Auto-driven plasma actuator for transition from deflagration to detonation combustion regime and method
11493207 · 2022-11-08
Assignee
Inventors
Cpc classification
F23R7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02K7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F23R7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An engine that uses detonation for generating energy includes a housing; an inlet configured to inject a fuel mixture into an ignition region of the housing, the inlet being attached to the housing; an ignitor located in the ignition region and configured to ignite the fuel mixture; a deflagration to detonation, DDT, region in fluid communication and downstream from the ignition region; a pair of electrodes located in the DDT region and configured to apply nanosecond repetitive voltage pulses to the DDT region; and a detonation region, within the housing, in fluid communication and downstream from the DDT region. The nanosecond repetitive voltage pulses generate a non-thermal plasma that transition a combustion front propagation through the housing from a deflagration mode to a detonation mode.
Claims
1. An engine that uses detonation for generating energy, the engine comprising: a housing; an inlet configured to inject a fuel mixture into an ignition region of the housing, the inlet being attached to the housing; an ignitor located in the ignition region and configured to ignite the fuel mixture; a deflagration to detonation, DDT, region in fluid communication and downstream from the ignition region; a pair of electrodes located in the DDT region and configured to apply nanosecond repetitive voltage pulses with an amplitude smaller than a threshold breakdown voltage of the fuel mixture to the ignited fuel mixture in the DDT region; and a detonation region, within the housing, in fluid communication and downstream from the DDT region, wherein the nanosecond repetitive voltage pulses generate a non-thermal plasma that transition a combustion front propagation, of the ignited fuel mixture, through the housing, from a deflagration mode to a detonation mode, wherein a pressure wave moves ahead of the combustion front in the DDT region, and wherein the nanosecond repetitive voltage pulses are applied between the combustion front and the pressure wave or are applied into the combustion front itself.
2. The engine of claim 1, wherein the combustion front has a subsonic speed in the DDT region and a sonic speed, with respect to the burnt gases, in the detonation region.
3. The engine of claim 1, wherein the engine is a gas turbine.
4. The engine of claim 1, further comprising: a pulser configured to generate the nanosecond repetitive voltage pulses; and a control system configured to control the pulser and the pair of electrodes.
5. The engine of claim 4, wherein the control system includes a processor and a memory, and the processor is configured to turn on the pair of electrodes before the combustion front arrives at a location of the pair of electrodes.
6. The engine of claim 5, wherein the processor instructs the pulser to generate the nanosecond repetitive voltage pulses.
7. The engine of claim 6, wherein the processor receives current or voltage measurements indicative of a volume between the electrodes and based on the measurements, determines to switch off the nanosecond repetitive voltage pulses applied by the pair of electrodes.
8. The engine of claim 6, wherein the processor is configured to switch off the nanosecond repetitive voltage pulses applied by the pair of electrodes after a predetermined number of discharges.
9. A method for driving an engine that uses detonation for generating energy, the method comprising: injecting a fuel mixture at an inlet, into an ignition region of a housing; igniting the fuel mixture with an ignitor located in the ignition region; applying nanosecond repetitive voltage pulses with an amplitude smaller than a threshold breakdown voltage of the fuel mixture to the ignited fuel mixture, with a pair of electrodes located in a deflagration to detonation, DDT, region, which is in fluid communication and downstream from the ignition region; and initiating a detonation of a combustion front in a detonation region, within the housing, which is in fluid communication and downstream from the DDT region, wherein the nanosecond repetitive voltage pulses generate a non-thermal plasma that initiate a transition of the combustion front propagation, of the ignited fuel mixture, through the housing from a deflagration mode to a detonation mode, wherein a pressure wave moves ahead of the combustion front in the DDT region, and wherein the nanosecond repetitive voltage pulses are applied between the combustion front and the pressure wave or are applied into the combustion front itself.
10. The method of claim 9, wherein the combustion front has a subsonic speed in the DDT region and a sonic speed, with respect to the burnt gases, in the detonation region.
11. The method of claim 9, further comprising: generating with a pulser the nanosecond repetitive voltage pulses; and controlling with a control system the pulser and the pair of electrodes to turn on the pair of electrodes before the combustion front arrives at a location of the pair of electrodes.
12. The method of claim 11, further comprising: instructing the pulser to generate the nanosecond repetitive voltage pulses with the amplitude smaller than the threshold breakdown voltage of the fuel mixture for a selected pressure and temperature of the gas.
13. The method of claim 12, further comprising: receiving current or voltage measurements indicative of a volume between the pair of electrodes; and based on the measurements, determining to switch off the nanosecond repetitive voltage pulses applied by the pair of electrodes.
