IP Library Granted Patent US 12,411,262
Granted Patent B2
US 12,411,262 · App. 17/777,635 · Granted Sep 9, 2025

Aerological sonde and method for measuring meteorological conditions

Inventors: Svante Henriksson (Helsinki, FI); Antti Pasila (Helsinki, FI); Kim Kaisti (Helsinki, FI)
Assignee: Skyfora Oy
G01W1/08G01C19/5712G01P1/00G01P15/18G01S19/01G01W1/02H04Q9/00H04Q2209/84
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Quick Facts
Patent No.
US 12,411,262
App. No.
17/777,635
Granted
Sep 9, 2025
Kind
B2
Abstract

An aerological sonde for measuring meteorological conditions in a cyclonic storm, the aerological sonde including a sonde casing having an outer casing surface and measurement unit arranged inside the sonde casing. The outer casing surface is arranged to form a sole drag surface of the aerological sonde such that a self-sustaining aerological sonde is formed. The measurement unit of the self-sustaining aerological sonde includes a turbulence sensor arranged to measure change of movement of the self-sustaining aerological sonde.

Claims (41)

1. An aerological sonde for measuring meteorological conditions in an atmosphere, the aerological sonde comprising:

a sonde casing including casing walls having an outer surface, the outer surface of the casing walls forming an outer casing surface, and a measurement unit arranged inside the sonde casing, the outer casing surface of the sonde casing is arranged to form a drag surface of the aerological sonde such that a self-sustaining aerological sonde is formed, the drag surface of the aerological sonde being determined by the outer surface of the casing walls forming the outer casing surface of the sonde casing, the measurement unit of the aerological sonde comprises a turbulence sensor arranged to measure movement of the self-sustaining aerological sonde for measuring turbulence in the atmosphere, and the measurement unit of the aerological sonde comprises a magnetometer arranged to measure changes in magnetic field in the atmosphere,

the sonde casing comprises a first symmetry plane (B) and a second symmetry plane (C), the first symmetry plane (B) and the second symmetry plane (C) extending perpendicularly to each other, and

the self-sustaining aerological sonde comprises a center of gravity and defines a weight, the center of gravity is arranged to at least one of the first symmetry plane (B) or the second symmetry plane (C), wherein:

the turbulence sensor comprises a 3-dimensional gyroscopic sensor arranged to measure angular velocity of the self-sustaining aerological sonde in 3-dimensional space around three rotation axes and a 3-dimensional accelerometer arranged to measure changes in movement velocity of the self-sustaining aerological sonde in the 3-dimensional space in relation to three velocity axes,

wherein the self-sustaining aerological sonde has a terminal velocity, the terminal velocity of the self-sustaining aerological sonde being determined by the outer casing surface of the sonde casing and the weight of the self-sustaining aerological sonde, the terminal velocity being equal to or less than 5 m/s,

wherein a drag coefficient of the self-sustaining aerological sonde defined by a shape of the outer casing surface is equal to or greater than 0.4, with a Reynolds number of 10 4 .

2. The aerological sonde according to claim 1 , wherein the outer casing surface of the sonde casing is arranged to form a sole drag surface of the aerological sonde such that the self-sustaining aerological sonde is formed.

3. The aerological sonde according to claim 1 , wherein the gyroscopic sensor is:

a vibrating structure gyroscopic sensor; or

a microelectromechanical gyroscopic sensor.

4. The aerological sonde according to claim 1 , wherein the accelerometer is a microelectromechanical accelerometer.

5. The aerological sonde according to claim 1 , wherein the gyroscopic sensor and the accelerometer are provided as a single component.

6. The aerological sonde according to claim 1 , wherein:

the turbulence sensor is secured to the sonde casing; or

the turbulence sensor is arranged to a measurement unit support, the measurement unit support being secured to the sonde casing.

7. The aerological sonde according to claim 1 , wherein the measurement unit comprises a global navigation satellite system element arranged to provide location information of the self-sustaining aerological sonde.

8. The aerological sonde according to claim 1 , wherein the measurement unit comprises one or more of the following:

a pressure sensor;

a humidity sensor;

a temperature sensor; and

a gas sensor.

9. The aerological sonde according to claim 1 , wherein the sonde casing comprises a third symmetry plane, the first symmetry plane (B), the second symmetry plane (C) and the third symmetry plane extending perpendicularly to each other.

