Method for calculating damage of carbon fiber reinforced polymer composite under action of single lightning current component with fast-rising rate
20210199613 · 2021-07-01
Inventors
- Jinru Sun (Xi'an, Shaanxi, CN)
- Xueling Yao (Xi'an, Shaanxi, CN)
- Xiangyu Tian (Xi'an, Shaanxi, CN)
- Jingliang Chen (Xi'an, Shaanxi, CN)
Cpc classification
G06F30/367
PHYSICS
G06F2119/02
PHYSICS
G01R29/0842
PHYSICS
International classification
Abstract
A method for calculating the damage of a carbon fiber composite reinforced polymer (CFRP) composite under an action of a single lightning current component with a fast-rising rate is disclosed. Through the obtained dynamic impedance curves of the CFRP composite under the action of the non-destructive lightning current component, the anisotropic conductivity of the CFRP composite under the action of the single lightning current component with specified parameters is extrapolated based on pre-designed lightning damage simulation conditions. The anisotropic conductivity is taken as the initial condition of the conductivity of the CFRP composite in the coupled thermoelectric simulation model, which is able to better simulate the real lightning effect on the CFRP composite, and is able to more accurately obtain the lightning damage of the CFRP composite and analyze the relationship between the lightning damage parameters.
Claims
1. A method for calculating damage of a carbon fiber reinforced polymer (CFRP) composite under an action of a single lightning current component with a fast-rising rate, the method comprising steps of: (1) building a test platform for testing the lightning current component with the fast-rising rate, and obtaining three-dimensional anisotropic quasi-dynamic volt-ampere characteristic curves of the CFRP composite under the action of the lightning current component; (2) numerically fitting the obtained three-dimensional anisotropic quasi-dynamic volt-ampere characteristic curves of the CFRP composite under the action of the lightning current component, and obtaining a mathematical expression between an impedance or conductivity of the CFRP composite and waveform parameters of the lightning current component; (3) according to pre-designed lightning damage simulation conditions of the CFRP composite, extrapolating the conductivity of the CFRP composite on a basis of the mathematical expression obtained by the step of (2), and then calculating a three-dimensional anisotropic conductivity of the CFRP composite under an action of a single lightning current component A, Ah or D with a specified peak lightning current component, wherein the peak lightning current is in a range of 100 kA to 200 kA, and taking the three-dimensional anisotropic conductivity as an initial condition of the conductivity of the CFRP composite in a coupled thermoelectric model with the fast-rising rate lightning current component; (4) setting a layup structure of a CFRP composite laminate to be modeled and simulated, and setting a density, specific heat, thermal conductivity and mechanism strength of the CFRP composite in the coupled thermoelectric model; (5) setting a boundary condition of the coupled thermoelectric model for CFRP composite lightning damage simulation, wherein the boundary condition comprises an ambient temperature, a critical temperature for material conductivity change, and a heat conduction and radiation coefficient between the CFRP composite and surrounding environment during lightning strikes; (6) designing simulation calculation meshing in the coupled thermoelectric model of the CFRP composite, setting parameters of the lightning current component with the fast-rising rate, and calculating a thermoelectric effect in a process of the lightning current component interacting with the CFRP composite; (7) after increasing a temperature of the CFRP composite to the critical temperature, resin inside the CFRP composite pyrolyzing, wherein with an increase degree of resin pyrolysis, an electrical conductivity, the thermal conductivity and mechanical properties of the CFRP composite are all changed dramatically, and the electrical conductivity thereof is changed from insulation or high-resistance state to good conductive state; and (8) according to a temperature and pyrolysis degree of the CFRP composite under the action of the single lightning current component which are obtained through simulation and calculation, analyzing a lightning damage area and a lightning damage depth of the CFRP composite.
2. The method according to claim 1, wherein the test platform for testing the lightning current component comprises a lightning current component generating circuit, wherein a high voltage terminal of the lightning current component generating circuit is electrically connected with an upper surface of a tested CFRP composite sample (6), and a low voltage terminal of the lightning current component generating circuit is electrically connected with a lower surface of the tested CFRP composite sample (6) and connected with ground; the test platform further comprises a pulse voltage sampling unit (8) for obtaining a voltage of the tested CFRP composite sample (6), and a lightning current sampling unit (7) for obtaining a current flowing through the tested CFRP composite sample (6), wherein both the pulse voltage sampling unit (8) and the lightning current sampling unit (7) are connected with a computer measurement and control analysis unit (9).
3. The method according to claim 2, wherein the lightning current component generating circuit comprises an RLC (resistor-inductor-capacitor) circuit or a CROWBAR circuit.
4. The method according to claim 3, wherein the test platform further comprises a controllable DC (direct current) charging power supply (1) and an energy storage capacitor unit (2) connected with the controlled DC charging power supply (1) in parallel, wherein a high voltage terminal where the controllable DC charging power supply (1) is connected with the energy storage capacitor unit (2) is connected with a discharge switch (3), a waveform adjustment resistor (4), and a waveform adjustment inductor (5) in series; the waveform adjustment inductor (5) is electrically connected with the upper surface of the tested CFRP composite sample (6), a lower voltage terminal of the energy storage capacitor unit (2) is electrically connected with the lower surface of the tested CFRP composite sample (6) and connected with the ground; the lightning current component with the fast-rising rate is obtained through controlling parameters of the energy storage capacitor unit (2), the waveform adjustment resistor (4) and the waveform adjustment inductor (5).
5. The method according to claim 1, wherein a peak current of the test platform is in a range of tens of amps to thousands of amps.
6. The method according to claim 2, wherein a peak current of the test platform is in a range of tens of amps to thousands of amps.
7. The method according to claim 3, wherein a peak current of the test platform is in a range of tens of amps to thousands of amps.
