Autonomous Vehicle Sensor Assembly with Isolated Pressurized Chambers

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Solution Overview

Problem

Existing sensor assemblies in autonomous vehicles face challenges in efficiently cleaning and maintaining sensor windows, leading to potential energy wastage, noise, vibration, and harshness (NVH) due to the need for simultaneous pressurization of chambers, which is not necessary for all cleaning tasks.

Innovation Solution

A sensor assembly with a housing featuring fluidly isolated chambers and independently controllable blowers, allowing selective pressurization of each chamber based on cleaning needs, utilizing air curtains and streams to clean sensor windows while minimizing unnecessary pressure and noise.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Reliability

If simultaneous pressurization of all chambers is used to clean sensor windows, then cleaning coverage is improved, but energy consumption increases and NVH increases

Engineering Contradiction:
Improvecleaning effectivenessVSAvoidenergy consumption
Core Design Contradiction:
ReliabilityVSUse of energy by moving object

Solution Approach 1:

The housing is divided into multiple fluidly isolated chambers (first chamber, second chamber, third chamber) that can be independently pressurized. This segmentation allows the system to apply pressure only to the specific chamber containing a sensor window that needs cleaning, rather than pressurizing all chambers simultaneously, thereby reducing energy consumption while maintaining effective cleaning coverage.

Inventive Principle:
Principle #1Segmentation

Solution Approach 2:

Each chamber is equipped with its own blower and air outlet positioned to direct airflow at the corresponding sensor window. This local quality approach enables targeted cleaning of individual sensor windows based on their specific contamination needs, improving energy efficiency by avoiding unnecessary pressurization of chambers with clean sensors.

Inventive Principle:
Principle #3Local quality

2Reliability

If simultaneous pressurization of all chambers is used to clean sensor windows, then cleaning coverage is improved, but NVH increases

Engineering Contradiction:
Improvecleaning effectivenessVSAvoidnoise and vibration
Core Design Contradiction:
ReliabilityVSObject-generated harmful factors

Solution Approach 1:

The housing is divided into multiple fluidly isolated chambers (first chamber, second chamber, third chamber) that can be independently pressurized. This segmentation allows the system to activate blowers only in chambers that require cleaning, reducing the overall noise and vibration generated by the system compared to simultaneous pressurization of all chambers.

Inventive Principle:
Principle #1Segmentation

Solution Approach 2:

Each chamber has dedicated blowers and air outlets positioned to target specific sensor windows. This localized approach generates noise and vibration only where necessary, minimizing overall NVH while maintaining effective cleaning of the required sensor windows.

Inventive Principle:
Principle #3Local quality

3Productivity

If chamber pressurization is increased to improve cleaning efficiency, then cleaning speed is improved, but energy consumption increases

Engineering Contradiction:
Improvecleaning efficiencyVSAvoidenergy consumption
Core Design Contradiction:
ProductivityVSUse of energy by moving object

Solution Approach 1:

The system dynamically adjusts the pressurization level of each chamber based on real-time sensor data from contamination sensors. When a sensor window requires cleaning, the corresponding blower increases pressure to an optimal level for efficient cleaning. When sensors are clean, pressurization is reduced or stopped, maintaining high cleaning efficiency when needed while minimizing energy consumption during normal operation.

Inventive Principle:
Principle #15Dynamics

Solution Approach 2:

Contamination sensors monitor the cleanliness of each sensor window and provide feedback to the control system. Based on this feedback, the control system activates or deactivates individual blowers and adjusts pressurization levels, ensuring that energy-intensive pressurization is applied only when and where contamination is detected, thereby optimizing the balance between cleaning efficiency and energy consumption.

Inventive Principle:
Principle #23Feedback

Applied Scientific Principles

This section explains which scientific principles are used to turn an abstract innovation direction into a practical engineering solution.

Function Achieved in This Case

This solution results in potential energy savings, reduced NVH, and improved cleaning efficiency by allowing selective pressure increase in only the necessary chamber, thereby optimizing airflow and reducing the need for additional pressurization.

Implementation Method 1

The air outlet is positioned to direct airflow across the sensor window, creating an air curtain that prevents contaminants from adhering to the window surface.

Methodology Applied
Scientific EffectAir curtain:

Implementation Method 2

the first chamber including an air inlet and the second chamber including an air outlet, an interior wall between the first chamber and the second chamber, a blower extending through the interior wall

Methodology Applied
Scientific EffectPressurization: Pressurisation

Implementation Method 3

The air outlet is positioned to direct airflow across the sensor window... aimed at the sensor window

Methodology Applied
Scientific EffectShear force:

Data Source

PatentUS11703570B2Sensor assembly for autonomous vehicle
Publication Date: 2023.07.18 FORD GLOBAL TECH LLC
  • US11703570B2 patent drawing
  • US11703570B2 patent drawing
  • US11703570B2 patent drawing

AI summary

A sensor assembly includes a housing having a front chamber and a rear chamber fluidly isolated from the front chamber. The rear chamber includes a rear sensor window and the front chamber includes a front sensor window. The rear chamber includes a rear air inlet and a rear air outlet. The rear air outlet is aimed at the rear sensor window. The front chamber includes a front air inlet and a front air outlet. The front air inlet is aimed at the front sensor window.