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The problem of increasing the efficiency of existing photodetectors and creating their new types attracts much research attention. Among new photodetector types are photosensitive structures based on cascade concentrators, whose operational principle involves the absorption of optical radiation followed by its reemission at a longer wavelength and radiation concentration onto a highly efficient small-area photodetector. The absorption and re-emission spectra of each cascade layer depend on the characteristics of the material used. Сolloidal quantum dots are among the most promising materials for cascade layers due to their manufacturing technology, which provides for accurate control over the photoluminescence maximum position. It seems highly relevant to develop and to study photosensitive structures with cascade concentrators of various shapes based on CdS, CdSe/ZnS, and PbS colloidal quantum dots. Aim . To develop photosensitive structures with a wide-range sensitivity spectrum based on concentrators containing arrays of metal chalcogenide CQDs and to study their characteristics. Materials and methods . Cascade photosensitive structures were manufactured based on layers made of polymethyl methacrylate and layers of colloidal quantum dots embedded in a polystyrene matrix. Results . Three-layer concentrators were manufactured with different colloidal quantum dots in each concentrator layers. A 22 % increase in the output power was observed for a three-layer cascade structure based on different cascade layer materials compared to a similar structure using a single layer concentrator. Conclusion . The conducted studies showed an increase in the efficiency of photosensitive structures with a cascade concentrator based on colloidal quantum dots of various types (CdS, CdSe/ZnS, and PbS) in the cascade layers.
In der Natur kommen Wassertropfen in verschiedenen Größen vor. Kleine Tröpfchen von etwa 10 μm sind üblich in Nebel und Wolken, während Regentropfen bis zu 5 mm Durchmesser erreichen können. Größere Tropfen können oszillieren, während kleinere im Allgemeinen kugelförmig sind. Offensichtlich können Wassertropfen nicht beliebig groß werden. Welche Faktoren beschränken die mögliche Größe?
Manch einer kennt die Show-Darbietungen, bei denen ein Sportler mit bloßen Händen oder Füßen Mauersteine oder Holzplatten zertrümmert. Schon lange sind die physikalischen Hintergründe der Bruchmechanik und Dynamik bekannt, die diese scheinbar unmöglichen Kunststücke erlauben. Dennoch steht das Verständnis der physikalischen Bewegungsgesetze häufig im Gegensatz zu unserer Alltagserwartung.
Die moderne optische Spektroskopie kann geringste Substanzmengen nachweisen. Für schnelle Routinemessungen reichen konventionelle Zweistrahl-Spektralphotometer. Eine wesentlich höhere Nachweisempfindlichkeit im ppm- oder sogar ppb-Bereich ermöglichen das Atomabsorptions-Spektrometer (AAS) und das Fourier-Transformations-Infrarot-Spektrometer (FTIR). Ein AAS atomisiert die Probe vollständig und weist dann einzelne Elemente nach. Deshalb ist es zum Beispiel für die Schwermetall-Analyse geeignet. Bei der Analyse von Molekülen dominieren heute FTIR-Geräte. Ihr Herzstück ist meist ein Michelson-Interferometer. Zusammen mit schnellen Fourier-Algorithmen erlaubt es, sehr schnell breite Spektren aufzunehmen. Stationäre und mobile FTIR-Geräte können vielfältig eingesetzt werden.
Wenn Licht die Biege macht
(2020)
Wenn es knallt und kracht
(2014)
An die Knallgasprobe erinnert sich wohl noch jeder aus dem Chemieunterricht. Die Zeitskala, auf der Wasserstoff und Sauerstoff reagieren hängt davon ab, ob die beiden Reaktionsgase zu Beginn getrennt oder gemischt vorliegen. Dies zeigt sich deutlich in Hochgeschwindigkeits-Aufnahmen von Experimenten, bei denen Luftballons entweder mit reinem Wasserstoff oder aber mit Knallgas gefüllt werden.