14. The method of claim 12, further comprising: switching off the nanosecond repetitive voltage pulses applied by the pair of electrodes after a predetermined number of discharges.
15. An auto-driven plasma actuator control system comprising: a pulser configured to generate nanosecond repetitive voltage pulses; a pair of electrodes to be located in a deflagration to detonation, DDT, region of an engine, and configured to apply nanosecond repetitive voltage pulses having an amplitude smaller than a threshold breakdown voltage of a fuel mixture to the DDT region; and a control system configured to control the pulser and the pair of electrodes, wherein the control system turns on the pair of electrodes before a combustion front of an ignited fuel mixture of the engine arrives at a location of the pair of electrodes and turns the pair of electrodes off after the combustion front has passed, and wherein the nanosecond repetitive voltage pulses generate a non-thermal plasma that transitions the combustion front propagation, of the ignited fuel mixture, through the engine from a deflagration mode to a detonation mode, wherein a pressure wave moves ahead of the combustion front in the DDT region, and wherein the nanosecond repetitive voltage pulses are applied between the combustion front and the pressure wave or are applied into the combustion front itself.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings, which are incorporated in and constitute a part of the specification, illustrate one or more embodiments and, together with the description, explain these embodiments. In the drawings:
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DETAILED DESCRIPTION
(16) The following description of the embodiments refers to the accompanying drawings. The same reference numbers in different drawings identify the same or similar elements. The following detailed description does not limit the invention. Instead, the scope of the invention is defined by the appended claims. The following embodiments are discussed, for simplicity, with regard to a detonation tube that uses a fuel mixture of H.sub.2-air. However, similar embodiments and methods may be used for any detonation engine or fuel mixtures. Note that in the following, the term “engine” is understood to mean a detonation engine, a rotating detonation engine and/or a pressure-gain combustor.
(17) Reference throughout the specification to “one embodiment” or “an embodiment” means that a particular feature, structure or characteristic described in connection with an embodiment is included in at least one embodiment of the subject matter disclosed. Thus, the appearance of the phrases “in one embodiment” or “in an embodiment” in various places throughout the specification is not necessarily referring to the same embodiment. Further, the particular features, structures or characteristics may be combined in any suitable manner in one or more embodiments.
(18) In the past, nanosecond repetitively pulsed (NRP) discharges have shown promising ability for combustion enhancement and ignition. For example, NRP discharges have been successfully used to decrease (1) the ignition delay time (Yin et al., 2011) in the ignition region 120 of
(19) However, in this document, a new application of a non-equilibrium plasma generated with NRP discharges is implemented in an engine to decrease the DDT distance. Experiments have been conducted at atmospheric conditions in a closed tube 200 of 3.5 m length and 38 mm inlet diameter as illustrated in
(20) In this context, according to an embodiment illustrated in
(21) By applying the high-voltage 336 generated by pulser 364 in the DDT region 330, a non-thermal plasma 338 in generated between electrodes 362 under specific conditions which are discussed later. The energy associated with this plasma is deposited into the fuel mixture 304 and thus, it can generate the detonation of the fuel and also it can decrease the time for the DDT process.
(22) In a simplified way, after the fuel mixture is ignited, a flame front or combustion front is generated and this front propagates inside the tube as long as there is fuel mixture to maintain the flame. With regard to
(23) A deflagration can be defined as the combustion (or flame) front propagating in a fuel mixture, mainly due to burnt gases expansion. During a deflagration process, the combustion front 531 propagates with a certain speed, typically below 100 m/s. In confined environments, as in the tube 500 of
(24) A deflagration turns into a detonation when the pressure wave 533 (unburnt gas ahead of the combustion front) becomes a shock wave, i.e., it is characterized by supersonic flame propagation velocities. A typical velocity for a shock wave is up to 2,000 m/s. A shock wave behind which conditions of auto-ignition are reached (i.e., temperatures due to the shock wave are high enough to ignite the fuel mix) becomes a self-driven detonation wave and this is desired to be achieved inside tube 500. Thus, a detonation can be defined as the self-sustained propagation of a shock wave 533 followed by a combustion front 531 of auto-ignited combustion.
