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2021 | Buch

Efficient material laser beam ablation with a picosecond laser

verfasst von: Juan Pablo Calderón Urbina

Verlag: Springer Berlin Heidelberg

Buchreihe : Light Engineering für die Praxis

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Über dieses Buch

Ultra-short pulse laser processing of ultra-hard materials requires an accurate and agile experimental and analytical investigation to determine an efficient choice of parameters and settings to optimize ablation. Therefore, this work presents a quality-oriented experimental approach and an analytical approach for the modeling and validation of multi-pulse picosecond laser beam ablation on cemented tungsten carbide. This work starts with a review of literature and state-of-the-art theories of four relevant areas for this research: picosecond lasers, laser beam ablation process, cemented tungsten carbide (WC) and quality-oriented tools. Subsequently, a concept for an efficient material laser beam ablation with a picosecond laser was introduced. Furthermore, two approaches for the investigation are presented from an experimental and analytical perspective, respectively. The first approach introduced a methodology for the identification of influential parameters. It executes a quality-oriented methodology based on the SWOT analysis, cause-and-effect diagram and the variable search methodology. The conclusion of the methodology gave the interaction of pulse repetition rate and scanner speed in the form of pulse overlap and track overlap PO/TO as the most influential parameter in the maximization of the ablation rate. The second most influential factors resulted laser beam power and burst-mode. The second approach, description of the model, executes a theoretical analysis of the picosecond laser beam ablation of cemented WC by the application of the Beer-Lambert law and multi-pulse ablation modeling. The unavailable material properties were obtained by experimental investigations, like in the cases of the incubation factor and the reflectivity factor. Threshold fluence for cemented WC was determined by the application of the heat transfer theory and input power intensity was adapted to a Gaussian beam profile. At the end of the approach, power density visualizations of a picosecond laser pulse under the five available pulse repetition rates were modeled and validated. The findings from the adaptation of the Beer-Lambert law acted as basis for development of the multi-pulse laser ablation model for both single-pulse mode and burst-mode, respectively. Based on the definition of the number of pulses N irradiating the same area, the corresponding threshold fluence for N, the input fluence and incubation factor, ablation depth was modeled and experimentally validated. Finally, results and conclusions of both approaches were discussed and a framework for an efficient laser beam ablation was presented. Recommendations for further actions on research and industry were introduced at the end of the work.

Inhaltsverzeichnis

Frontmatter
Chapter 1. Introduction
Abstract
The development of ultra-short pulse lasers has given laser beam ablation a wider application perspective by granting minimal thermal side-effects, industrial robustness and precision [1; 2; 3; 4]. A rising field of opportunity is the processing of hard and ultrahard materials such as cemented tungsten carbide (WC) and polycrystalline diamond (PCD), among other purposes [5; 6; 7; 8]. The intersection of reliable ultra-short pulse laser sources, like picosecond lasers [9], and the increasing trend of hardness of ultra-hard materials [10] represents an attractive opportunity for the application of laser beam ablation [11].
Juan Pablo Calderón Urbina
Chapter 2. State of the art
Abstract
The second chapter of the thesis is placed in the first phase plan of the systematic qualityoriented approach of the thesis. Figure 4 shows the detailed position of the subchapters of the state of the art in the structure of the thesis.
Juan Pablo Calderón Urbina
Chapter 3. Research concept and approaches
Abstract
The development of this work is based on the philosophy of quality and the efficient application of its tools; one of its objectives is the creation and implementation of a systematic quality-oriented approach for the analysis of laser beam ablation and based on the Deming cycle (illustrated in chapter 1, in figure 2). As a part of the state of the art of this thesis, under the phase plan in the structure (see figure 4), the quality tools are responsible to assure a quality-oriented process, that is efficient and reliable, and adaptable to changing environments, like new materials and systems (flexible). Based on the phases, this work pursues the systematic identification, description and quantification of significant influencing parameters on the ps laser beam ablation of WC, targeting ablation (e.g., ablated volume, ablation depth and ablation rate).
Juan Pablo Calderón Urbina
Chapter 4. Methodology for the identification of influential parameters
Abstract
This chapter presents the first approach of the research concept, a methodology for the identification of influential parameters of laser beam ablation on cemented WC. It serves as a guideline for the execution of the experiments further in this chapter, and thus, the determination of the influential parameters of laser beam ablation for further analysis.
Juan Pablo Calderón Urbina
Chapter 5. Description of the model
Abstract
The fifth chapter of this work belongs to the second approach to this investigation after the experimental. It is situated in the first phase plan and the second phase do of the quality-oriented structure of the thesis (as depicted in chapter 1, figure 4), being the phase do of greater influence thanks to the application of an analytical approach of this specific laser process.
Juan Pablo Calderón Urbina
Chapter 6. Evaluation of results and analysis of influential parameters
Abstract
After the experimental and theoretical investigation in chapter 4 and 5, a model considering all described parameters was defined. A further experimental validation was done releasing results and conclusions of the model. This information output is evaluated and analyzed in this chapter with the objective of consolidating the experience in the form of a framework that contains the methodology and all required information for a further practical application of the work.
Juan Pablo Calderón Urbina
Chapter 7. Conclusion and outlook
Abstract
The end of the learning cycle of this investigation is located in this chapter; as part of the fourth phase, act, of the structure of the thesis, the conclusion and outlook aim to summarize the findings of an efficient laser beam ablation on cemented WC and to recommend further actions for the implementation and optimization of the laser beam process in industrial environments. The structure of the thesis, presented in the introduction chapter, illustrates the quality cycle of Deming and the corresponding position of this chapter (figure 4). The phase act represents, in a quality-oriented system, the place for supporting, correcting and recommending optimization paths.
Juan Pablo Calderón Urbina
Backmatter
Metadaten
Titel
Efficient material laser beam ablation with a picosecond laser
verfasst von
Juan Pablo Calderón Urbina
Copyright-Jahr
2021
Verlag
Springer Berlin Heidelberg
Electronic ISBN
978-3-662-61886-8
Print ISBN
978-3-662-61885-1
DOI
https://doi.org/10.1007/978-3-662-61886-8

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