Wahlverhalten von Schülern der Sekundarstufe II im Fach Physik seit 1990 im bundesweiten Vergleich
(2000)
Von Bällen und Schlägern
(2011)
Bälle sind eines der beliebtesten Spielzeuge von Kindern und Erwachsenen. Aus physikalischer Sicht haben alle Ballspiele eines gemeinsam: mehr oder minder stark deformierbare Bälle kollidieren mit Oberflächen. Die Physik vollständig elastischer Kollisionen beinhaltet zwar nur recht elementare Physik. In der Praxis sind Kollisionen jedoch praktisch nie hundertprozentig elastisch, und außerdem laufen die Prozesse so schnell ab, dass Details nur mit Hochgeschwindigkeitsaufnahmen sichtbar werden.
Visible and invisible mirages: comparing inferior mirages in the visible and thermal infrared
(2015)
Abstract
Visible (VIS)-light and thermal infrared (IR) inferior mirages in the 8–14 μm waveband have been observed simultaneously for the takeoff and landing of various airplanes at distances of several kilometers. Similarities as well as differences between the VIS and IR mirages are discussed.
© 2014 Optical Society of America
In this study, we have investigated the form of velocity and pressure functions of a fluid oscillating between two parallel glass sheets that form a circular Hele-Shaw cell. The flow has been considered to be radial, incompressible and laminar. The time-dependent Navier-Stokes equation has been solved in cylindrical coordinates using Fourier transform, and the oscillating flow velocity across the thickness of the cell has been obtained at different times. The flow velocity function in the unsteady state is related to the vertical component of the coordinates in the form of parabolic functions and also to the inverse of the radial component. The time dependence appears as a simple harmonic with a frequency equal to the oscillation frequency. The velocity of the flow is maximum at the middle of the cell along its height and gradually decreases from the middle towards the top or bottom plane and reaches zero. Pressure does not depend on the height and changes logarithmically with the radius. The dependence of pressure on time is also a simple harmonic with the external frequency, but it has a phase shift with respect to the velocity.
Es werden eine Reihe einfacher Freihandexperimente zum Thema Unterdruck vorgestellt. Viele der Beispiele sind vom grundlegenden Aufbau her bekannt, gestatten jedoch neue Varianten, Erweiterungen bzw. die Korrektur von Fehlvorstellungen. Neben der Druckmessung in Einmachgläsern und der Funktionsweise von Ausgussreinigern und Saughaken werden Druck- sowie Tragfähigkeitsmessungen an Staubsaugern diskutiert. Des weiteren wird untersucht, welche Saughöhe per Strohhalm realisiert werden kann. Es wird eine physikalisch einleuchtende, aber dennoch verblüffende Erweiterung des Versuchs mit dem umgedrehten Wasserglas präsentiert.
Und sie dreht sich doch …
(2018)
Und es werde Feuer
(2017)
Und es werde Feuer
(2017)
There are two aims for the second part of this paper: verifying the theory presented in the first part through parameter variation and comparison between simulation and experiment, and to study the effect of the belt structure on the cornering properties of radial tyres. Research has been carried out with a passenger car radial tyre and two different kinds of truck or bus radial tyres using both simulation and experiment. This second part of the paper shows that belt structure plays an important role in the generation of tyre forces and moments in addition to the effects of the tread stiffness and friction coefficients. The theory and method presented in this paper opens a new robust way to predict the tyre forces and moments from the tyre design and provides a reliable model for a generation mechanism.
Tyre rolling kinematics and prediction of tyre forces and moments: part I - theory and method
(2012)
A new method to describe tyre rolling kinematics and how to calculate tyre forces and moments is presented. The Lagrange–Euler method is used to calculate the velocity and contact deformation of a tyre structure under large deformation. The calculation of structure deformation is based on the Lagrange method, while the Euler method is used to analyse the deformation and forces in the contact area. The method to predict tyre forces and moments is built using kinematic theory and nonlinear finite element analysis. A detailed analysis of the tyre tangential contact velocity and the relationships between contact forces, contact areas, lateral forces, and yaw and camber angles has been performed for specific tyres. Research on the parametric sensitivity of tyre lateral forces and self-aligning torque on tread stiffness and friction coefficients is carried out in the second part of this paper.
