Wireless power for gas turbine engine instrumentation
09664116 ยท 2017-05-30
Assignee
Inventors
Cpc classification
F02C3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01K13/02
PHYSICS
F02C7/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02C7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01K13/02
PHYSICS
F03G7/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A gas turbine engine includes a compressor section, a combustor section and a turbine section mounted relative to an engine static structure. A module includes instrumentation that is mounted to the engine static structure. The module includes an energy harvesting power source that is configured to provide electricity to the instrumentation during engine operation and is independent of an external electrical power source.
Claims
1. A gas turbine engine comprising: a compressor section, a combustor section and a turbine section mounted relative to an engine static structure; a module including instrumentation mounted to the engine static structure, the module including an energy harvesting power source configured to provide electricity to the instrumentation during engine operation independent of an external electrical power source, wherein the energy harvesting power source includes a heat source and is configured to provide the electricity in response to a heat flux from the heat source, wherein the heat flux is provided by a cooling fluid within the module, and the module has a cooling line input for receiving the cooling fluid, a valve is connected to the cooling line input that is configured to control a flow of the cooling fluid provided via the cooling line input.
2. The gas turbine engine according to claim 1, wherein the energy harvesting power source includes a thermocouple is arranged adjacent to the heat source and configured to provide the electricity in response to the heat flux.
3. The gas turbine engine according to claim 1, wherein the energy harvesting power source includes a Peltier cell arranged adjacent to the heat source and configured to provide the electricity in response to the heat flux.
4. A station probe comprising: a rake portion that includes a plurality of sensors; an environmental container attached to one end of the rake portion, the environmental container including: signal conditioning circuitry for analyzing sensor signals received from the plurality of sensors to generate measured sensor values; a cooling line input for receiving a cooling fluid; a valve connected to the cooling line input that controls a flow of cooling fluid provided via the cooling line input; a temperature sensor internal to the environmental container that provides temperature feedback regarding an internal temperature of the environmental container; and a communication module for communicating the measured sensor values to a control room; and an energy harvesting power source in electrical communication with at least one of the signal conditioning circuitry and the communication module, wherein the energy harvesting power source includes a heat source and is configured to provide electricity in response to a heat flux from the heat source, and the heat flux is provided by the cooling fluid.
5. The station probe of claim 4, wherein the environmental container includes a controller connected to control a position of the valve based on a monitored internal temperature of the environmental container to regulate the flow of cooling fluid provided via the cooling line input.
6. A station probe comprising: a rake portion that includes a plurality of sensors; and an environmental container attached to one end of the rake portion, the environmental container comprising: inputs connected to receive sensor signals from the plurality of sensors; signal conditioning circuitry for interpreting inputs provided by the plurality of sensors to generate measured sensor values; a cooling line input that receives a cooling fluid; a valve that controls a flow of cooling fluid provided via the cooling line input; a temperature sensor internal to the environmental container that provides temperature feedback regarding an internal temperature of the environmental container; a controller connected to control a position of the valve based on a monitored internal temperature of the environmental container to regulate the flow of cooling fluid provided via the cooling line input; and an energy harvesting power source in electrical communication with at least one of the signal conditioning circuitry and the communication module, wherein the energy harvesting power source includes a heat source and is configured to provide electricity in response to a heat flux from the heat source, and the heat flux is provided by the cooling fluid.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The disclosure can be further understood by reference to the following detailed description when considered in connection with the accompanying drawings wherein:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
DETAILED DESCRIPTION
(10)
(11) It should be understood that the gas turbine engine 100 may be any suitable configuration. For example, the engine 100 may include one or more spools, and the compressor and turbine sections may include one or more fixed and rotating stages within each section. In some engine applications, the fan section may be omitted, or a geared architecture may be used to rotationally drive the fan and/or compressor sections. It should also be understood that the engine 100 may be configured for commercial, military, and industrial-based applications.
(12) In the example shown in
(13) The instrumentation 110 may be placed in any suitable location in the engine 100, for example, the fan section 102, the compressor section 104, the combustor section 106, and/or the turbine section 108.
