Ingenieurwissenschaften und zugeordnete Tätigkeiten
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- Corrosion (30)
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Organisationseinheit der BAM
- 9 Komponentensicherheit (190)
- 7 Bauwerkssicherheit (101)
- 9.3 Schweißtechnische Fertigungsverfahren (80)
- 8 Zerstörungsfreie Prüfung (67)
- 5 Werkstofftechnik (55)
- 9.4 Integrität von Schweißverbindungen (50)
- 7.1 Baustoffe (37)
- 7.6 Korrosion und Korrosionsschutz (34)
- 6 Materialchemie (28)
- 9.2 Versuchsanlagen und Prüftechnik (28)
- 9.5 Tribologie und Verschleißschutz (28)
- 8.0 Abteilungsleitung und andere (27)
- 5.1 Mikrostruktur Design und Degradation (26)
- 9.0 Abteilungsleitung und andere (22)
- 9.6 Additive Fertigung metallischer Komponenten (21)
- 3 Gefahrgutumschließungen; Energiespeicher (20)
- 5.2 Metallische Hochtemperaturwerkstoffe (17)
- 7.4 Baustofftechnologie (17)
- 8.5 Röntgenbildgebung (16)
- 4 Material und Umwelt (13)
- 8.4 Akustische und elektromagnetische Verfahren (13)
- 2 Prozess- und Anlagensicherheit (12)
- 7.5 Technische Eigenschaften von Polymerwerkstoffen (11)
- 8.1 Sensorik, mess- und prüftechnische Verfahren (9)
- 6.2 Material- und Oberflächentechnologien (8)
- 3.4 Sicherheit von Lagerbehältern (7)
- 5.3 Polymere Verbundwerkstoffe (7)
- 6.6 Physik und chemische Analytik der Polymere (7)
- 1 Analytische Chemie; Referenzmaterialien (6)
- 5.5 Materialmodellierung (6)
- 6.7 Materialsynthese und Design (6)
- 8.6 Faseroptische Sensorik (6)
- 2.1 Sicherheit von Energieträgern (5)
- 3.0 Abteilungsleitung und andere (5)
- 3.1 Sicherheit von Gefahrgutverpackungen und Batterien (5)
- 4.2 Material-Mikrobiom Wechselwirkungen (5)
- 1.2 Biophotonik (4)
- 4.1 Biologische Materialschädigung und Referenzorganismen (4)
- 6.1 Oberflächen- und Dünnschichtanalyse (4)
- 7.2 Ingenieurbau (4)
- 7.7 Modellierung und Simulation (4)
- 2.0 Abteilungsleitung und andere (3)
- 4.5 Kunst- und Kulturgutanalyse (3)
- 5.0 Abteilungsleitung und andere (3)
- 5.4 Multimateriale Fertigungsprozesse (3)
- 6.3 Strukturanalytik (3)
- 2.2 Prozesssimulation (2)
- 3.2 Gefahrguttanks und Unfallmechanik (2)
- 6.5 Synthese und Streuverfahren nanostrukturierter Materialien (2)
- 7.0 Abteilungsleitung und andere (2)
- 8.2 Zerstörungsfreie Prüfmethoden für das Bauwesen (2)
- 1.4 Prozessanalytik (1)
- 1.9 Chemische und optische Sensorik (1)
- 2.4 Prüfung und Bewertung von Explosivstoffen/Pyrotechnik (1)
- 2.5 Konformitätsbewertung Explosivstoffe/Pyrotechnik (1)
- 3.5 Sicherheit von Gasspeichern (1)
- 4.3 Schadstofftransfer und Umwelttechnologien (1)
- 5.6 Glas (1)
- 7.3 Brandingenieurwesen (1)
- 8.3 Thermografische Verfahren (1)
Paper des Monats
- ja (1)
In respect of modern approaches in material sciences and highly increased
requirements on materials on safety relevant components, quality management
and non-destructive testing reclaims a steadily increased meaning. The
destructive meaning of measuring the degree of purity is defined in DIN EN 10247
through metallurgical investigations, especially microsections.
For and comparable, but non-destructive testing due ultrasonic testing, the material
the SEP 1927 is a well-defined industry standard. A novel and alternative way
of reference block construction was focused by this work. The proposed amendments,
regarding the manufacturing and machining, are less time and cost consuming.
Verified by measurements the presented reference block fits the same acoustical
characteristics and the requirements of the guideline.