Twice in a blue moon
(2009)
Tropfen auf dem kalten Wein
(2012)
Viele kennen die leidvolle Erfahrung: Beim Frühstückstisch gießt man einen Schuss Milch in den Kaffee, und prompt spritzt eine kleine Fontäne aus der Tasse, und ein Tropfen landet – hier gilt Murphys Gesetz fast immer – auf dem frisch angezogenen Hemd oder mit etwas Glück nur auf der Tischdecke. Man kann dieses Phänomen unter kontrollierten Bedingungen mit Hochgeschwindigkeits-Kameras analysieren und interessante Physik hinter den Spritzern aufspüren.
Large three-dimensional metallic parts can be printed layer-by-layer using gas metal arc directed energy deposition (GMA-DED) process at a high deposition rate and with little or no material wastage. Fast responsive real-time monitoring of GMA-DED process signatures and their transient variations is required for printing of dimensionally accurate and structurally sound parts. A systematic experimental investigation is presented here on multi-layer GMA-DED with two different scanning strategies using a high strength low alloy (HSLA) filler wire. The dynamic metal transfer, melt pool temperature field and its longitudinal cross-section, and arc voltage and current are monitored synchronously. The transient arc heat input and the melt pool solidification cooling rate are estimated from the monitored signals. The layer-wise variations of the melt pool dimension, surface temperature profile, thermal cycles, and solidification cooling rate are examined for different scanning strategies. It is comprehended that the part defects can be minimized, and the mass production of zero-defect parts can be achieved in GMA-DED process with synchronized monitoring and assessment of the real-time process signatures.
Among load cases concerning vehicle suspension strength and durability, the misuse case is very special because of large obstacles. In this paper, an extension of the flexible belt model RMOD-K 7 concerning misuse situations is discussed. In normal rolling conditions, contact occurs between tire and road surface. To handle misuse deformations, the contact between the inner surface of the tire and the rim has to be dealt with. Results of the validation process are shown, leading to normal forces up to 70 [kN]. The model can be used together with mbs full vehicle models. One example is the determination of the critical test velocity, which generates the maximum of suspension stresses and can be found using RMOD-K 7.
Three-dimensional vibration of a ring with a noncircular cross-section on an elastic foundation
(2018)
Abstract
A very old and well-known magical trick is the so-called tablecloth pull. A table is covered with a tablecloth, on top of which are certain objects. The task is to remove the tablecloth while the objects—which must not be touched—stay on top of the table. This article describes the physics behind the experiment, and presents examples recorded with high-speed cameras.
The surface to volume ratio in thermal physics: from cheese cube physics to animal metabolism
(2008)
Disclinations or disclination clusters in smectic C freely suspended films with topological charges larger than one are unstable. They disintegrate, preferably in a spatially symmetric fashion, into single defects with individual charges of +1, which is the smallest positive topological charge allowed in polar vector fields. While the opposite process of defect annihilation is well-defined by the initial defect positions, disintegration starts from a singular state and the following scenario including the emerging regular defect patterns must be selected by specific mechanisms. We analyze experimental data and compare them with a simple model where the defect clusters adiabatically pass quasi-equilibrium solutions in one-constant approximation. It is found that the defects arrange in geometrical patterns that correspond very closely to superimposed singular defect solutions, without additional director distortions. The patterns expand by affine transformations where all distances between individual defects scale with the same time-dependent scaling factor proportional to the square-root of time.
The physics behind the sometimes strange effects and 'unnatural' appearance of near-infrared (NIR) photographs is discussed in terms of reflection, absorption and transmission of NIR radiation with the respective objects. Besides discussing how NIR cameras work, several visible and NIR photograph pairs are presented, which include vegetation, natural water, clouds, the sky, and humans. In addition, some physics-oriented experimental NIR images are presented which clearly demonstrate some of the basic physics behind some of these awesome sights.
