IP Library Granted Patent US 11,754,319
Granted Patent B2
US 11,754,319 · App. 17/509,341 · Granted Sep 12, 2023

Pumped thermal storage cycles with turbomachine speed control

Inventors: Robert B. Laughlin (Cambridge, MA); Philippe Larochelle (Cambridge, MA); Nicholas Cizek (Cambridge, MA)
Assignee: MALTA INC.
F24S60/10F01K3/00F01K3/12F01K3/185F01K3/20F01K13/02F02C1/10F02C6/14F28D15/00F28D20/00F05D2250/90Y02E20/14Y02E20/16Y02E60/14Y02E60/16
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 11,754,319
App. No.
17/509,341
Granted
Sep 12, 2023
Kind
B2
Abstract

The present disclosure provides pumped thermal energy storage systems that can be used to store electrical energy. A pumped thermal energy storage system of the present disclosure can store energy by operating as a heat pump or refrigerator, whereby network input can be used to transfer heat from the cold side to the hot side. A working fluid of the system is capable of efficient heat exchange with heat storage fluids on a hot side of the system and on a cold side of the system. The system can extract energy by operating as a heat engine transferring heat from the hot side to the cold side, which can result in network output. Systems of the present disclosure can employ solar heating for improved storage efficiency.

Claims (18)

1. A method of controlling turbomachinery speed, the method comprising:

in a closed cycle fluid path of a pumped thermal system operable in a heat engine mode and a heat pump mode, circulating a working fluid through the closed cycle fluid path including, in sequence, a compressor, a hot side heat exchanger, a turbine, and a cold side heat exchanger in both the heat engine mode and the heat pump mode, and circulating the working fluid through the closed cycle fluid path in the same direction through the compressor and the turbine in both the heat engine mode and the heat pump mode;

determining an increase in a shaft speed of the turbine; and

responsive to the determination of the increase in the shaft speed of the turbine, transferring a quantity of the working fluid from the closed cycle fluid path to an auxiliary working fluid tank.

2. The method of claim 1 , further comprising:

responsive to the determination of the increase in the shaft speed of the turbine, changing a flow rate of a hot side thermal storage (“HTS”) media through the hot side heat exchanger, wherein the HTS media is in thermal contact with the working fluid.

3. The method of claim 1 , further comprising:

responsive to the determination of the increase in the shaft speed of the turbine, changing a flow of a cold side thermal storage (“CTS”) media through the cold side heat exchanger, wherein the CTS media is in thermal contact with the working fluid.

4. The method of claim 1 , wherein transferring the quantity of the working fluid from the closed cycle fluid path to the auxiliary working fluid tank comprises actuating a valve in fluid connection with both a high pressure leg of the closed cycle fluid path and the auxiliary working fluid tank.

5. A method of controlling turbomachinery speed, the method comprising:

in a closed cycle fluid path of a pumped thermal system operable in a heat engine mode and a heat pump mode, circulating a working fluid through the closed cycle fluid path including, in sequence, a compressor, a hot side heat exchanger, a turbine, and a cold side heat exchanger in both the heat engine mode and the heat pump mode, and circulating the working fluid through the closed cycle fluid path in the same direction through the compressor and the turbine in both the heat engine mode and the heat pump mode;

determining a decrease in a shaft speed of the turbine; and

responsive to the determination of the decrease in the shaft speed of the turbine, transferring a quantity of the working fluid from an auxiliary working fluid tank to the closed cycle fluid path.

6. The method of claim 5 , further comprising:

responsive to the determination of the decrease in the shaft speed of the turbine, changing a flow of a hot side thermal storage (“HTS”) media through the hot side heat exchanger, wherein the HTS media is in thermal contact with the working fluid.

7. The method of claim 5 , further comprising:

responsive to the determination of the decrease in the shaft speed of the turbine, changing a flow of a cold side thermal storage (“CTS”) media through the cold side heat exchanger, wherein the CTS media is in thermal contact with the working fluid.

8. The method of claim 5 , wherein transferring the quantity of the working fluid from the auxiliary working fluid tank to the closed cycle fluid path comprises actuating a valve in fluid connection with both a low pressure leg of the closed cycle fluid path and the auxiliary working fluid tank.

Continuity (7)
Continuation 16289017 · Feb 28, 2019
Continuation 15440300 · Feb 23, 2017
Continuation 14668610 · Mar 25, 2015
Continuation PCTUS2013062469 · Sep 27, 2013
Provisional Application 61868070 · Aug 20, 2013
Provisional Application 61706337 · Sep 27, 2012
Related Publication 20220042720A1 · Feb 10, 2022
Cited By (2)
US 12,428,979 US 12,428,989