Durch den stetig steigenden Einsatz von Plastikprodukten sind unerwünschte Kunststofffunde in verschiedenen Umweltmatrices mittlerweile allgegenwärtig. Besonderes Interesse erfahren die Kunststoffpartikel von einer Größe kleiner 5 mm, sogenannte Mikroplastik (MP) Partikel. Es werden aktuell Risiken für Mensch und Umwelt diskutiert, die von diesen Partikeln ausgehen.
Im Chemikalienrecht ergeben sich laufend Änderungen durch die regelmäßige Überar-beitung des UN-GHS. Konsequenzen hat dies auch für andere Vorschriften, die auf Einstufungen von gefährlichen Stoffen Bezug nehmen. Aber auch andere Vorschriften und Regelwerke unterliegen Änderungen durch Anpassungen an den Stand der Tech-nik. In diesem Beitrag werden für die chemische Sicherheitstechnik wichtige aktuelle Änderungen im Chemikalienrecht und nationalen Arbeitsschutzvorschriften vorgestellt.
Die 6. überarbeitete Fassung des GHS von 2015 enthält eine neue Gefahrenkategorie zur Einstufung von pyrophoren Gasen und eine neue Gefahrenklasse zur Einstufung von desensibilisierten explosiven Stoffen. Außerdem wurden Anforderungen an das Si-cherheitsdatenblatt bezüglich der physikalisch-chemischen Eigenschaften neu gefasst und um Informationen für die Ersteller von Sicherheitsdatenblättern ergänzt. Die 7. überarbeitete Fassung des GHS, die zurzeit in Arbeit ist und Anfang 2017 erschei-nen wird, wird voraussichtlich neue Kriterien und eine geänderte Einteilung für ent-zündbare Gase beinhalten sowie einen neuen Anhang zur Staubexplosionsgefahren.
Bei den nationalen Arbeitsschutzvorschriften haben sich Änderungen anlässlich der Verschiebung der Vorschriften zum betrieblichen Explosionsschutz von der Betriebssi-cherheitsverordnung in die Gefahrstoffverordnung ergeben. Im Nachgang werden auch die technischen Regeln zum Explosionsschutz überabeitet. Die technischen Re-geln für Tätigkeiten mit Gasen sind um Regelungen zu Acetylen ergänzt worden. Wei-tere Ergänzungen zu Füllanlagen für ortsfeste Druckanlagen für Gase und zu Flüssig-gas liegen gegenwärtig den zuständigen Ausschüssen zur Verabschiedung vor.
Experimentelle Untersuchungen zu streifenden Schlägen mit verschiedenen Edelstahlsorten in explosionsfähigen Atmosphären, jeweils bestehend aus Wasserstoff, Acetylen, Ethylen bzw. Propan mit Luft, haben gezeigt, dass deren Zündwahrscheinlichkeit sowohl von der Art des Brenngas-Gemisches als auch der Höhe der kinetischen Schlagenergie abhängt. Ein Einfluss des Chromgehaltes im Edelstahl auf die Zündwahrscheinlichkeit durch mechanisch erzeugte Schlagvorgänge konnte in dem untersuchten Bereich des Chromgehaltes nicht nachgewiesen werden, obwohl ein steigender Chromgehalt die Oxidationsfähigkeit abgetrennter Partikel erhöhter Temperatur tatsächlich senkt. Ferner haben weitere Werkstoffeigenschaften wie die Wärmeleitfähigkeit, spezifische Wärmekapazität, Dichte und Härte einen Einfluss auf die Zündwahrscheinlichkeit mechanischer Edelstahl-Schlagvorgänge bei Wasserstoff/Luft-Gemischen. Mit steigender Wärmeleitfähigkeit des Edelstahls sinkt die Zündwahrscheinlichkeit. Für die spezifische Wärmekapazität, Dichte und Härte konnte kein Einfluss nachgewiesen werden. Für Schlagvorgänge wurden in der Norm EN 13463-1:2009 Grenzwerte für die maximale kinetische Schlagenergie festgelegt, unterhalb derer die Entstehung einer wirksamen Zündquelle als unwahrscheinlich angenommen werden kann. Dabei wurde zwischen Schlagvorgängen mit funkenarmen Metallen, wie z. B. Kupfer, Messing, und Schlagvorgängen mit sogenannten „sonstigen Werkstoffen“ unterschieden. Die Grenzwerte dieser sonstigen Werkstoffe resultieren aus Versuchen der BAM mit unlegiertem Baustahl. Bei solchen Schlagvorgängen wird von Oxidationsprozessen einzelner Partikel mit dem Luftsauerstoff ausgegangen, die das Gasgemisch aufgrund des hohen Temperaturanstiegs entzünden. In industriellen Anwendungen wie zum Beispiel der chemischen Industrie wird jedoch statt ferritischem Stahl überwiegend Edelstahl verwendet. Im Allgemeinen gilt mit Chrom hochlegierter Edelstahl bei Schlagvorgängen gegenüber ferritischem Stahl als funkenärmer, da die Oxidationsfähigkeit von Edelstahlpartikeln mit steigendem Chromgehalt abnimmt. Aufgrund der abnehmenden Oxidationsfähigkeit postulierte Voigtsberger, dass abgetrennte Edelstahlpartikel mit einem Anteil von 18,11 % Chrom nicht mehr oxidieren können. Bei den eigenen Schlagversuchen der BAM konnte zwar eine sinkende Oxidationsfähigkeit der Partikel, aber keine abnehmende Zündwirksamkeit von Edelstählen mit steigendem Chromgehalt beobachtet werden.