The Patellostabilometer: A New Device for Quantification of Mediolateral Patella Displacement
(2023)
Mediolateral patella displacement is of interest for diagnostics and clinically relevant
research questions. Apart from manual testing, no standardized method is currently available. Proper
quantification of patella mobility is necessary to better understand pathologies at the patellofemoral
joint. Patella mobility was assessed in 25 healthy individuals using a Patellostabilometer, a new
prototype instrument for quantification of the mediolateral patella displacement. The participants
underwent measurements of the mediolateral displacement three times using the Patellostabilome-
ter. A maximal force of 10 N was applied for patella movement. Additionally, leg length and
circumference of the knee, upper- and lower-leg were measured. Lateral patella displacement of
18.27 ± 3.76 mm (range 15.85–20.64 mm, interquartile range (IQR) of 4.79) was measured. The medial
patella displacement showed 24.47 ± 6.59 mm (range 19.29–29.76 mm, IQR of 10.47). The test–retest
measurement error was 2.32 ± 1.76 mm (IQR of 2.38 mm), with five outliers. There was greater
test–retest variability between the measurements of the medial displacement compared to the lateral
one. The test–retest variability reached 7% of the patella displacement. Other parameters provided no
significant correlations. Based on the natural patellofemoral mobility, a precise and clinically relevant
quantification of patella mobility is allowed.
abstract
A large part of photonics research and development, as well as commercial applications such as optical data transmission or infrared thermal imaging, occurs in the infrared spectral range between 0.8 μm and 15 μm. However, relatively little material is so far available for experimentally teaching the physics and optics of this spectral range. We report a respective new approach in the near infrared (NIR) range between 0.8 μm and 1.7 μm that allows visualization of a number of fascinating physics phenomena. First, we use the near-infrared sensitivity of silicon-based detectors in rather inexpensive video cameras and digital single-lens reflex cameras by removing the infrared-blocking filter and replacing it with a visible-radiation blocking filter. Second, we utilize modern NIR cameras based on InGaAs detectors. With both camera types we illustrate and explain a number of physics concepts that are especially suitable for curricula in optics and photonics. Examples include the strangely bright appearance of vegetation, contrast enhancement between clouds and sky, the initially surprising differences of optical material properties between the VIS and NIR range, the possibilities of visualizing buried hidden structures and texts, and recent medical applications to locate blood vessels below the skin. © (2015) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Freezing of lakes is described using a simplified one-dimensional model, which gives ice thickness, ice growth rates, and ice surface temperature as a function of time. Model data for a specific lake with known meteorological conditions are compared to estimated ice thickness using a simple optical method. Finally, more advanced potential students projects are briefly discussed and results of a numerical solution are compared to the simplified model.
In this study we have examined the potential of excess wind use in Germany. Excess wind constitutes roughly 40% of unused capacities of installed wind power in Germany. Using LP modelling and representative annual load profiles on an hourly resolution, we investigate the impact of the price level for wind peak power supply of residential quarters with heat, cold and electricity in Germany in combination with different power ratios of wind supply and demand. As we show, an application of wind peak tariff is technically and economically feasible and allows using green leftover energy without going in competition with e.g., green fuels or green H2 production.
Despite the increasing number of accidents in process industry caused by human error, there are still too few efforts devoted to this area. This is mainly caused by people's tendency to overestimate human's capability in interacting with their working environment and moreover by the unavailability of reliable analysis methods.
Because of the current lack of adequate methods, human factors (HF) analysis is not widely performed in process industry. Some HF techniques developed in the process industry were examined regarding their practical applicability and were unfortunately proved to be unsuitable for an elaborate HF analysis. Therefore, a new approach was developed, which provides a systematic way in performing a qualitative HF analysis to achieve a safer operation and decrease the number of human failure events.