10. The aerological sonde according to claim 1 , wherein the terminal velocity of the self-sustaining aerological sonde is equal to or less than 4 m/s.

11. A method for measuring meteorological conditions in an atmosphere with an aerological sonde, the aerological sonde comprising a sonde casing, the sonde casing including casing walls having an outer surface, the outer surface of the casing walls forming an outer casing surface, and a measurement unit arranged inside the sonde casing, in which method the aerological sonde is released into the atmosphere for measuring meteorological conditions of the atmosphere, the aerological sonde comprises the outer casing surface arranged to form a drag surface of the aerological sonde such that a self-sustaining aerological sonde is formed, the drag surface of the aerological sonde being determined by the outer surface of the casing walls forming the outer casing surface of the sonde casing, the sonde casing comprises a first symmetry plane (B) and a second symmetry plane (C), the first symmetry plane (B) and the second symmetry plane (C) extending perpendicularly to each other, and the self-sustaining aerological sonde comprises a center of gravity and defines a weight, the center of gravity is arranged to at least one of first symmetry plane (B) or the second symmetry plane (C), the self-sustaining aerological sonde has a terminal velocity, the terminal velocity of the self-sustaining aerological sonde being determined by the outer casing surface of the sonde casing and the weight of the self-sustaining aerological sonde, the terminal velocity being equal to or less than 5 m/s, a drag coefficient of the self-sustaining aerological sonde defined by a shape of the outer casing surface is equal to or greater than 0.4, with a Reynolds number of 10 4 , the method comprises:

migrating the aerological sonde in the atmosphere by utilizing the drag surface of the self-sustaining aerological sonde; and

measuring movement of the self-sustaining aerological sonde with a turbulence sensor provided to the aerological sonde during migration of the self-sustaining aerological sonde in the atmosphere for measuring turbulence of the atmosphere wherein:

the method comprises:

measuring angular velocity of the self-sustaining aerological sonde in the atmosphere around three rotation axes with a 3-dimensional gyroscopic sensor;

measuring changes in movement velocity of the self-sustaining aerological sonde in the atmosphere in relation to three velocity axes with a 3-dimensional accelerometer; and

measuring changes in magnetic field in the atmosphere with a magnetometer.

12. The method according to claim 11 , wherein the aerological sonde comprises the outer casing surface arranged to form a sole drag surface of the aerological sonde such that a self-sustaining aerological sonde is formed, and wherein the method further comprises:

migrating the self-sustaining aerological sonde in the atmosphere by utilizing the sole drag surface of the self-sustaining aerological sonde; and

measuring turbulence of the atmosphere with the turbulence sensor provided to the self-sustaining aerological sonde during migration of the self-sustaining aerological sonde in the atmosphere.

13. The method according to claim 11 , wherein the method further comprises measuring location of the self-sustaining aerological sonde with a global navigation satellite system during migration of the self-sustaining aerological sonde in the atmosphere.

14. The aerological sonde according to claim 1 , wherein the weight of the self-sustaining aerological sonde is equal to or less than 8 g.

15. The aerological sonde according to claim 1 , wherein the sonde casing defines a weight, and wherein the weight of the sonde casing is equal to or less than 2.5 g.

16. The aerological sonde according to claim 1 , wherein the aerological sonde is free from an external drag member increasing drag force of the aerological sonde.

17. The aerological sonde according to claim 1 , wherein the 3-dimensional gyroscopic sensor is a single sensor.

18. The aerological sonde according to claim 1 , wherein the 3-dimensional accelerometer is a single accelerometer.

19. The aerological sonde according to claim 1 , wherein the terminal velocity of the self-sustaining aerological sonde is greater than 1 m/s.

Assignments (2)
CHANGE OF NAME Recorded Aug 15, 2025
From: HURRICANE UNWINDER OY AB
To: SKYFORA OY
Reel/Frame 072525/0367 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 1, 2022
From: HENRIKSSON, SVANTE; PASILA, ANTTI; KAISTI, KIM
To: HURRICANE UNWINDER OY AB
Reel/Frame 060064/0517 →
Priority Claims (1)
FI 20195996 · Nov 20, 2019 · national
Continuity (1)
Related Publication 20220404523A1 · Dec 22, 2022
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