Characterization of multiphase metal matrix composites by means of CT and neutron diffraction
(2016)
The present study examines the relationship between the microstructure of multiphase metal matrix composites and their damage mechanisms. The matrix AlSi12CuMgNi was combined with 15% vol. Al₂O₃ (short fibers), and with 7% vol. Al₂O₃ + 15% vol. SiC (short fibers and whiskers, respectively). The experimental approach encompasses 3D microstructure characterization by means of computed tomography of samples (a) as-cast, (b) after heat treatment, and (c) after compression tests at room temperature. The volume fraction of different phases, their distribution, their orientation, and the presence of defects and damage are studied.
The influence of the addition of SiC particles on mechanical properties of composite was investigated. Phase-specific load partition analysis for samples with fiber plane parallel to load was performed by using neutron diffraction (ND) during in-situ compression. ND results show damage in the Si phase, while Al₂O₃ short fibers carry load without damage until failure. The computed tomography observations confirm the load partition analysis.
Reliability analysis of the ultrasonic inspection system for the inspection of hollow railway axles
(2016)
Axles are safety critical train components that are subjected to significant cyclic loading during operation. If the crack is initiated in the axle, cyclic loading will lead to crack propagation. To maintain structural integrity, axles must be periodically inspected for fatigue cracks in the material. Deutsche Bahn uses mechanized ultrasonic inspection system to inspect hollow railway axles. The inspections are performed from the bore surface, using several conventional transducers with different incident angles, inspecting the axle along the entire length. As with the every safety critical system, the reliability of these inspections must be determined with regard to their flaw detection capabilities. Traditionally this is done according to the relevant standards for railway vehicles. To investigate the capability of the NDT system more thoroughly, we want to evaluate the capability of the inspection system to detect flaws by means of probability of detection (POD) curves. It will be shown that other parameters, beside the size of the crack, for example crack position in the axle, influence the detection of the crack. The influence of these parameters was evaluated using ultrasonic simulation. The evaluation served as an input for the manufacturing of the flaws in the real scale axle. Once these axles are inspected and the data evaluated, using data from both measurement and simulation, we will express the POD of the crack as function of influencing parameters using the multiparameter POD model.
The canister for the permanent storage of spent nuclear fuel used by SKB in Sweden consists of a cast iron insert surrounded by a five centimetre thick shell of copper. It is a safety critical component and in order to secure long-term structural integrity non-destructive methods are used to inspect 100% of the volume of each canister, before it is disposed of in the repository. One of the critical components that requires inspection is a sealing weld, joining the copper tube and the lid. The friction stir weld is inspected using an ultrasonic phased array system. The area of the weld is inspected with several inspection channels with different angles and varying coverage. To make sure that no defects that might occur in the weld are overseen, the reliability of the inspection must be quantified. The reliability of NDT is usually quantified with the probability of detection curves. The influence of the parameters that might influence the POD of the flaws in the weld is investigated analysing the experimental results, as well as with a help of a numerical simulation of the inspection.
Several restoration projects of stained-glass windows have been performed in Lower Silesia (Poland) since 2010. The aim of the projects was to protect stained-glass windows against environmental impact of industial pollutants and acid rain by installing a protective glazing. The usefulness of protective glazing has been proved by climate measurements and determination of environmental impact before and after installation.