HF consideration during the design of a process plant is the key to minimize accidents caused by human error in process industry. Thus, an approach to incorporate HF into design phase is described in this article, which can help achieving a safer operation as early as possible with minimized costs. © 2009 American Institute of Chemical Engineers Process Saf Prog 2009
Single dielectric microspheres can manipulate light focusing and collection to enhance optical interaction with surfaces. To demonstrate this principle, we experimentally investigate the enhancement of the Raman signal collected by a single dielectric microsphere, with a radius much larger than the exciting laser spot size, residing on the sample surface. The absolute microsphere-assisted Raman signal from a single graphene layer measured in air is more than a factor of two higher than that obtained with a high numerical aperture objective. Results from Mie’s theory are used to benchmark numerical simulations and an analytical model to describe the isolated microsphere focusing properties. The analytical model and the numerical simulations justify the Raman signal enhancement measured in the microsphere-assisted Raman spectroscopy experiments.
Strahlungsgesetz und Augenempfindlichkeit: Bemerkungen zu einer klassischen Fehlinterpretation
(2001)
Abstract
Stehaufkreisel sind faszinierende physikalische Spielzeuge, die scheinbar die Schwerkraft auszutricksen vermögen: Nach anfänglicher Rotation drehen sie sich so um, dass sie schließlich auf der früheren Spitze rotieren. Hochgeschwindigkeits-Videos ermöglichen es, die komplizierten mathematischen Lösungen ihrer Bewegung experimentell zu überprüfen.
Springende Hüpfgummis
(2015)
Eisenbahnschienen können unter Betriebsbedingungen brechen. Mit Hilfe der Bruchmechanik lassen sich das Risswachstums- und Bruchverhalten der Schienen untersuchen. Um dieses Verhalten z.B. im Hinblick auf die zerstörungsfreie Prüfung der Schienen im Gleis analysieren zu können, müssen die folgenden Einzelheiten bekannt sein:
Betriebs- und Bruchbedingungen (Schienentyp, Radkräfte, Biegemomente, Temperaturen, Normalkräfte und Eigenspannungen),
die bruchmechanischen Eigenschaften des Schienenstahls unter Betriebsbedingungen,
die Form der Risse und die entsprechenden Spannungsintensitätsfaktoren.
Für Schienen des Typs R65 sind die Spannungsintensitätsfaktoren für Querrisse, die von der Fahrfläche ausgehen, mit dem FEM-Programm ANSYS berechnet worden für die radkraftbedingte Biegung, für Temperatur-Normalkräfte sowie für die Längseigenspannungen.
So weit das Auge trägt
(2023)
Sichtweiten in der Atmosphäre reichen von wenigen Metern im Nebel bis zu einigen hundert Kilometern bei extrem guten Fernsichtbedingungen. Die zugrundeliegende Physik geht vom Wahrnehmungskontrast aus. Dieser ändert sich mit der Entfernung entlang der Sichtlinie zwischen Objekt und Auge aufgrund von Lichtstreuung und Absorption an den Bestandteilen der Atmosphäre. Dazu kommt bei der Fernsicht die Refraktion, die es erlaubt, auch über den durch die Kugelform der Erde geometrisch bedingten Horizont hinaus zu sehen.
Wohl jeder, der schon einmal mit Physik zu tun hatte, kennt die meist grünlichen Leuchtspuren von Oszillographen. Sie ermöglichen es, zeitabhängige Signale zu visualisieren und quantitativ auszumessen, insbesondere auch dann, wenn die Phänomene sehr schnell ablaufen. Die Reaktionsdynamik der leuchtenden Phosphore auf den Bildschirmen wird mit Hochgeschwindigkeits-Videos deutlich sichtbar.
Lässt man einen Körper fallen, so beschleunigt dieser auf Meereshöhe in unseren Breiten bekanntermaßen mit etwa 9,8 m/s2. Ist es dennoch möglich, dass unter diesen Bedingungen ein Körper schneller fallen kann? Was auf den ersten Blick paradox erscheint, ist durchaus möglich, wie sich mit Hochgeschwindigkeitsvideos eindrucksvoll belegen lässt.
