Application of Nondestructive Testing Technology in Quality Evaluation of Plain Concrete and RC Structures in Bridge Engineering: A Review
Abstract
:1. Introduction
2. Development History of Nondestructive Testing Technology
2.1. Nondestructive Inspection
2.2. Nondestructive Testing
2.3. Nondestructive Testing Evaluation
3. Application of Nondestructive Testing Technology in Reinforced Concrete Structure
3.1. Acoustic Emission
3.2. Impact Echo Detection Technology
3.3. Ultrasonic Detection Technology
3.4. Infrared Thermography
3.5. Ground Penetrating Radar
3.6. Piezoelectric Transducers
3.7. X-ray Computed Tomography Technique
4. Selection of Nondestructive Testing Technology
- (1)
- The development of the NDT theory should meet the actual needs;
- (2)
- Nondestructive testing technology should conform to the concept of green, economic, environmental protection, and energy savings;
- (3)
- Digitization, portability, and intelligence of testing instruments;
- (4)
- Automation of data processing;
- (5)
- Visualization of test results.
5. Conclusions
- (1)
- The theoretical research and engineering applications of acoustic emission (AE), such as the detection of structural delamination, cracks, and steel corrosion, have achieved remarkable achievements. In field detection, noise interference and long propagation distance will lead to signal attenuation. The quantitative study of AE damage is not mature enough, and the parameters for quantitative description of structural damage degree are not uniform.
- (2)
- IE has strong penetration and a long wavelength. IE is effective in detecting concrete structure thickness, surface crack depth, and internal defects in concrete. In the quantitative detection of grouting compactness of prestressed pipeline, the accuracy is better than UT, GPR, and X-ray.
- (3)
- UT is widely used in the detection of micro and macro defects of reinforced concrete, compressive strength of concrete, and grouting quality of prestressed air ducts, especially in the evaluation of concrete slab layering and holes. The location detection of defects is not accurate enough. In addition, UT is greatly affected by the reinforcement mesh in the structure. IRT can quantitatively evaluate defects and damage in the near-surface area of various structures. IRT is widely used in the detection of bridge deck delamination, but the existence of a bridge deck covering, mortar, and water reduces the accuracy.
- (4)
- GPR has a good visualization effect, showing the internal image of the structure, damage, and change of the structure. It is suitable for the quality assessment of roads and bridges and has a good effect on the empty-out and positioning detection of concrete structures. However, the electromagnetic wave is susceptible to being interfered with by the dense metal layer inside the measured structure, which will increase the difficulty of analysis and reduce the test accuracy.
- (5)
- In the field of structural health monitoring, PZT could solve the reliability problem of concrete infrastructure in different life stages. In addition, PZT has achieved remarkable results in the detection of concrete strength, reinforced concrete corrosion, and compactness of prestressed grouting pipe.
- (6)
- The gradual application of X-rays in the field of nondestructive engineering testing is good proof of the continuous progress of science and technology. X-ray tomography technology is mainly used in the nondestructive evaluation of reinforced concrete corrosion, concrete cracks, gaps, and composite materials. The method is efficient, flexible, and highly visualized. Given the harm of radiation, protective measures are necessary for the detection process.
6. Recommendations for Future Research
- (1)
- Study on unmanned aerial vehicle (UAV) detection technology(a) UAV visual inspection. (b) UAV infrared thermal image detection. (c) UAV digital radiographic detection. (d) UAV with ultrasonic detection technology or impact echo detection technology. The application of drones in the engineering field could greatly reduce manpower and financial resources and could greatly reduce the potential risks in the detection process.
- (2)
- Study on wireless remote sensing technology and wireless sensor technology(a) At present, the development of modern sensing technology and wireless remote sensing technology has provided new ideas for the development of nondestructive testing technology in our country. Wireless remote sensing technology can record information and transmit data; at the same time, it can combine wireless sensing technology to transmit the collected data to a designated location.(b) In order for the intelligent bridge nondestructive testing technology to be incorporated into the modern bridge management system and make the bridge management system more complete, researchers need to do more research on these two technologies.