Carbon-fiber reinforced composites are becoming more and more important in the production of light-weight structures, e.g., in the automotive and aerospace industry. Thermography is often used for non-destructive testing of These products, especially to detect delaminations between different layers of the composite.
In this presentation, we aim at methods for defect reconstruction from thermographic measurements of such carbon-fiber reinforced composites. The reconstruction results shall not only allow to locate defects, but also give a quantitative characterization of the defect properties. We discuss the simulation of the measurement process using finite element methods, as well as the experimental validation on flat bottom holes.
Especially in pulse thermography, thin boundary layers with steep temperature gradients occurring at the heated surface need to be resolved. Here we use the combination of a 1D analytical solution combined with numerical solution of the remaining defect equation. We use the simulations to identify material Parameters from the measurements.
Finally, fast heuristics for reconstructing defect geometries are applied to the acquired data, and compared for their accuracy and utility in detecting different defects like back surface defects or delaminations.
3D Crack analysis in hydrogen charged lean duplex stainless steel with synchrotron refraction CT
(2016)
Hydrogen in metals can cause a degradation of the mechanical properties, the so-called hydrogen embrittlement. In combination with internal stresses, hydrogen assisted cracking (HAC) can occur. This phenomenon is not completely understood yet. To better characterise the cracking behaviour, it is important to gain information about the evolution of the 3D crack network. For this purpose samples of lean duplex stainless steel were loaded with hydrogen by means of electrochemical charging and investigated by means of synchrotron refraction CT and SEM fractography after uniaxial tensile loading. Synchrotron refraction CT is an analyser-based imaging (ABI) technique. It uses a Si (111) single crystal as analyser, which is placed into the beam path between sample and detector. According to Bragg’s law only incident x-rays within a narrow range around the Bragg-angle are diffracted from the analyser into the detector. Hence, the analyser acts as an angular filter for the transmitted beam. This filtering allows to turn the refraction and scattering of x-rays into image contrast. Refraction occurs at all interfaces, where the density of the material changes and is more sensitive to density changes than the attenuation. Therefore, it is possible to detect smaller cracks than with classical x-ray imaging techniques, like CT, with comparable spacial resolution. It also visualises the 3D structure of the cracks and gains quantitative information about their morphology and distribution. Since cracks introduced by HAC are usually very small and have a small opening displacement, synchrotron refraction CT is expected to be well suited for imaging this cracking mechanism and can be a valuable tool to characterise the formation and the evolution of a 3D crack network.
Experimental study and numerical simulation of hot crack formation for novel laser weldability test.
(2015)
Laser beam welding is a widely established manufacturing process in several industries. The solidification cracking seriously effecting the safety of welded joints could arise during the beam welding of stainless steels caused by high solidification rates. In this study the controlled tensile weldability test (CTW) was used to investigate the solidification cracking susceptibility the fully austenitic stainless steels CrMnNi (1.4376), CrNi (1.4301), CrNiMo (1.4404) and CrNiSi (1.4828) during laser beam welding. The test facility allows welding of specimens with simultaneous application of tensile load along or cross to the welding direction while the speed of tensile force application is either constant or increases linearly. The tensile force increment and/or the displacement are set by means of a CNC controller. Trials were conducted by varying the ultimate tensile strain and cross-head speed while keeping the welding parameters constant. By observing the crack-no crack behaviour and estimating the generated crack length for each trail using a new optimized experimental procedure the influence of the two important conditions (the strain and the strain rate) for the formation of solidification cracks can be investigated, the critical values of strain and strain rate that are responsible for solidification cracking formation have been determined. In the present study a three-dimensional FEM using the contact element technique was developed to simulate the solidification cracking during laser full penetration welding under external load conditions for the steel 1.4376 in order to get a better understanding of the mechanisms of hot crack initiation and the theoretical results were compared to the experimental ones. By comparing the resulting solidification crack with simulated crack, it is possible to determine the critical condition of solidification crack formation in the region where the strains and the strain rates cannot be measured due to the high temperature. The results show a good agreement between numerical calculation and experiment. It is proposed that the solidification cracking susceptibility may be predicted by FEM analysis by using the correct mechanical and thermo-physical constants of the materials.
