Newsletter

Automotive DesignLine  >  Design Center

Addressing Today's Automotive Design Challenges with a Higher Power and Lower Dissipation Solenoid Driver Solution



Page 1 of 4

Courtesy of Automotive Design Europe

Optimization of desired functional performance at an acceptable and reasonable cost is a worthwhile objective for any new product. In fact, this objective is at the heart of value which can be defined as the relationship between benefit received and expectations. A product design can be envisioned in many different forms to achieve this value goal.

The Fairchild Dual Integrated Solenoid Driver, FDMS2380, is an example of a product that delivers exceptional value as an intelligent low side driver for solenoids and other inductive loads. In addition to exact parametric specifications, the FDMS2380 was developed to perform in the harsh automotive physical and electrical environment. Partitioning of power and signal processing functions as well as packaging were considered as critical to achieve optimal reliability and performance in powertrain applications. Through the use of state-of-the-art power silicon, high performance BiCMOS control functions and the latest power packaging approach, the FDMS2380 provides a new higher power, lower dissipation complex Functional Power solution to address today's automotive design challenges.

Designed for the Automotive Environment

Physical Environment

The challenges of designing for the automotive environment are well documented. Power semiconductors used in automotive powertrain controls must endure harsh physical environments. Today's automotive manufacturers often need to have fully tested systems, such as engines and transmission. This requires that electronic control units be mounted on or near the deliverable tested system and the thermal environment for these power semiconductors can reach ambient temperatures of 150oC or more (figure 1).

Engine, Transmission are run at up to 200°C

Combustion chambers up to 500°C

Exhaust systems up to 800°C

Wheel systems up to 300°C

Sensors see respective environments

Figure 1. Ambient Temperatures

For a semiconductor, Tj max is the critical factor since blocking capability gate threshold voltages as well as other vital characteristics are all bounded by this parameter. Exceeding Tj max is the cause of most failures. Couple this with the fact that in many automotive applications the power device must operate in energy absorption modes rarely experienced in other power designs, and it becomes clear that an understanding of thermal limits of power semiconductors and consideration of thermal management details is absolutely necessary for insuring that designs will continue to provide the reliability required by the automotive market.



Page 2: next page  

Page 1 | 2 | 3 | 4



Rate this article
WORSE | BETTER
1 2 3 4 5




Related Content

TECH PAPER
1. IBM Rational Dashboard Drive Improved Decision Making

TECH PAPER
2. Upgrading to an Intel Multicore Ecosystem Keeps a Car Simulator Running in the Fast Lane

TECH PAPER
3. New Tools Answer Old Issues in Wiring Harness Design

TECH PAPER
4. Getting FlexRay Under Control (Part 2)—Automated Analysis and Validation of FlexRay Network Topologies for the Automotive Industry

 


 Featured Jobs
Accenture seeking Project Management Team Lead in Charlotte, NC

Accenture seeking Software Engineer in Salt Lake City, UT

Boeing Company seeking Software Engineer in Herndon, VA

Switch and Data seeking Customer Solutions Engineer in Dallas, TX

Chart Industries seeking Sr. Developer in Cleveland, OH

More jobs on EETimesCareers
 Sponsor
 CAREER CENTER
Ready to take that job and shove it?
SEARCH JOBS:

 SPONSOR

 RECENT JOB POSTINGS
For more great jobs, career related news, features and services, please visit EETimes' Career Center.