus on a bicycle helmet camera, or harnessing the power of AI to predict home occupancy patterns and intelligently manage heating, cooling and hot water systems in a smart home. Even in the industrial sector, the convergence of technology and the Industrial Internet of Things (IIoT) is pushing boundaries, empowering sensors and devices to autonomously make decisions about what to measure and when to report data.

All this flexibility is achieved through software, which can be pre-configured and updated at will, often over-the-air, to reflect changed circumstances, implement performance updates or fix bugs. At the hardware level, controllers and CPUs have become standardized, allowing data-processing components to be shared across multiple products and defining the final functionality during the last programming step on the production line.

Amidst all this progress, however, one aspect of electronic products often lags in flexibility: the internal power system. In the past, a 5V logic supply and a 12V source for electromechanical components sufficed for most applications. Today, even basic devices frequently require more than ten different power rails, catering to various components such as the CPU, static and dynamic memory, digital and analog interfaces, isolated gate drive supplies, and more. These voltage values can range from 0.6V-12V, with input power sources ranging from a single Li-ion battery cell (3V-4.2V) to fixed, system bus voltages of 3.3V, 5V, 12V, 24V or 48V, derived from an AC-DC power supply.

A Power Tree is the Starting Point

Product designers create a "power tree" that outlines their final power needs as a starting point. From there, they reverse-engineer a configuration of series and parallel DC/DC converters to fulfill these requirements. Subsequently, they adjust the power tree to enhance overall system efficiency, minimize power dissipation, maximize battery lifespan, reduce size, lower cost or optimize any other relevant parameter. Figure 1 serves as an illustrative example.

Download your free copy of our white paper below.

 

立即下载

及时获取我们的最新动态。

立即注册以接收新品通知、产品/工艺变更通知(PCN)以及停产(EOL)提醒,确保您不会错过任何重要更新。

注册

Qorvo 产品在连接、保护和为地球提供动力方面至关重要。我们将核心射频(RF)与电源技术及解决方案带给汽车、消费电子、国防与航空航天、工业与企业、基础设施及移动市场,推动创新与发展。

保持联系

  • Facebook
  • X
  • 领英
  • YouTube
  • 产品
  • 解决方案
  • 设计中心
  • 新品
  • 产品合规
  • 博客文章
  • 活动与展会
  • 新闻稿
  • 成功案例
  • 技术文章
  • 关于我们
  • 工作机会
  • 企业视频
  • 质量
  • 分支机构
  • 投资者
  • 如何购买
  • 论坛
  • 门户
  • 联系我们
  • 订阅中心
网站地图反馈法律声明隐私供应链透明度

© 2026 Qorvo US, Inc

|

+1-833-641-3810

Qorvo
  • 产品
  • 解决方案
  • 设计中心
  • 支持
  • 关于我们
Qorvo
Qorvo
Qorvo
  • 产品
  • 解决方案
  • 设计中心
  • 支持
  • 关于我们
Qorvo
Qorvo