IP Library Granted Patent US 9,407,187
Granted Patent B2
US 9,407,187 · App. 14/339,552 · Granted Aug 2, 2016

System and method for improving response time of a braking unit

View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 9,407,187
App. No.
14/339,552
Granted
Aug 2, 2016
Kind
B2
Abstract

A braking system includes a converter, a capacitor coupled to an output of the converter, a bridge coupled in parallel to the capacitor, and at least one inductor coupled to the bridge, an electrically conductive disc disposed proximate to the at least one inductor, and a switching unit controller for commanding the converter to convert a level of voltage supplied therefrom from a first voltage level to a second voltage level and thereby increase energy stored in the capacitor, and, upon receiving a brake command, commanding the bridge to ramp-up electrical current in the at least one inductor so as to induce an electromagnetic force on the electrically conductive disc.

Claims (38)

1. A braking system, comprising:

a converter;

a capacitor coupled to an output of the converter;

a bridge coupled in parallel to the capacitor;

at least one inductor coupled to the bridge;

an electrically conductive disc disposed proximate to the at least one inductor; and

a switching unit controller for commanding the converter to convert a level of voltage supplied therefrom from a first voltage level to a second voltage level and thereby increase energy stored in the capacitor, and, upon receiving a brake command, commanding the bridge to ramp-up electrical current in the at least one inductor so as to induce an electromagnetic force on the electrically conductive disc.

2. The braking system of claim 1 , wherein the electrical current is ramped up in the at least one inductor within 50 ms.

3. The braking system of claim 1 , wherein the switching unit controller is programmed for, after commanding the bridge to ramp-up electrical current in the at least one inductor and upon determining that the energy stored in the capacitor is below a threshold value, commanding the converter to increase the level of voltage supplied therefrom from the first voltage level to a third voltage level.

4. The braking system of claim 3 , wherein the third voltage level is less than the second voltage level.

5. The braking system of claim 3 , wherein the switching unit controller is programmed for continuing to command the converter to increase the level of voltage supplied therefrom from the first voltage level to the third voltage level until the brake command ceases.

6. The braking system of claim 1 , wherein the switching unit controller is further configured for commanding the bridge to provide energy from the at least one inductor to the capacitor and thereby recharge the capacitor to a fourth voltage level when the brake command ceases.

7. The braking system of claim 6 , wherein the electrical current in the at least one inductor is ramped down within 50 ms after initiation of recharging of the capacitor.

8. The braking system of claim 7 , wherein the switching unit controller is further configured for, after the capacitor is recharged to the fourth voltage level, commanding the converter to convert the level of voltage supplied therefrom from the first voltage level to the second voltage level.

9. The braking system of claim 1 , wherein the first voltage level ranges from about 5V to about 50V.

10. The braking system of claim 9 , wherein the second voltage level ranges from about 200V to about 600V.

11. A method for braking using a braking system comprising a converter, a bridge, a capacitor coupled in parallel between the converter and the bridge, at least one inductor, and an electrically conductive disc, the method comprising:

commanding the converter to increase a level of voltage supplied therefrom from a first voltage level to a second voltage level and thereby increase energy stored in the capacitor; and

upon receiving a brake command, causing the bridge to ramp-up electrical current in the at least one inductor so as to induce an electromagnetic force on the electrically conductive disc.

12. The method of claim 11 , further comprising, while the brake command remains active:

upon determining that the energy stored in the capacitor is below a threshold value,

commanding the converter to convert the level of voltage supplied therefrom from the first voltage level to a third voltage level until the brake command ceases.

13. The method of claim 12 , further comprising, upon the brake command ceasing:

commanding the bridge to provide energy from the at least one inductor to the capacitor and thereby recharge the capacitor to a fourth voltage level.

14. The method of claim 13 , further comprising, after the capacitor is recharged to the fourth voltage level, commanding the converter to convert the level of voltage supplied therefrom from the first voltage level to the second voltage level and thereby increase the energy stored in the capacitor.

15. A power generation system comprising:

an electrically conductive disc coupled to a rotatable shaft;

at least one inductor disposed proximate to the electrically conductive disc;

a power source;

a switching unit coupled between the power source and the at least one inductor, wherein the switching unit comprises:

a converter;

a capacitor coupled to an output of the converter;

a bridge coupled in parallel to the capacitor; and

a switching unit controller for commanding the converter to convert a level of voltage supplied therefrom from a first voltage level to a second voltage level and thereby increase energy stored in the capacitor, and, upon receiving a brake command, commanding the bridge to ramp-up electrical current in the at least one inductor so as to induce an electromagnetic force on the electrically conductive disc.

16. The power generation system of claim 15 , wherein the at least one inductor induces the electromagnetic force on the electrically conductive disc to reduce a speed of the rotatable shaft below a threshold speed value.

17. The power generation system of claim 15 , wherein the switching unit controller is further configured for, after commanding the bridge to ramp-up electrical current in the at least one inductor and upon determining that the energy stored in the capacitor is below a threshold value, commanding the converter to increase the level of voltage supplied therefrom from the first voltage level to a third voltage level.

18. The power generation system of claim 15 , wherein the switching unit controller is further configured for commanding the bridge to provide energy from the at least one inductor to the capacitor and thereby recharge the capacitor to a fourth voltage level when the brake command ceases.

19. The power generation system of claim 18 , wherein the switching unit controller is further configured for, after the capacitor is recharged to the fourth voltage level, commanding the converter to convert the level of voltage supplied therefrom from the first voltage level to the second voltage level.

Assignments (3)
CORRECTIVE ASSIGNMENT TO CORRECT THE RECEIVING PARTY ENTITY PREVIOUSLY RECORDED AT REEL: 48489 FRAME: 001. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Apr 11, 2019
From: GENERAL ELECTRIC COMPANY
To: AI ALPINE US BIDCO INC
Reel/Frame 049858/0407 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 3, 2019
From: GENERAL ELECTRIC COMPANY
To: AI ALPINE US BIDCO LLC
Reel/Frame 048489/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 24, 2014
From: SCHROEDER, STEFAN; PANOSYAN, ARA; BOELD, CHRISTOPH; SCHAUMBERGER, HERBERT; DONG, XIAOTING; LIEBSCHER, UWE
To: GENERAL ELECTRIC COMPANY
Reel/Frame 033381/0882 →