Monday, June 3, 2024

B₄C–TiB₂ composite ceramics with adjustable mechanical and electrical properties

 In recent years, electro-conductive composite ceramics have gradually become a research hotspot in the functionalization of structural ceramics. However, the improvement of conductivity is generally achieved at the cost of increasing the content of conductive phases or sacrificing the mechanical properties of the composite ceramics.


Therefore, achieving high conductivity of composite ceramics at low conductive phase content is of great significance. In a recent study, electrically conductive B4C–TiB2 composite ceramics containing only 15 vol% TiB2 were prepared by a two-step spark plasma sintering process, and their mechanical and electrical performances were adjusted by the optimal particle size coupling of raw material powders.

A team of material scientists led by Songlin Ran from Anhui University of Technology in Maanshan, China recently prepared highly electro-conductive B4C–TiB2 ceramics by a two-step spark plasma sintering method.

The three-dimensional interconnected intergranular TiB2 network consisting of large B4C grains and small TiB2 grains established an excellent conductive path for the passing of electrical current, which was beneficial to the improvement of electrical conductivity. Moreover, they have also achieved controllable adjustment of the mechanical and electrical properties of B4C–TiB2 ceramics by the optimal particle size coupling of raw material powders.

"In this work, we prepared highly electro-conductive B4C–TiB2 ceramics via a two-step method based on the novel selective matrix grain growth strategy. During the sintering progress, small B4C grains were completely consumed, leaving small TiB2 grains around B4C grains to form the three-dimensional interconnected intergranular TiB2 network.

"As a result, more conductive channels were formed and thus improving the electrical conductivity of the composites," said Dr. Ran, the corresponding author of the paper, a professor in the School of Materials Science and Engineering at Anhui University of Technology.

B4C–15 vol% TiB2 composite ceramic prepared from 10.29 µm B4C and 0.05 µm TiC powders exhibited a perfect three-dimensional interconnected conductive network with a maximum electrical conductivity of 4.25×104 S/m, together with excellent mechanical properties including flexural strength, Vickers hardness and fracture toughness of 691±58 MPa, 30.30±0.61 GPa and 5.75±0.32 MPa·m1/2, respectively, while the composite obtained from 3.12 µm B4C and 0.8 µm TiC powders had the best mechanical properties including flexural strength, Vickers hardness and fracture toughness of 827±35 MPa, 32.01±0.51 GPa and 6.45±0.22 MPa·m1/2, together with a decent electrical conductivity of 0.65×104 S/m.

"The method proposed in this paper can prepare highly electro-conductive ceramics at low conductive phase content, which greatly reduces the production cost and also provides a new strategy for the regulation of microstructure and properties of composite ceramics," said Dr. Ran.

The next step is to restructure the three-dimensional network and construct a more perfect conductive network by introducing ceramic particles, whiskers, fibers, etc. In addition, the effect of the multiple conductive phases on the microstructure, electrical properties and mechanical properties of the composite ceramics need to be investigated in detail to reveal the conductive mechanism.

Other contributors include Jun Zhao, Xingshuo Zhang, Zongning Ma, Dong Wang and Xing Jin from Anhui University of Technology in Maanshan, China; and Chaohu University in Hefei, China.

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Friday, May 31, 2024

Indian American professor Panneer Selvam named Engineering Mechanics Institute fellow

 

ARKANSAS (TIP): R. Panneer Selvam, an Indian American Professor in the Department of Civil Engineering at the University of Arkansas, has been named a Fellow of the Engineering Mechanics Institute.






This prestigious recognition is awarded to individuals who have made significant contributions to the field of engineering mechanics and have demonstrated outstanding leadership within the community.
A vital member of the civil engineering faculty since 1986, Selvam is the first member of the faculty to receive this appointment, according to a university press release. His expertise and dedication to civil engineering education and research have benefitted students and colleagues alike, it says. His innovative work in computational mechanics, wind engineering, and structural dynamics has earned him a reputation as a leading authority in his field.

“It is a tremendous honor to be named a Fellow of the Engineering Mechanics Institute,” said Selvam.”
To become an EMI Fellow, individuals typically undergo a rigorous nomination and selection process. Nominees are evaluated based on their significant contributions to advancing the understanding and application of engineering mechanics principles, as well as their leadership and service within the engineering community.

