Distance measuring device
US-2021190924-A1 · Jun 24, 2021 · US
US12115949B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-12115949-B2 |
| Application number | US-202117534810-A |
| Country | US |
| Kind code | B2 |
| Filing date | Nov 24, 2021 |
| Priority date | Nov 24, 2021 |
| Publication date | Oct 15, 2024 |
| Grant date | Oct 15, 2024 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
A Lidar system, window of the Lidar system and a method of moving a fluid along a window. The window includes a first electrode disposed on a first side of a outermost layer of the window, a second electrode disposed on the first side of the outermost layer, and a processor. The processor is configured to activate the first electrode to draw a fluid to a first location on a second side of the outermost layer opposite the first electrode, deactivate the first electrode, and activate the second electrode to draw the fluid to a second location on the second side of the outermost layer opposite the second electrode.
Opening claim text (preview).
What is claimed is: 1. A method of moving a fluid droplet along a window, comprising: performing an activation sequence over a first electrode group and a second electrode group disposed on a first side of the window, each of the first electrode group and the second electrode group including at least a first electrode, a second electrode, a third electrode and a fourth electrode, wherein the first electrode and the second electrode are disposed in a first electrode layer located at a first distance from the first side, and the third electrode and the fourth electrode are disposed in a second electrode layer located at a second distance from the first side of the outermost layer, wherein performing the activation sequence includes: activating first electrodes to a first electric potential while holding the second electrodes, the third electrodes and the fourth electrodes at a second electric potential to draw the fluid droplet to a first location on a second side of the window opposite the first electrode of the first electrode group; activating the second electrodes to the first electric potential with the first electrodes, the third electrodes and the fourth electrodes held at the second electric potential to draw the fluid droplet from the first location to a second location on the second side of the window opposite the second electrode of the first electrode group; and activating the third electrodes to the first electric potential with the first electrodes, the second electrodes and the fourth electrodes held at the second electric potential to draw the fluid droplet from the second location to a third location on the second side of the outermost layer opposite the third electrode of the first electrode group; and activating the fourth electrodes to the first electric potential with the first electrodes, the second electrodes and the third electrodes held at the second electric potential to draw the fluid droplet from the third location to a fourth location on the second side of the outermost layer opposite the fourth electrode of the first electrode group. 2. The method of claim 1 , further comprising repeating the activation sequence when the fluid droplet is at the fourth location to draw the fluid droplet away from the fourth location of the first group to the first location of the second group. 3. The method of claim 1 , wherein one of: (i) the first electrode and the second electrode are arranged in a line along a selected direction; and (ii) the first electrode and the second electrode form a spiral. 4. The method of claim 1 , further comprising performing at least one of: (i) measuring an impedance when at least the first electrode is activated to determine the presence of ice; and (ii) activating at least the first electrode to melt the ice. 5. A window of a Lidar system, comprising: a first electrode group and a second electrode group disposed on a first side of an outermost layer of the window, each of the first electrode group and the second group including at least a first electrode, a second electrode, a third electrode and a fourth electrode, wherein the first electrode and the second electrode are disposed in a first electrode layer located at a first distance from the first side, and the third electrode and the fourth electrode are disposed in a second electrode layer located at a second distance from the first side of the outermost layer; and a processor configured to run an activation sequence which includes: activating the first electrodes to a first electric potential with the second electrodes, the third electrodes and the fourth electrodes held at a second electric potential to draw a fluid droplet to a first location on a second side of the outermost layer opposite the first electrode of the first electrode group; activating the second electrodes to the first electric potential with the first electrodes, the third electrodes and the fourth electrodes held at the second electric potential to draw the fluid droplet from the first location to a second location on the second side of the outermost layer opposite the second electrode of the first electrode group; and activating the third electrodes to the first electric potential with the first electrodes, the second electrodes and the fourth electrodes held at the second electric potential to draw the fluid droplet from the second location to a third location on the second side of the outermost layer opposite the third electrode of the first electrode group; and activating the fourth electrodes to the first electric potential with the first electrodes, the second electrodes and the third electrodes held at the second electric potential to draw the fluid droplet from the third location to a fourth location on the second side of the outermost layer opposite the fourth electrode of the first electrode group. 6. The window of claim 5 , wherein the processor is configured to repeat the activation sequence to draw the fluid droplet away from the fourth location of the first group to the first location of the second group. 7. The window of claim 5 , wherein one of: (i) the first electrode and the second electrode are arranged in a line along a selected direction; and (ii) the first electrode and the second electrode form a spiral. 8. The window of claim 5 , wherein the processor is further configured to perform at least one of: (i) measuring an impedance when at least the first electrode is activated to detect the presence of ice; and (ii) activating at least the first electrode to melt the ice. 9. A Lidar system, comprising: a window of the Lidar system, the window including a glass layer having a first side and a second side opposite the first side; a first electrode group and a second electrode group disposed on a first side of an outermost layer of the window, each of the first electrode group and the second group including at least a first electrode, a second electrode, a third electrode and a fourth electrode, wherein the first electrode and the second electrode are disposed in a first electrode layer located at a first distance from the first side, and the third electrode and the fourth electrode are disposed in a second electrode layer located at a second distance from the first side of the outermost layer; and a processor configured to run an activation sequence which includes: activating the first electrodes to a first electric potential with the second electrodes, the third electrodes and the fourth electrodes held at a second electric potential to draw a fluid droplet to a first location on the second side of the glass layer opposite the first electrode of the first electrode group, activating the second electrodes to the first electric potential with the first electrodes, the third electrodes and the fourth electrodes held at the second electric potential to draw the fluid droplet from the first location to a second location on the second side of the glass layer opposite the second electrode of the first electrode group; and activating the third electrodes to the first electric potential with the first electrodes, the second electrodes and the fourth electrodes held at the second electric potential to draw the fluid droplet from the second location to a third location on the second side of the outermost layer opposite the third electrode of the first electrode group; and activating the fourth electrodes to the first electric potential with the first electrodes, the second electrodes and the third electrodes held at the second electric potential to draw the fluid droplet from the third location to a fourth location on the second side of the outermost layer opposite the fourth electrode of the first electrode group. 10. The Lidar sy
for cleaning vehicle exterior · CPC title
Cleaning windscreens, windows or optical devices {(wind deflectors specially adapted for preventing soiling of windows or windscreens B60J1/2002)} · CPC title
comprising means for cleaning or deicing · CPC title
in which a body is moved along a path due to interaction with an electric field travelling along the path · CPC title
of land vehicles · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.