IP Library Granted Patent US 11,703,181
Granted Patent B2
US 11,703,181 · App. 16/644,427 · Granted Jul 18, 2023

Control system for adjusting the temperature of bearing oil for the purpose of minimizing rotor vibrations

Inventors: Andrey Mashkin (Cologne, DE); Robin Burzan (Mülheim an der Ruhr, DE); Sebastian Zahn (Karlsruhe, DE); Gerta Zimmer (Mülheim an der Ruhr, DE); Esteban Grau Sorarrain (Düsseldorf, DE); Alexander Münnekhoff (Essen, DE); Florian Röhr (Mülheim an der Ruhr, DE); Christian Jäkel (Duisburg, DE); Matthias Kowalski (Mülheim an der Ruhr, DE)
Assignee: SIEMENS AKTIENGESELLSCHAFT
F16N7/38F01M5/005F16N2210/02F16N2270/56
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Quick Facts
Patent No.
US 11,703,181
App. No.
16/644,427
Granted
Jul 18, 2023
Kind
B2
Abstract

The invention relates to a control system for reducing rotor vibrations, in particular the variability thereof, in shafting, in particular turbine shafting, in which the temperature of the bearing ( 6 ) of the shaft is measured and the oil ( 8 ) supplied to the bearing is adjusted to a temperature as is assigned as the output variable in an allocation for minimised rotor vibrations with the measured temperature of the bearing as the input variable. The allocation can, for example, be provided by an initial measurement of the rotor vibrations or by a self-learning system. According to the invention, the variability of the rotor vibrations is restricted.

Claims (43)

1. A control system for reducing rotor vibrations in a system, in particular a variability thereof, in a shafting, in particular a turbine shafting, said control system configured to:

measure a temperature of a bearing of a shaft;

adjust a temperature of oil supplied to the bearing to a temperature as assigned as an output variable in an allocation for minimized rotor vibrations with the measured temperature of the bearing as the input variable;

a valve configured to adjust the temperature of the oil supped to the bearing, with the valve and the bearing being part of an oil circuit;

a mixing valve configured to combine an output of an oil cooler and a bypass of the oil circuit, with the bypass bypassing the oil cooler and connected to the mixing valve, said valve being disposed in the bypass;

for initial assignment with different temperatures of the bearing,

measuring the rotor vibrations,

calculating the respective oil temperatures of the bearing for minimizing the rotor vibrations,

storing the respective oil temperatures of the bearing as input variables, and

storing the associated calculated bearing oil temperatures as output variables in the assignment; and

obtaining empirical values from an operating history of the shafting, and storing the empirical values in the assignment as output variables, so that damping at an early stage is enabled and inertia of the system is compensated.

2. The control system of claim 1 , wherein the assignment is provided by a self-learning system.

3. The control system of claim 1 , wherein the assignment is provided by a neural network.

4. The control system of claim 1 , wherein the assignment is provided by a signal processor.

5. The control system of claim 1 , wherein the bearing is a generator bearing.

6. A method for reducing rotor vibrations in a system, in particular a variability thereof, in a shafting, in particular a turbine shafting, said method comprising:

measuring a temperature of a bearing of a shaft; and

adjusting a temperature of oil supplied to the bearing to a temperature as assigned as an output variable in an allocation for minimized rotor vibrations with the measured temperature of the bearing as the input variable, wherein the temperature of the oil supplied to the bearing is adjusted by a valve, with the valve and the bearing being part of an oil circuit;

further comprising combining an output of an oil cooler and a bypass of the oil circuit, with the bypass bypassing the oil cooler and connected to the mixing valve and the valve being disposed in the bypass;

for initial assignment with different temperatures of the bearing,

measuring the rotor vibrations,

calculating the respective oil temperatures of the bearing for minimizing the rotor vibrations,

storing the respective oil temperatures of the bearing as input variables, and

storing the associated calculated bearing oil temperatures as output variables in the assignment; and

obtaining empirical values from an operating history of the shafting, and storing the empirical values in the assignment as output variables, so that damping at an early stage is enabled and inertia is compensated.

7. The method of claim 6 , wherein the assignment is provided by a selflearning system.

8. The method of claim 6 , wherein the assignment is provided by a neural network.

9. The method of claim 6 , wherein the assignment is provided by a signal processor.

10. An oil circuit in a system, in particular a variability thereof, in a shafting, in particular a turbine shafting, the oil circuit comprising:

a bearing for support of a shaft;

a bearing oil tank;

a pump supply oil from the bearing oil tank to the bearing;

an oil cooler;

a bypass bypassing the oil cooler and having a valve configured to adjust a temperature of the oil supplied to the bearing;

a mixing valve fluidly connected to the oil cooler and the bypass to combine an output of the oil cooler and the bypass;

a control system for reducing rotor vibrations, said control system configured to measure the temperature of the bearing, and to adjust a temperature of oil supplied to the bearing to a temperature as assigned as an output variable in an allocation for minimized rotor vibrations with the measured temperature of the bearing as the input variable;

for initial assignment with different temperatures of the bearing,

measuring the rotor vibrations,

calculating the respective oil temperatures of the bearing for minimizing the rotor vibrations,

storing the respective oil temperatures of the bearing as input variables, and

storing the associated calculated bearing oil temperatures as output variables in the assignment; and

obtaining empirical values from an operating history of the shafting, and storing the empirical values in the assignment as output variable, so that damping at an early stage is enabled and inertia of the system is compensated.

11. The oil circuit of claim 10 , wherein the bearing is a generator bearing.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 17, 2023
From: SIEMENS AKTIENGESELLSCHAFT
To: INNOMOTICS GMBH
Reel/Frame 065612/0733 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 19, 2020
From: MASHKIN, ANDREY; BURZAN, ROBIN; ZAHN, SEBASTIAN; ZIMMER, GERTA; GRAU SORARRAIN, ESTEBAN; MÜNNEKHOFF, ALEXANDER; RÖHR, FLORIAN; JÄKEL, CHRISTIAN; KOWALSKI, MATTHIAS
To: SIEMENS AKTIENGESELLSCHAFT
Reel/Frame 054098/0795 →
Priority Claims (1)
DE 10 2017 215 767.4 · Sep 7, 2017 · national
Continuity (1)
Related Publication 20200256393A1 · Aug 13, 2020