IP Library Granted Patent US 11,119,249
Granted Patent B2
US 11,119,249 · App. 16/425,412 · Granted Sep 14, 2021

Meteorological sensing systems and methods

Inventors: Christopher Ulmer (San Pedro, CA); Dmitry Starodubov (Reseda, CA); Gregory Peng (Redondo Beach, CA); Rodion Tikhoplav (Santa Monica, CA); David Miller (San Pedro, CA); Andrew Kostrzewski (Garden Grove, CA); Koyiro Minakata (Irvine, CA); Gabriel Kaplan (Calabasas, CA); Tomasz Jannson (Torrance, CA); Edward Patton (Torrance, CA); Sookwang Ro (Glendale, CA); Ihor Berezhnyy (La Jolla, CA)
Assignee: INTELLISENSE SYSTEMS, INC.
G01W1/02B64D1/08G01S7/003G01S7/4813G01S17/86G01S17/95G01W1/08G08B21/18G08B17/005G08B21/10Y02A90/10
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Quick Facts
Patent No.
US 11,119,249
App. No.
16/425,412
Granted
Sep 14, 2021
Kind
B2
Abstract

A portable weather station, including an lower body portion; an upper body portion disposed on the lower body portion in a spaced apart relationship thereby forming an open channel between the upper body portion and the lower body portion; and a plurality of weather condition sensors wherein a first set of one or more of the plurality of weather condition sensors is mounted on the upper body portion of the portable weather station and a second set of one or more of the plurality of weather condition sensors is mounted on the lower body portion of the portable weather station.

Claims (17)

1. A portable weather station for providing weather condition sensing and reporting from remote locations, wherein the portable weather station comprises:

a lower body portion;

an upper body portion disposed on the lower body portion in a spaced apart relationship forming an open channel between the upper body portion and the lower body portion;

a plurality of weather condition sensors, wherein a first set of the plurality of weather condition sensors is mounted on the upper body portion of the portable weather station and a second set of the plurality of weather condition sensors is mounted on the lower body portion of the portable weather station; and

a cloud-ceiling sensing apparatus mounted to the upper body portion, the cloud-ceiling sensing apparatus comprising:

an optical light source disposed to transmit light toward the cloud ceiling;

a photodetector disposed in an orientation to receive light from the optical light source that has been reflected from the cloud ceiling;

a shroud at least partially surrounding the optical light source at a predetermined height, wherein the predetermined height is selected based upon a height needed to prevent light from the optical light source from directly impinging on the photodetector; and

a ceiling height calculation module configured to determine a time of flight for the light to travel from the optical light source to the cloud ceiling and to the photodetector and to compute a distance from the cloud-ceiling sensing apparatus to the cloud ceiling based on the determined time of flight, wherein the ceiling height calculation module determines a height of the cloud ceiling by using the determined time of flight for the light and a speed of light to compute the distance from the cloud-ceiling sensing apparatus to the cloud ceiling and corresponds the computed distance to the height of the cloud ceiling.

2. The portable weather station of claim 1 , wherein the ceiling height calculation module of the cloud-ceiling sensing apparatus determines the time of flight for the light using a laser based range finder approach.

3. The portable weather station of claim 1 , wherein the optical light source of the cloud-ceiling sensing apparatus comprises a pulsed laser source.

4. The portable weather station of claim 1 , wherein the optical light source of the cloud-ceiling sensing apparatus comprises a microchip laser with a passive Q switch.

5. The portable weather station of claim 4 , wherein the microchip laser of the cloud-ceiling sensing apparatus provides a high peak power of a laser pulse in a manner that requires low electrical power.

6. The portable weather station of claim 1 , wherein the optical light source of the cloud-ceiling sensing apparatus comprises a miniature pulsed laser.

7. The portable weather station of claim 6 , wherein the miniature pulse laser of the cloud-ceiling sensing apparatus providers higher energy and operates in a low frequency operating mode.

8. The portable weather station of claim 1 , wherein the photodetector of the cloud-ceiling sensing apparatus comprises an avalanche photodiode.

9. The portable weather station of claim 1 , comprising an upper surface element attached to the top of the upper body portion, wherein the cloud-ceiling sensing apparatus is mounted to the upper surface element.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 2, 2021
From: PHYSICAL OPTICS CORPORATION
To: INTELLISENSE SYSTEMS, INC.
Reel/Frame 055808/0876 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 2, 2021
From: ULMER, CHRISTOPHER; STARODUBOV, DMITRY; PENG, GREGORY; TIKHOPLAV, RODION; MILLER, DAVID; KOSTRZEWSKI, ANDREW; MINAKATA, KOYIRO; KAPLAN, GABRIEL; JANNSON, TOMASZ; PATTON, EDWARD; RO, SOOKWANG
To: PHYSICAL OPTICS CORPORATION
Reel/Frame 055816/0269 →
Continuity (12)
Division 15694750 · Sep 1, 2017
Division 14457511 · Aug 12, 2014
Provisional Application 61865069 · Aug 12, 2013
Provisional Application 61923457 · Jan 3, 2014
Provisional Application 61947886 · Mar 4, 2014
Provisional Application 61953603 · Mar 14, 2014
Provisional Application 61989660 · May 7, 2014
Provisional Application 62005840 · May 30, 2014
Provisional Application 62017745 · Jun 26, 2014
Provisional Application 62020574 · Jul 3, 2014
Provisional Application 62026549 · Jul 18, 2014
Related Publication 20190361148A1 · Nov 28, 2019
Cited By (3)
US 12,286,119 US 12,554,041 US 12,710,563