As industries worldwide embrace digitalization and automation, the demand for reliable, multi-functional electronic devices is surging. From advanced driver-assistance systems (ADAS) in automotive to integrated sensor networks in smart factories, these complex systems require sophisticated power control to prevent failures and ensure continuous operation. This technology provides a critical solution to manage power demands efficiently, reduce design complexity, and enhance the overall resilience of next-generation devices amidst increasing power density and stringent reliability requirements.
Ensures stable startup for multi-functional devices by distributing power concentration during initialization, avoiding external power supply overcurrents.
Guarantees continuous operation of critical functions (e.g., map display) even during power loss, preserving user experience and enabling reliable service delivery.
Significantly reduces power supply design complexity, potentially shortening development time by up to 20% and cutting design costs by 15%.
This patent protects a power control system and program that manages voltage application to multiple power consumption units, ensuring stable startup by preventing overcurrents and maintaining critical functions during power loss. The claims were strengthened through examination, indicating high stability and enforceability.
This patent focuses on sequential power application and critical function prioritization. Licensees could build additional IP around advanced predictive power analytics, energy harvesting integration, or dynamic power scaling based on real-time operational loads, which are not explicitly covered.
Assuming an average annual cost of $350K (AI est.) for designing and verifying power control units in complex devices, this technology could reduce the required effort and resources by 60%. This translates to an estimated annual direct cost reduction of $200K (AI est.) ($350K × 0.6) per company, also contributing to faster product development cycles.
X: Multi-Function Integration Efficiency
Y: System Operational Stability