(25) According to the embodiment illustrated in
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(27) The non-thermal plasma 538 discussed above needs to be actuated at the right time for achieving the conditions noted in the embodiments of
(28) To achieve the right timing for applying the NRP high-voltage, the control system 368 (see
(29) According to this embodiment, the high-voltage pulses 736 are applied by electrodes 762 in a continuous manner for a given amount of time. The characteristics of the unburnt gases (fuel mixture) are relatively well known in terms of mixture, temperature and pressure. Thus, the high-voltage 736 can be determined prior to using the engine (tube in this case) so that its amplitude is lower than the breakdown voltage for the unburnt fuel mixture. When a high-voltage is applied to a gas, if the voltage is not high enough, nothing happens in the gas, i.e., no plasma is formed and thus no current appears in the gas, between the electrodes applying the high-voltage. However, if the voltage applied by these electrodes is higher than a threshold breakdown voltage (i.e., the voltage at which the fuel mixture is ionized and a current appears through the fuel mixture reflecting that the plasma is formed), the fuel mixture breaks down into positive and negative charges and a current flows between the electrodes creating the plasma 738. The threshold breakdown voltage for a specific gas (e.g., a specific fuel mixture at specific pressure and temperature) is known. Thus, the control system 768 can include a processor 770 and a memory 772 that stores these values. When a certain fuel mixture at certain pressure and temperature is selected for the tube 700, the processor 770 may be instructed, through an input/output interface 774, by the operator of the engine, which fuel mixture is going to be used. Pressure and temperature in the engine can be either known from characterization of the engine or measured by sensors or any diagnostics. Processor 770 then selects the correct threshold breakdown voltage for the selected fuel mixture, and instructs the pulser 764 to apply a voltage having an amplitude less than the threshold breakdown voltage.
(30) This voltage less than the threshold breakdown voltage (applied voltage 736 herein) is then applied continuously (in the sense of plural pulses as illustrated in
(31) Applying the high-voltage 736 before the combustion front arrives at the electrodes 762 does not negatively impact the fuel mixture 704 present between the electrodes (see
(32) When the combustion front 731 (still in the deflagration mode) approaches the electrodes 762, as illustrated in
(33) As illustrated in
(34) After the combustion front 731 has passed electrodes 762, as illustrated in
(35) In one application, processor 770 may not use the measurements from measurement unit 780 for determining when to switch off the switch 766. For this application, the processor 770 may be instructed to switch off the switch 766 after a predetermined number of high-voltage pulses are applied to the electrodes. For example, the predetermined number of pulses may be 100. Other values for this number may be used depending on the type of engine, its characteristics and its type of fuel.
(36) The location of electrodes 762 relative to the ignitor 724, which is located in the ignition zone 720, varies, depending on the geometry of the detonation engine. For example, this distance D (see
(37) Another factor that may reduce the DDT time is related to the placement of an obstacle inside the tube, just before or at the location of electrodes 762. This concept is illustrated in
(38) The following experiments were conducted within a tube for determining the DDT region characteristics of traditional methods and the novel embodiments discussed above. The first setup used a fuel mixture of H.sub.2-air at stoichiometry with an initial pressure of 1 bar. The fuel mixture was ignited with a spark at one end of the tube. No obstacle was present in the tube. The second setup used the same conditions as in the first setup, but an obstacle was located in the middle of the tube. This setup had a blockage ratio of 43%, which is an optimized value based on literature examples. The third setup used the same conditions as in the first setup, no obstacle, but an NRP system (as described in
(39) The evolution of the combustion front's speed for these three setups is shown in
(40) For the third setup, the corresponding speed 930 (the triangles in the figure) also reaches the detonation speed 900 about 327 cm away from the ignition source. Detonation is also achieved with this setup.
(41) In one embodiment, also illustrated in
(42) The geometry as well as the number of NRP electrodes in the DDT region can vary significantly. For example,
(43) For example, experiments were conducted with a pin-to-ring configuration of the electrode as shown in
(44) Depending on the detonation engine geometry, the inter-electrode gap distance can vary from 5 mm to 100 mm. The material of the electrodes can be any conductive material that can support thermal and pressure conditions generated by a detonation. For example, the electrodes can be made of stainless steel, tungsten, or iron alloy.
(45) The high-voltage pulses (see for example
(46) As discussed above with regard to
(47) A comparison of the configuration illustrated in
(48) The main drawbacks of an elevated energy deposition during ignition (the first traditional way) are: i) the deposited ignition energy affects the yield of the engine. In extreme cases, to reach the onset of a detonation, the ignition energy necessary is comparable to the thermal energy released by the detonation; and ii) a strong energy deposition is associated with strong heating and damages of the surfaces (thermal erosion). The embodiments discussed above do not have these problems because they work with standard ignition systems (for example, from commercial spark ignition engines) and the energy deposited by the non-thermal plasma actuation to obtain a detonation is significantly less than the increase in ignition energy that would lead to a same effect on the DDT.