Selvam cites several factors leading up to this appointment: his four decades of work and research in engineering mechanics; most especially his work on computational fluid dynamics for wind engineering, thermal management for electronics, and nano mechanics.
Elected in 2019 as a member of the EMI Board of Governors, he has also served as associate editor for the Journal of Engineering Mechanics. Selvam’s research has been widely published in top-tier journals and he has been an active participant in numerous professional conferences and symposia.
Some of his most notable contributions include thermal management for electronics for the US Air Force, US Navy, and NASA; thermal energy storage in concrete for the Department of Energy; computing tornado forces on building for the National Science Foundation; finding the atomic structure of concrete using molecular dynamics for the Mack Blackwell Rural Transport Center; and computing critical velocity for bridge flutter for Mack Blackwell and the Federal Highway Administration.
In addition to his research, Selvam is dedicated to teaching and mentoring the next generation of engineers, preparing them for the challenges of their careers. His advice to future civil engineers? “Take an interest in solving some of the challenging issues to humanity like climate change effects on things like severe wind, air quality, water quality and the effects of these on everyday life.”
He has supervised numerous graduate students, many of whom have gone on to successful careers in academia, industry, and government.

“Dr. Selvam’s recognition as an EMI Fellow is a testament to his outstanding contributions to the field of engineering mechanics,” said Dr. Micah Hale, Head of the Department of Civil Engineering at the University of Arkansas.

“His commitment to excellence in research, education, and service exemplifies the values we strive to uphold within our department and the broader engineering community.”
As an EMI Fellow, Selvam joins an elite group of engineers who have been acknowledged for their impact on the field. Selvam will be formally recognized along with other members of the EMI Fellows Class of 2024 at the EMI/PMC Awards Banquet on May 30, 2024, in Chicago, Illinois.



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Tuesday, May 28, 2024

Civil Engineering Professor Named Fellow of the Engineering Mechanics Institute | University of Arkansas

 R. Panneer Selvam, a University Professor in the Department of Civil Engineering, has been named a Fellow of the Engineering Mechanics Institute. This prestigious recognition is awarded to individuals who have made significant contributions to the field of engineering mechanics and have demonstrated outstanding leadership within the community. He is the first member of the civil engineering faculty to receive this appointment.





Selvam has been a vital member of the University of Arkansas faculty since 1986, where his expertise and dedication to civil engineering education and research have benefitted students and colleagues alike. His innovative work in computational mechanics, wind engineering, and structural dynamics has earned him a reputation as a leading authority in his field.

"It is a tremendous honor to be named a Fellow of the Engineering Mechanics Institute," said Selvam. "To become an EMI Fellow, individuals typically undergo a rigorous nomination and selection process. Nominees are evaluated based on their significant contributions to advancing the understanding and application of engineering mechanics principles, as well as their leadership and service within the engineering community. Selvam cites several factors leading up to this appointment: his four decades of work and research in engineering mechanics; most especially his work on computational fluid dynamics for wind engineering, thermal management for electronics, and nanomechanics. Elected in 2019 as a member of the EMI Board of Governors, he has also served as associate editor for the Journal of Engineering Mechanics.

The Engineering Mechanics Institute, a specialized institute within the American Society of Civil Engineers, promotes the development and application of engineering mechanics to solve complex problems in civil engineering and related fields. Fellows of the Engineering Mechanics Institute are recognized for their exceptional achievements and contributions to the engineering community, including research, practice, education, and service. Selvam's research has been widely published in top-tier journals and he has been an active participant in numerous professional conferences and symposia. Some of his most notable contributions include thermal management for electronics for the U.S. Air Force, U.S. Navy, and NASA; thermal energy storage in concrete for the Department of Energy; computing tornado forces on building for the National Science Foundation; finding the atomic structure of concrete using molecular dynamics for the Mack Blackwell Rural Transport Center; and computing critical velocity for bridge flutter for Mack Blackwell and the Federal Highway Administration.

In addition to his research, Selvam is dedicated to teaching and mentoring the next generation of engineers, preparing them for the challenges of their careers. His advice to future civil engineers? "Take an interest in solving some of the challenging issues to humanity like climate change effects on things like severe wind, air quality, water quality and the effects of these on everyday life." He has supervised numerous graduate students, many of whom have gone on to successful careers in academia, industry, and government.

"Dr. Selvam's recognition as an EMI Fellow is a testament to his outstanding contributions to the field of engineering mechanics," said Dr. Micah Hale, Head of the Department of Civil Engineering at the University of Arkansas. "His commitment to excellence in research, education, and service exemplifies the values we strive to uphold within our department and the broader engineering community."

As an EMI Fellow, Dr. Selvam joins an elite group of engineers who have been acknowledged for their impact on the field. This honor not only highlights his achievements but also underscores the quality of the civil engineering program at the University of Arkansas. Dr. Selvam will be formally recognized along with other members of the EMI Fellows Class of 2024 at the EMI/PMC Awards Banquet on May 30, 2024, in Chicago, