Stainless steel accelerated heat aging test method based on energy analysis
By calculating the thermal aging activation energy of stainless steel through differential thermal analysis and Arrhenius law, combined with accelerated thermal aging experiments, the efficiency and cost issues of long-term service performance evaluation of stainless steel were solved, and rapid and quantitative material performance evaluation was achieved, ensuring the safe and stable operation of nuclear power equipment.
Patent Information
- Application Number
- CN202411670786.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-20
- Publication Date
- 2025-10-21
- Estimated Expiration
- 2044-11-20
AI Technical Summary
Existing technologies make it difficult to quickly and quantitatively evaluate the thermal aging damage of stainless steel under long-term high-temperature service conditions, resulting in high costs and long cycles for material performance degradation assessment, making it difficult to meet the requirements of material damage assessment and new material development.
Differential thermal analysis is used to obtain the heat flow-temperature curve of stainless steel. The thermal aging activation energy of stainless steel is calculated through integration processing and Arrhenius law. Accelerated thermal aging experiments are combined to quickly evaluate material properties. The accelerated thermal aging temperature and time are used to predict the actual service performance.
It achieves rapid and quantitative evaluation of thermal aging damage of stainless steel, reduces experimental costs and cycles, improves the efficiency and accuracy of material performance evaluation, and supports reliability and safety in the nuclear power field.
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Figure CN119438306B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of metal material aging detection, in particular to an energy analysis-based accelerated thermal aging test method for stainless steel. Background Art
[0002] Ferrite-containing stainless steel materials have been widely used in many fields such as nuclear power and petrochemicals due to their excellent strength, corrosion resistance and oxidation resistance. Ferrite-containing stainless steel materials, especially ferrite-containing Z3CN20.09M / CF3 / CF8 duplex stainless steel, are widely used in key components such as nuclear power primary circuit main pipelines, main coolant pump casings and key valves. In addition, ferrite alloys with FeCrAl as the main component are considered to be the forefront of the research and development of advanced nuclear fuel cladding materials (ATF) due to their excellent oxidation resistance. Ferrite-martensitic stainless steel, due to its advantages in strength and radiation resistance, has been selected as the first choice for key structural materials of fourth-generation nuclear power reactors and fusion reactors. The reliability and safety of these materials are crucial to the safe and stable operation of nuclear reactors.
[0003] Although the aforementioned ferrite-containing stainless steel exhibits excellent performance under complex operating conditions, it can suffer significant thermal aging damage during long-term service in the temperature range of 300°C-500°C. From a microscopic perspective, this damage is primarily caused by the appearance of Cr-rich α' phase and Ni- and Si-rich G phase in the ferrite, leading to a significant degradation of the material's macroscopic mechanical properties. This is manifested in increased hardness and brittleness, and decreased toughness and impact resistance. These performance degradations increase the risk of brittle fracture in components, posing a threat to the safety and stability of nuclear power reactors.
[0004] Existing preparation technologies can ensure that the material's initial state meets standard performance requirements. However, under long-term high-temperature service conditions, whether the material can operate reliably during its life cycle and the degree of performance degradation have always been important issues of concern to the engineering community. Currently, aging assessments of stainless steel materials typically rely on full-scale impact and fracture toughness tests on thermally aged materials. This requires a large number of destructive experiments and results in significant material loss. The experimental cycle, which takes several years, is too long and expensive to meet the current requirements for material damage assessment and new material development. Summary of the Invention
[0005] The technical problem to be solved by the present invention is to provide a stainless steel accelerated thermal aging test method based on energy analysis.