(49) In addition, due to the ultra-short duration of the high-voltage pulses (see
(50) The main drawbacks of the obstacle and/or geometry strategies, associated with the second traditional way, to reach the onset of a detonation are: i) they are permanent and adapted to a specific regime of the detonation engine. If the fuel, the load, or the temperature are changed, they may significantly lose their efficiency; and ii) they impact the global geometry of the engine, irrespective of the yield optimization of the system. In the case of actuation by arc discharges, the energy required is significantly higher compared to the energy released by the detonation, and the problem of electrode erosion is the same as for elevated ignition energy. The above discussed embodiments have a minimal impact on the design of the internal structure of the detonation chamber. The electrodes of the NRP system 360 in
(51) According to an embodiment, illustrated in
(52) In the method, the nanosecond repetitive voltage pulses are applied into the combustion front, or the nanosecond repetitive voltage pulses are applied between the combustion front and a pressure wave that moves ahead of the combustion front, or both. In one application, the combustion front has a subsonic speed in the DDT region and a sonic speed, with respect to the burnt gases, in the detonation region.
(53) The method may further include a step of generating with a pulser the nanosecond repetitive voltage pulses, and controlling with a control system the pulser and the pair of electrodes to turn on the pair of electrodes before the combustion front arrives at a location of the pair of electrodes. Optionally, the method may include instructing the pulser to generate the nanosecond repetitive voltage pulses with an amplitude smaller than a threshold breakdown voltage of the fuel mixture, and/or receiving current or voltage measurements indicative of a volume between the pair of electrodes, and based on the measurements, determining to switch off the nanosecond repetitive voltage pulses applied by the pair of electrodes. In another application, the method may include switching off the nanosecond repetitive voltage pulses applied by the pair of electrodes after a predetermined number of discharges.
(54) In another embodiment, there is an auto-driven plasma actuator control system (e.g., system 360), that includes a pulser configured to generate nanosecond repetitive voltage pulses, a pair of electrodes to be located in a deflagration to detonation, DDT, region of an engine, and configured to apply nanosecond repetitive voltage pulses to the DDT region, and a control system configured to control the pulser and the pair of electrodes. The control system turns on the pair of electrodes before a combustion front of the engine arrives at a location of the pair of electrodes and turns the pair of electrodes off after the combustion front has passed, and the nanosecond repetitive voltage pulses generate a non-thermal plasma that transition the combustion front propagation through the engine from a deflagration mode to a detonation mode.
(55) The disclosed exemplary embodiments provide methods and systems for accelerating a deflagration to detonation transition in an engine. It should be understood that this description is not intended to limit the invention. On the contrary, the exemplary embodiments are intended to cover alternatives, modifications and equivalents, which are included in the spirit and scope of the invention as defined by the appended claims. Further, in the detailed description of the exemplary embodiments, numerous specific details are set forth in order to provide a comprehensive understanding of the claimed invention. However, one skilled in the art would understand that various embodiments may be practiced without such specific details.
(56) Although the features and elements of the present exemplary embodiments are described in the embodiments in particular combinations, each feature or element can be used alone without the other features and elements of the embodiments or in various combinations with or without other features and elements disclosed herein.
(57) This written description uses examples of the subject matter disclosed to enable any person skilled in the art to practice the same, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the subject matter is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims.
REFERENCES
(58) Lacoste, D. A., Moeck, J. P., Durox, D., Laux, C. O., and Schuller, T. 2013. Effect of nanosecond repetitively pulsed discharges on the dynamics of a swirl-stabilized lean premixed flame. J. Engineer. Gas Turbines Power, 135, 101501. Lefkowitz, J. K., Guo, P., Ombrello, T., Won, S. H., Stevens, C. A., Hoke, J. L., Schauer, F., Ju, Y. 2015. Schlieren imaging and pulsed detonation engine testing of ignition by nanosecond repetitively pulsed discharge. Combust. Flame, 162(6), 2496-2507. Pilla, G., Galley, D., Lacoste, D. A., Lacas, F., Veynante, D., and Laux, C. O. 2006. Stabilization of a turbulent premixed flame using a nanosecond repetitively pulsed plasma. IEEE Trans. Plasma Sci., 34(6), 2471. Pilla, G., Lacoste, D. A., Veynante, D., and Laux, C. O. 2008. Stabilization of a swirled propane-air flame using a nanosecond repetitively pulsed plasma. IEEE Trans. Plasma Sci., 36(4), 940.
(59) Yin, Z., Takashima, K., and Adamovich, I. V. 2011. Ignition time measurements in repetitive nanosecond pulse hydrogen-air plasmas at elevated initial temperatures. IEEE Trans. Plasma Sci., 39(12), 3269.