The most substantial innovations in radiographic imaging techniques of the last two decades aim at enhanced image contrast of weakly absorbing micro and nano structures by taking advantage of X-ray refraction effects occurring at outer and inner surfaces. The applications range from fibre reinforced plastics to biological tissues. These techniques comprise, among others, X-ray refraction topography, diffraction enhanced imaging, phase contrast imaging, Talbot-Lau grating interferometry, and refraction enhanced imaging. They all make use of selective beam deflections up to a few minutes of arc: the X-ray refraction effect. In contrast to diffraction, this type of interaction has a 100 % scattering cross section, as shown experimentally. Since X-ray refraction is very sensitive to the orientation of interfaces, it is additionally a tool to detect, e.g., fibre or pore orientation. If the detector resolution exceeds the size of (small) individual features, one detects the integral information (of inner surfaces) within the gauge volume. We describe the above-mentioned techniques, and show their experimental implementation in the lab and at a synchrotron source. We also show strategies for data processing and quantitative analysis.
Grating interferometric set-ups have been established in the last decade. They are promising candidates to obtain enhanced image contrast from weakly absorbing micro and nano structures. They are based on X-ray refraction and near-field diffraction using the Talbot effect.
At the expense of taking multiple images, Talbot-Lau grating interferometry allows separating the absorption, refraction, and scattering contributions by analysing the disturbances of a phase grating interference pattern. Contrary to other refraction enhanced methods, this technique can be applied using conventional X-ray tubes (divergent, polychromatic source). This makes it attractive to solve typical non-destructive testing problems.
We investigated the efficiency of phase gratings, i.e. the visibility (the amplitude of oscillations) upon variation of propagation distance and phase grating rotation around an axis parallel to the grid lines. This grating rotation changes the grating shape (i.e. the distributions of phase shifts). This can yield higher visibilities than derived from rectangular shapes.
Our study includes experimental results obtained from synchrotron radiation, as well as simulations for monochromatic radiation. The advantages of Talbot-Lau interferometry are demonstrated at the example of glass capillaries.
The new standard ‘ISO 17636-2:2013: Non-destructive testing of welds — Radiographic testing — Part 2: X- and gamma-ray techniques with digital detectors’, defines the practice for radiographic inspection of welded pipes for manufacturing and in-service inspection. It is applied in Europe for inspections of pipe welds in nuclear power plants as well as in chemical plants and allows a faster inspection with digital detector arrays (DDA) than with film. Nevertheless, it does not allow the evaluation of the depth and shape of volumetric and planar indications. In 2001 a planar tomography scanner, TomoCAR, was introduced for mechanized radiographic testing (RT) inspection and non-destructive measurement of cross sections. The project TomoWELD is based on a new concept of the scan geometry, an enhanced GPU based reconstruction, and the application of a new generation of photon counting DDAs based on CdTe crystal CMOS hybrids. The new detector permits the selection of energy thresholds to obtain an optimum energy range and reduction of the influence of scattered radiation. The concept and first measurements are presented. Flaw depth and shape of volumetric and planar irregularities can be determined.
Since a few years the direct detection of X-ray photons into electrical signals is possible by usage of highly absorbing photo conducting materials (e.g. CdTe) as detection layer of an underlying CMOS semiconductor X-ray detector. Even NDT energies up to 400 keV are possible today, as well. The image sharpness and absorption efficiency is improved by the replacement of the unsharp scintillation layer (as used at indirect detecting detectors) by a photo conducting layer of much higher thickness. If the read-out speed is high enough (ca. 50 – 100 ns dead time) single X-ray photons can be counted and their energy measured. Read-out noise and dark image correction can be avoided. By setting energy thresholds selected energy ranges of the X-ray spectrum can be detected or suppressed. This allows material discrimination by dual-energy techniques or the reduction of image contributions of scattered radiation, which results in an enhanced contrast sensitivity. To use these advantages in an effective way, a special calibration procedure has to be developed, which considers also time dependent processes in the detection layer. This contribution presents some of these new properties of direct detecting digital detector arrays (DDAs) and shows first results on testing fiber reinforced composites as well as first approaches to dual energy imaging.