[0006] The technical solution adopted by the present invention to solve the technical problem is to provide a stainless steel accelerated thermal aging test method based on energy analysis, comprising the following steps:
[0007] S1. Obtaining heat flow-temperature curves of original stainless steel and heat flow-temperature curves of heat-aged stainless steel using differential thermal analysis;
[0008] S2. Obtaining a corrected heat flow-temperature curve of the stainless steel according to the two heat flow-temperature curves, and obtaining characteristic peaks of the heat-aged stainless steel;
[0009] S3. Integrate the characteristic peak in the corrected heat flow-temperature curve of the stainless steel and take the absolute value to obtain the characteristic enthalpy H;
[0010] S4. Substituting the characteristic enthalpy H into formula (1), calculate the thermal aging activation energy Q of the stainless steel material;
[0011]
[0012] Among them, a and b are the fitting coefficients obtained after the thermal aging test of stainless steel materials;
[0013] S5. Based on the Arrhenius law, the actual service temperature T1 and service time t1 of the stainless steel material and the proposed accelerated heat aging temperature T2 are substituted into formula (2) to calculate the heat aging time t2 required to achieve the same degree of heat aging damage at the accelerated heat aging temperature T2;
[0014]
[0015] Wherein, Q is the activation energy of thermal aging of stainless steel material, and R is the molar gas constant;
[0016] S6. After accelerated thermal aging for t2 at an accelerated thermal aging temperature T2 higher than the actual service temperature T1, the impact energy of the stainless steel material is tested to obtain the impact energy of the stainless steel material after serving for t1 hours at the actual service temperature T1.
[0017] Preferably, in step S4, based on the experimental results of stainless steel material with a chromium content between 10wt.% and 40wt.% and a ferrite content between 15wt.% and 25wt.% under the condition of thermal aging at 400°C for 6000h, the coefficients a=21.3 and b=42.6 are fitted.
[0018] Preferably, in step S1, the heat flow-temperature curve of the original stainless steel is obtained by the following operation:
[0019] After removing the oxide layer on the surface of the original stainless steel, samples were taken and measured using the differential thermal analysis method to obtain the heat flow-temperature curve of the original stainless steel.
[0020] The heat flow-temperature curve of heat-aged stainless steel is obtained by the following operation:
[0021] The original stainless steel is subjected to high-temperature thermal failure treatment, and after removing the surface oxide layer, samples are taken and measured using the differential thermal analysis method to obtain the heat flow-temperature curve of the heat-aged stainless steel.
[0022] Preferably, in step S2, the heat flow-temperature curve of the heat-aged stainless steel is deducted from the heat flow-temperature curve of the original stainless steel, and the baseline is deducted to obtain a corrected heat flow-temperature curve of the stainless steel.
[0023] Preferably, in step S1, the temperature range of the differential thermal analysis method is 300°C to 800°C, and the heating rate is 7°C / s to 15°C / s.
[0024] Preferably, the stainless steel includes Z3CN20.09M stainless steel, CF3, CF8, CF8M, and 2205 duplex stainless steel alloy.
[0025] The beneficial effects of the present invention are as follows: combining the heat flow-temperature curve obtained by differential thermal analysis with the activation energy and Arrhenius law, the performance of stainless steel after thermal aging damage can be quickly and quantitatively evaluated and predicted, providing strong support for the reliability and safety of materials in the nuclear power field. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] The present invention will be further described below with reference to the accompanying drawings and embodiments, in which:
[0027] Figure 1 is a heat flow-temperature curve diagram of the original stainless steel in the present invention;
[0028] Figure 2 This is a heat flow-temperature curve diagram of the heat-aged stainless steel of the present invention;
[0029] Figure 3 The present invention is based on Figure 1 and Figure 2 Corrected HT curve obtained. DETAILED DESCRIPTION
[0030] In order to have a clearer understanding of the technical features, purposes and effects of the present invention, specific embodiments of the present invention are now described in detail with reference to the accompanying drawings.
[0031] The energy analysis-based accelerated thermal aging test method for stainless steel of the present invention may include the following steps:
[0032] S1. Use differential thermal analysis to obtain the heat flow-temperature curve of original stainless steel and the heat flow-temperature curve of heat-aged stainless steel.
[0033] Specifically, the heat flow-temperature curve of the original stainless steel is obtained by the following operation: after removing the surface oxide layer of the original stainless steel, sampling is performed and the heat flow-temperature curve of the original stainless steel is obtained by measuring using a differential thermal analysis method.
[0034] The heat flow-temperature curve of heat-aged stainless steel is obtained by the following operation: the original stainless steel is subjected to high-temperature thermal failure treatment, the surface oxide layer is removed, and then a sample is taken and the heat flow-temperature curve of the heat-aged stainless steel is measured using the differential thermal analysis method.