- (3)
- Study on machine learningMachine learning is a multi-field interdisciplinary subject involving probability theory, statistics, approximation theory, convex analysis, algorithm complexity theory, and other subjects. The following algorithms can be studied in detail: (a) Decision Tree Algorithm (DT), (b) Naive Bayes Algorithm (NB) and Support Vector Machine Algorithm (SVM), (c) Random Forest Algorithm (RA), (d) Boosting and Bagging Algorithm, (e) Association Rule Algorithm (AR), (f) Expectation Maximization (EM) Algorithm.
- (4)
- Study on deep learningDeep learning enables machines to imitate human activities such as audio-visual and thinking and solves many complex pattern recognition problems and has made great progress in artificial intelligence-related technologies. It mainly involves three types of methods. (a) Neural network system based on convolution operation (CNN). (b) The self-encoding neural network based on multi-layer neurons includes two types: Auto encoder and Sparse Coding. (c) Pre-training is carried out in the way of a multi-layer self-encoding neural network and then combined with the identification information to further optimize the deep belief network (DBN) of the neural network weight.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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NDT Methods | Detection Principle | Technology Application | Advantages | Limitations |
---|---|---|---|---|
Acoustic Emission (AE) | The material performance or structural integrity is evaluated by receiving and analyzing the acoustic emission signal of the material. |
|
| |
Impact echo (IE) | A short-time mechanical impact is used to propagate the generated stress wave to the interior of the structure. |
|
| |
Ultrasonic Testing (UT) | Ultrasonic wave will be reflected at the interface of two media with different acoustic impedance. |
|
| |
Infrared Thermography (IRT) | IRT uses photoelectric technology to detect the infrared-specific band signal of object thermal radiation and convert the signal into images and graphics that can be distinguished by vision. |
|
| |
Ground Penetrating Radar (GPR) | The transmitting antenna transmits electromagnetic waves to the structure, and the receiving antenna processes and analyzes the radar echo signal to obtain the characteristics of the target. |
|
| |
Piezoelectric Transducers (PZT) | Based on the piezoelectric effect of dielectric, the charge is generated on the surface of dielectric under the action of external force so as to realize non-electric measurement. |
|
| |
X-ray | Due to the different absorption coefficients of materials with different densities to rays, the intensity of rays irradiated to all parts of the film will also be different. |
|
|
Defect Types | Detection Methods |
---|---|
Delamination | AE, UT, GPR |
Void | IE, UT, GPR |
Crack | AE, PZT, IRT, X-ray |
Corrosion of reinforced concrete | AE, IRT, GPR, P ZT, X-ray |
Density of sleeve grouting | AE |
Real-time damage detection | AE |
Structural layer thickness | IE, UT, GPR |
Grouting compactness of prestressed duct | IE, PZT, AE, UT, IRT |
Buried depth of reinforcement | GPR |
Compressive strength of concrete | IE, UT, PZT |
Bond quality between reinforcement and concrete | UT |
Fatigue behavior of reinforced concrete members | PZT |
Prestress loss | PZT |
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Zheng, Y.; Wang, S.; Zhang, P.; Xu, T.; Zhuo, J. Application of Nondestructive Testing Technology in Quality Evaluation of Plain Concrete and RC Structures in Bridge Engineering: A Review. Buildings 2022, 12, 843. https://doi.org/10.3390/buildings12060843
Zheng Y, Wang S, Zhang P, Xu T, Zhuo J. Application of Nondestructive Testing Technology in Quality Evaluation of Plain Concrete and RC Structures in Bridge Engineering: A Review. Buildings. 2022; 12(6):843. https://doi.org/10.3390/buildings12060843
Chicago/Turabian StyleZheng, Yuanxun, Shaoqiang Wang, Peng Zhang, Tongxin Xu, and Jingbo Zhuo. 2022. "Application of Nondestructive Testing Technology in Quality Evaluation of Plain Concrete and RC Structures in Bridge Engineering: A Review" Buildings 12, no. 6: 843. https://doi.org/10.3390/buildings12060843
APA StyleZheng, Y., Wang, S., Zhang, P., Xu, T., & Zhuo, J. (2022). Application of Nondestructive Testing Technology in Quality Evaluation of Plain Concrete and RC Structures in Bridge Engineering: A Review. Buildings, 12(6), 843. https://doi.org/10.3390/buildings12060843