(14) In an example shown in
(15)
(16) In one embodiment, station probe 10 would be mounted on an engine casing of a gas turbine engine, with rake portion 12 extending into the path of working fluid flowing through the gas turbine engine (i.e., the gas flow). Depending on the axial location of station probe 10 along the length of the gas turbine engine, temperatures may range from moderate (e.g., room temperature) to extreme (e.g., more than six hundred degrees Fahrenheit).
(17) To maintain accurate measurements and prevent electronic component failure (i.e., accurate interpretation of signals provided by the sensors), the temperature within environmental container 14 should remain relatively constant despite the high temperatures to which station probe 10 is exposed. For example, in one embodiment temperature sensors 20 are thermocouples, with thermocouple wires connecting each sensor 20 to signal conditioning circuitry housed in environmental container 14. The thermocouple includes a hot junction (i.e., portion of the sensor exposed along rake portion 12) and a cold junction (located within environmental container 14), wherein a voltage generated by the thermocouple is based on the temperature difference between the hot junction and the cold junction. To correctly interpret the temperature at the hot junction, the temperature at the cold junction must be tightly regulated and/or accurately measured.
(18) To regulate temperature within environmental container 14, a cooling fluid is provided via cooling fluid input 18 to environmental container 14. A controller (shown in
(19) In the embodiment shown in
(20) A benefit of station probe 10 is signal conditioning circuitry is connected to various temperature sensors and/or pressure inlets only once, during assembly of station probe 10. Subsequently, station probe 10 may be installed on different engines without requiring each sensor to be individually disconnected/re-connected, only station probe 10 itself must be connected or disconnected from the engine being tested. In addition, station probe 10 does not require the presence of wires (i.e., thermocouple wires) and pressure lines extending from each sensor to a control room remotely located relative to station probe 10. Rather, the sensor signals provided by the plurality of temperature and/or pressure sensors are analyzed locally by the signal conditioning circuitry within environmental container 14 and measured temperature/pressure values are communicated wirelessly or via a single wired connection to a control room.
(21)
(22) Temperature sensors 20 may be thermocouple devices that provide a current and/or voltage signal having a magnitude related to the measured temperature, resistive temperature devices (RTDs) that require signal conditioning circuitry 30 to provide a reference voltage and/or current that is modified by the RTD based on the measured temperature, or other well-known types of temperature sensor. Signal conditioning circuitry 30 monitors the voltage and/or current signals provided by temperature sensors 20 and in response generates measured temperature values for provision to communication controller 32.
(23) Likewise, signal conditioning circuitry 30 receives pressure inputs communicated via pressure lines from pressure sensor inlets 22 via pressure lines 27 and converted to analog signal by transducers 28. In the embodiment shown in
(24) The internal temperature of environmental container 14 is regulated by controller 36 to maintain a desired temperature. Temperature controller 36 receives feedback from internal temperature sensor 38 regarding the temperature inside environmental container 14. Temperature sensor 38 may be an independent temperature sensor, or may monitor voltage at a cold junction terminal associated with one or more of the thermocouple wires associated with temperature sensors 20 to measure the internal temperature of environmental container 14. In response to the monitored internal temperature, temperature controller 36 modifies a position command to cooling fluid valve 34 to increase or decrease the flow of cooling fluid, and thereby regulate the temperature within environmental container 14.
(25) In this way, the station probe employs an environmental container to provide a stable temperature environment for housing sensor circuitry used to locally interpret temperature and/or pressure signals provided by sensors located on an attached rake portion of the station probe. This solution obviates the need for long wires and/or pressure lines to connect sensors to a remotely located control room.
(26) Example vibration-type energy harvesting power sources are shown in
(27) A heat-type energy harvesting configuration is shown in
(28) An airflow-type energy harvesting power source 316 is shown in
(29) Although example embodiments have been disclosed, a worker of ordinary skill in this art would recognize that certain modifications would come within the scope of the claims. For example, other energy harvesting configurations may be used than those described in this disclosure. For that and other reasons, the following claims should be studied to determine their true scope and content.