[0035] In the differential thermal analysis method, the temperature range is 300°C to 800°C, and the heating rate is 7°C / s to 15°C / s.
[0036] S2. Obtain a corrected heat flow-temperature curve of the stainless steel based on the two heat flow-temperature curves, and obtain characteristic peaks of the heat-aged stainless steel.
[0037] Specifically, the heat flow-temperature curve of the heat-aged stainless steel is deducted from the heat flow-temperature curve of the original stainless steel, and the baseline is deducted to obtain the corrected heat flow-temperature curve of the stainless steel.
[0038] S3. Integrate the characteristic peak in the corrected heat flow-temperature curve and take the absolute value to obtain the characteristic enthalpy H.
[0039] S4. Substitute the characteristic enthalpy H into formula (1) to calculate the thermal aging activation energy Q of the stainless steel material;
[0040]
[0041] Among them, a and b are the fitting coefficients obtained after the thermal aging test of stainless steel material.
[0042] In some embodiments, based on the experimental results of stainless steel materials with a chromium content between 10 wt.% and 40 wt.% and a ferrite content between 15 wt.% and 25 wt.% under the condition of thermal aging at 400°C for 6000 h, the fitting coefficients a=21.3 and b=42.6 are obtained.
[0043] It can be understood that the fitting coefficients a and b vary according to different content ranges of chromium, ferrite, etc. and different thermal failure conditions.
[0044] S5. Based on the Arrhenius law, the actual service temperature T1 and service time t1 of the stainless steel material and the proposed accelerated heat aging temperature T2 are substituted into formula (2) to calculate the heat aging time t2 required to achieve the same degree of heat aging damage at the accelerated heat aging temperature T2;
[0045]
[0046] Wherein, Q is the thermal aging activation energy of stainless steel material, and R is the molar gas constant.
[0047] S6. After accelerated thermal aging for t2 at an accelerated thermal aging temperature T2 higher than the actual service temperature T1, the impact energy of the stainless steel material is tested to obtain the impact energy of the stainless steel material after serving for t1 hours at the actual service temperature T1.
[0048] The stainless steels applicable to the present invention include but are not limited to Z3CN20.09M stainless steel, CF3, CF8, CF8M, 2205 duplex stainless steel alloy, etc.
[0049] The present invention will be further described below by taking Z3CN20.09M stainless steel as an example.
[0050] The specific steps for the accelerated thermal aging experiment of Z3CN20.09M stainless steel are as follows:
[0051] (1) Remove the surface oxide layer of the original material (i.e., original Z3CN20.09M stainless steel), take a sample and make it into a thin slice with a thickness of 80 μm, cut 5 mg of the slice sample, and use the differential thermal analysis method to measure the heat flow-temperature curve of the original stainless steel, which is defined as the original HT curve, as shown in the figure. Figure 1 shown.
[0052] (2) The original material was placed in a heat treatment furnace for 3000 hours of heat aging treatment at 400 ° C to remove the surface oxide layer. The sample was made into a thin slice with a thickness of 80 μm. 5 mg of the sheet sample was cut and the heat flow-temperature curve of the heat-aged stainless steel was measured by differential thermal analysis method, which was defined as the heat aging HT curve, as shown in the figure. Figure 2 shown.
[0053] (3) The original HT curve is deducted from the thermal aging HT curve, and the baseline is deducted to obtain the modified HT curve (such as Figure 3 As shown), the characteristic peak of the modified HT curve is integrated and the absolute value is taken to obtain the characteristic enthalpy H = 3.64.
[0054] (4) Substituting the characteristic enthalpy H into formula (1) and converting it, we can obtain the thermal aging activation energy of stainless steel material Q = 102.58:
[0055]
[0056] Among them, based on the experimental results of stainless steel materials with a large chromium content between 10wt.% and 40wt.% and a ferrite content between 15% and 25% under the condition of thermal aging at 400°C for 6000 hours, the fitting coefficients a=21.3 and b=42.6 were obtained.
[0057] (5) Based on the Arrhenius law, the actual service temperature (T1 = 300 ° C) and service time (40 years, t1 = 350400 h) of the stainless steel material and the proposed accelerated thermal aging temperature (T2 = 400 ° C) are substituted into formula (2):
[0058]
[0059] Among them, the actual service temperature T1 = 300℃, the aging time t1 = 350400h, Q = 102.58kJ / mol, R = 8.314J / mol / K, and the calculated thermal aging time t2 = 14292h required to reach the same degree of thermal aging damage at this temperature (T2 = 400℃).