Sensing is nowadays an accepted application of phononic crystals with chemical and biosensors for liquid analytes being the perhaps most promising ones. A liquid-filled defect is introduced that turns into a resonant cavity. Similar to the well-known resonant sensors sensitivity can be increased with higher operating frequencies. We introduce a Sandwiched Phononic Crystal (SPC), which applies a resonant cavity located between two stacked layers on top of a SAW device. Key challenges are coupling of surface acoustic wave into the liquid cavities and avoiding scattering of the guided waves into the bulk of the sensor chip.
Rotwein zu Wasser
(2015)
Abstract
Die Sensoren von Digitalkameras sind fähig, Licht im Nahinfraroten (NIR) bis hin zu Wellenlängen von 1100 nm aufzunehmen. Infrarotfilter blockieren diesen für den Menschen nicht sichtbaren Spektralbereich, um irritierende Falschfarbeneffekte in den Aufnahmen zu verhindern. Diese Filter sind aber entfernbar, und derart umgerüstete Kameras erschließen eine verblüffende Welt. Beim Übergang zum NIR ändern sich die optischen Eigenschaften vieler Objekte. In Landschaftsaufnahmen werden Blätter zu den hellsten Objekten. Rotwein, Cola oder Kaffee werden scheinbar zu Wasser. Man kann zudem unter die Oberfläche von Farben, Stoffen, Lacken und sogar der Haut schauen.
Fallende Tropfen oszillieren zwischen zigarren- und pfannkuchenähnlichen Formen. Das hat praktische Konsequenzen für moderne Methoden der Niederschlagsbestimmung, da Regenradargeräte als Eingangsparameter die statische Gleichgewichtsform der Tropfen zugrunde legen. Deshalb muss man auch deren dynamisches Verhalten kennen. Mit Hochgeschwindigkeitsvideos lässt sich dieses sehr gut beobachten.
Rainbows, water droplets, and seeing—slow motion analysis of experiments in atmospheric optics
(2011)
Many physics processes underlying phenomena in atmospheric optics happen on a rather short time scale such that neither the human eye nor video cameras are able to analyze the details. We report applications of high-speed imaging of laboratory experiments in atmospheric optics with subsequent slow motion analysis. The potential to study respective transient effects is investigated in general and for a few phenomena in detail, in particular for rainbow scattering due to single oscillating droplets during free fall, and for light propagation effects through atmospheric paths with turbulences, leading, e.g., to scintillation of stars or shimmering of mirage images.
© 2011 Optical Society of America
Sekt und Champagner gehören zur Silvesterfeier wie ein prächtiges Feuerwerk. Physiker verfallen hierbei leicht in Diskussionen über die Wurfparabeln der Sektkorken oder das akustische Phänomen des Knalls. Hochgeschwindigkeitskameras eröffnen zusätzlich die Möglichkeit, sehr schnell ablaufende Prozesse bei der Handhabung der edlen Tropfen sichtbar zu machen, zum Beispiel die adiabatische Expansion des Treibgases.
Biomass gasification is recognized as a viable avenue to accelerate the sustainable production of hydrogen. In this work, a numerical simulation model of air gasification of rice husks is developed using the Aspen Plus to investigate the feasibility of producing hydrogen-rich syngas. The model is experimentally validated with rice husk gasification results and other published studies. The influence of temperature and equivalence ratio on the syngas composition, H2 yield, LHVSyngas, H2/CO ratio, CGE, and PCG was studied. Furthermore, the synchronized effects of temperature and ER are studied using RSM to determine the operational point of maximizing H2 yield and PCG. The RSM analysis results show optimum performance at temperatures between 820 °C and 1090 °C and ER in the range of 0.06–0.10. The findings show that optimal operating conditions of the gasification system can be achieved at a more refined precision through simulations coupled with advanced optimization techniques.