8. The method according to claim 4, wherein a peak current of the test platform is in a range of tens of amps to thousands of amps.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025]
[0026]
[0027]
[0028]
[0029]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0030] The present invention is further described in detail with reference to accompanying drawings and specific embodiments as follows, which are not intended to limit the present invention.
[0031] Referring to
[0032] The energy storage capacitor unit 2 is connected with the controllable DC charging power supply 1 in parallel, a high voltage terminal where the controllable DC charging power supply 1 is connected with the energy storage capacitor unit 2 is connected with the discharge switch 3, the waveform adjustment resistor 4, and the waveform adjustment inductor 5 in series. The controllable DC charging power supply 1, the energy storage capacitor unit 2, the discharge switch 3, the waveform adjustment resistor 4, and the waveform adjustment inductor 5 form a lightning current component generating circuit. A high voltage terminal of the lightning current component generating circuit is electrically connected with an upper surface of the tested CFRP composite sample 6, and a low voltage terminal of the lightning current component generating circuit is electrically connected with a lower surface of the tested CFRP composite sample 6 and connected with ground. The lightning current component with the fast-rising rate is obtained through controlling parameters of the energy storage capacitor unit 2, the waveform adjustment resistor 4 and the waveform adjustment inductor 5.
[0033] The test platform further comprises a pulse voltage sampling unit 8 for obtaining the voltage of the tested CFRP composite sample 6, and a lightning current sampling unit 7 for obtaining the current through the tested CFRP composite sample 6. Both the pulse voltage sampling unit 8 and the lightning current sampling unit 7 are connected with the computer measurement and control analysis unit 9. Through controlling the parameters of the energy storage capacitor unit 2, the waveform adjustment resistor 4 and the waveform adjustment inductor 5, a lightning current component A with a fast-rising rate and a lightning current component D with a fast-rising rate are obtained. Take the lightning current component A as an example to illustrate an adjustment method of loop parameters. For other lightning current component loops, the loop parameters are able to be selected through referring to this adjustment method.
[0034] The lightning current component A satisfies an expression of:
i(t)=I.sub.0(e.sup.−αt−e.sup.−βt), wherein α=11354 s.sup.−1 and β=647265 s.sup.−1.
[0035] Accordingly, a rise time T.sub.1 and a half peak time T.sub.2 of the lightning current component A are T.sub.1=3.56 μs and T.sub.2=69 μs, respectively.
[0036] Referring to
[0037] If the lightning current component A with the fast-rising rate is generated by the RLC circuit shown in
[0038] wherein in the formula (I), C is a capacitance of the energy storage capacitor unit 2, L is an inductance of the waveform adjustment inductor 5, R is a resistance of the waveform adjustment resistor 4, U.sub.0 is a charging voltage of the energy storage capacitor unit 2, T.sub.1 is a front time of the lightning current component, i.sub.m is a peak value of an output current of the RLC circuit, ξ is a damping coefficient of the RLC circuit shown in
[0039] Three equations of the formula (I) contain four unknown numbers, so the formula (I) has infinitely many solutions. If the capacitance of the energy storage capacitor unit is assumed, related parameters are able to be selected according to Table 1 as follows.
TABLE-US-00001 TABLE 1 Selection of the parameters of the lightning current component A Capacitance (C)/ Resistance (R)/ Inductance (L)/ Serial No. μF Ω μH 1 100 0.9 1.4 2 50 1.8 2.8 3 25 3.6 4.2 . . . . . . . . . . . .
[0040] As shown in
[0041] The lightning current component A with the fast-rising rate is also generated by the CROWBAR circuit shown in
[0042] Referring to
[0043] Referring to
[0044] (1) presetting lightning damage simulation conditions of the CFRP composite, calculating three-dimensional anisotropic conductivities of the CFRP composite under an action of a single lightning current component A (or Ah or D) with a specified parameter (peak current), and taking the three-dimensional anisotropic conductivities as initial values of conductivities of the CFRP composite in a coupled thermoelectric model;
[0045] (2) according to actual situations, setting a layup structure of a CFRP composite laminate, and setting simulation parameters of the coupled thermoelectric model for CFRP composite lightning damage simulation, including a density, specific heat, thermal conductivity and the mechanical strength of the CFRP composite;
[0046] (3) setting a boundary condition of the coupled thermoelectric model for the CFRP composite lightning damage simulation, wherein the boundary condition comprises an ambient temperature, and a radiation coefficient between the CFRP composite and surrounding environment during the lightning strikes;
[0047] (4) designing simulation calculation meshing in the CFRP composite in the coupled thermoelectric model, setting parameters of the lightning current component, simulating and calculating a thermoelectric effect in a process of the lightning current component interacting with the CFRP composite;
[0048] (5) after increasing a temperature of the CFRP composite to a critical value, resin inside the CFRP composite pyrolyzing, wherein with an increase degree of resin pyrolysis, an electrical conductivity, a thermal conductivity and mechanical properties of the CFRP composite are all changed dramatically, and the electrical conductivity thereof is changed from insulation or high-resistance state to good conductive state; and
[0049] (6) according to a temperature and pyrolysis degree of the CFRP composite under the action of the single lightning current component which are obtained through simulation and calculation, analyzing a lightning damage area and a lightning damage depth of the CFRP composite.
[0050] Finally, it should be noted that the above embodiment is only used to illustrate the technical solution of the present invention and is not the limitation to the present invention. Although the present invention has been described in detail with reference to the above embodiment, those skilled in the art should understand that: the specific embodiment of the present invention is still able to be modified or equivalently replaced, and any modification or equivalent replacement that does not deviate from the spirit and scope of the present invention shall be covered by the scope of the claims.