[0060] (6) After the stainless steel material was subjected to accelerated thermal aging for 14292 hours at an accelerated thermal aging temperature of 400°C, which is higher than the actual service temperature, the impact energy of the stainless steel material was tested (109±16.8J). The impact energy of the stainless steel material after serving for 350400 hours (about 40 years) at the actual service temperature of 300°C was obtained to be 107±18.2J.
[0061] The above descriptions are merely embodiments of the present invention and are not intended to limit the patent scope of the present invention. Any equivalent structure or equivalent process transformation made using the contents of the present invention's description and drawings, or directly or indirectly applied in other related technical fields, are also included in the patent protection scope of the present invention.
Claims
1. A stainless steel accelerated thermal aging test method based on energy analysis, characterized in that: The following steps are involved: S1. Obtaining heat flow-temperature curves of original stainless steel and heat flow-temperature curves of heat-aged stainless steel using differential thermal analysis; S2. Obtaining a corrected heat flow-temperature curve of the stainless steel according to the two heat flow-temperature curves, and obtaining characteristic peaks of the heat-aged stainless steel; S3. Integrate the characteristic peak in the corrected heat flow-temperature curve of the stainless steel and take the absolute value to obtain the characteristic enthalpy H; S4. Substituting the characteristic enthalpy H into formula (1), calculate the thermal aging activation energy Q of the stainless steel material; Among them, a and b are the fitting coefficients obtained after the thermal aging test of stainless steel materials; S5. Based on the Arrhenius law, the actual service temperature T1 and service time t1 of the stainless steel material and the proposed accelerated heat aging temperature T2 are substituted into formula (2) to calculate the heat aging time t2 required to achieve the same degree of heat aging damage at the accelerated heat aging temperature T2; Wherein, Q is the activation energy of thermal aging of stainless steel material, and R is the molar gas constant; S6. After accelerated thermal aging for t2 at an accelerated thermal aging temperature T2 higher than the actual service temperature T1, the impact energy of the stainless steel material is tested to obtain the impact energy of the stainless steel material after serving for t1 hours at the actual service temperature T1.
2. The accelerated thermal aging test method for stainless steel based on energy analysis according to claim 1, characterized in that: In step S4, based on the experimental results of stainless steel material with a chromium content between 10wt.% and 40wt.% and a ferrite content between 15wt.% and 25wt.% under the condition of heat aging at 400°C for 6000h, the coefficients a=21.3 and b=42.6 are fitted.
3. The stainless steel accelerated thermal aging test method based on energy analysis according to claim 1, characterized in that: In step S1, the heat flow-temperature curve of the original stainless steel is obtained by the following operations: After removing the oxide layer on the surface of the original stainless steel, samples were taken and measured using the differential thermal analysis method to obtain the heat flow-temperature curve of the original stainless steel. The heat flow-temperature curve of heat-aged stainless steel is obtained by the following operation: The original stainless steel is subjected to high-temperature thermal failure treatment, and after removing the surface oxide layer, samples are taken and measured using the differential thermal analysis method to obtain the heat flow-temperature curve of the heat-aged stainless steel.
4. The method for accelerating thermal aging of stainless steel based on energy analysis according to claim 1, characterized in that: In step S2, the heat flow-temperature curve of the heat-aged stainless steel is deducted from the heat flow-temperature curve of the original stainless steel, and the baseline is deducted to obtain a corrected heat flow-temperature curve of the stainless steel.
5. The method for accelerating thermal aging of stainless steel based on energy analysis according to claim 1, characterized in that: In step S1 , the temperature range of the differential thermal analysis method is 300° C. to 800° C., and the heating rate is 7° C. / s to 15° C. / s.
6. The accelerated thermal aging test method for stainless steel based on energy analysis according to any one of claims 1 to 5, characterized in that: The stainless steel includes Z3CN20.09M stainless steel, CF3, CF8, CF8M, and 2205 duplex stainless steel alloy.
Citation Information
Patent Citations
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