Der Einsatz von Hochleistungswerkstoffen verlangt nach einer hohen Endformnähe der zu fertigenden Bauteile, um den Aufwand und somit die Kosten für Materialeinsatz und Nachbearbeitung möglichst gering zu halten. Der additive Einsatz in Form des Laser-Pulver-Auftragschweißens bietet hierfür durch den gezielten Materialauftrag ein hohes Potential. Herausforderungen bestehen in Bereichen der Vorhersagbarkeit und der Reproduzierbarkeit des Materialauftrages, sowie der Fertigungszeit. Unterschiedliche Einflüsse bei der Schichterzeugung führen dabei zu Abweichungen von der Soll-Geometrie. Die vorliegenden Untersuchungen behandeln den Einfluss von Spurgeometrie, Spurüberlappung, Verfahrweg und Aufbaureihenfolge auf die entstehende Bauteilform. Die Teilung einer Lage in Rand- und Kernbereich ermöglicht einen konturangepassten Verfahrweg und eine Erhöhung der Endformnähe innerhalb einer Ebene. Die Verwendung unterschiedlicher Spurgrößen bei der Bauteilerzeugung verdeutlicht die Möglichkeiten einer hohen Auftragsrate bei gleichzeitig hoher Formgenauigkeit. Bereits kleine Unterschiede beim Materialauftrag zwischen Kern- und Randbereichen, Start- und Endpunkten sowie in Bereichen des Richtungswechsels führen aufgrund von Fehlerfortpflanzung nachmehreren Lagen zu Abweichungen in der Aufbaurichtung. Kompensierungen mittels angepasster Baustrategien werden aufgezeigt und diskutiert. Die Nickelbasislegierung Inconel 718, die Titanlegierung Ti-6Al-4V sowie der austenitische Stahl 316L sind Bestandteil der vorliegenden Untersuchungen. Die gewonnenen Erkenntnisse verdeutlichen das Potenzial einer angepassten Aufbaustrategie zur reproduzierbaren Erzeugung von Bauteilen am Beispiel unterschiedlicher Körpergeometrien.
A commonly used way of minimizing the occurrence of hot cracks, especially solidification cracks during component welding, is mainly to analyse and vary process parameters such as welding speed and consequently the heat input. Metallurgy and component design are however hardly ever considered due to special production requirements and therefore, restricted flexibility in material selection and design. Such conditions, especially crack-critical welding positions are given by slot-welds or welds near pre-deformed areas, for instance bending edges. Hence, it follows that increased local and global residual component stress caused cracking on reaching a solidification crack critical level, which is characterised by solidification crack initiation.
This paper presents an innovative way to combine an external ultra-high performance concrete (UHPC) supporting layer with an insulation layer of autoclaved aerated concrete (AAC) or cellular lightweight concrete (CLC) to create light-weight façade elements, which are improved in functionality and in energy efficiency. The durability of the façade elements is improved by developing UHPC with self-cleaning properties. One approach is based on the photocatalytic activation of the external UHPC shell by incorporation of TiO2 particles. The second approach consists of the modification of the UHPC surface by micro structuring in combination with the application of water-repellent agents to create durable super hydrophobicity. The current results obtained from laboratory testing are promising and demonstrate the feasibility of the approaches.
Laser welding is a widely established manufacturing process in many industry sectors. Solidification cracking represents one of the most inadequately solved problems in welding and has major economic implications. The avoidance of hot crack is for most fusion welding processes a key challenge for an important range of metallic construction materials and affects not only the manufacturers of welding equipment and material manufacturers, but also a large number of customers using welding technologies, as well as welding standardization and research. In this study a new investigation programme has been developed to qualify the hot cracking susceptibility of a variety of austenitic stainless steels. The results show the possibility of using this technique to determinate the critical values that occur with initiation of solidification cracking during laser beam welding
Laser welding is a widely established manufacturing process in many industry sectors. Solidification cracking represents one of the most inadequately solved problems in welding and has major economic implications. The avoidance of hot crack forms for most fusion welding processes poses a key challenge for an important range of metallic construction materials and affects not only the manufacturers of welding equipment and material manufacturers, but also a large number of customers using welding technologies, as well as welding technical standardization and research. Solidification cracking susceptibility was examined with the help of the Controlled Tensile Weldability Test (CTW) developed by Federal Institute for Materials Research and Testing (BAM), Berlin. The test is based on the fact that hot crack formation depends on a critical strain that emerges within a critical temperature range, the so called brittle temperature range (BTR). Using this test and defined investigation programme a centreline solidification crack was generated. By controlling the applied strain during the laser beam welding process, it was possible to determine the critical strain and strain rate that led to solidification cracking formation. The hot cracking susceptibility of the tested stainless steels was qualified and quantified. The results demonstrate that the crack length increases with increasing applied strain. Furthermore, the strain rate has a significant influence on the formation of the solidification crack.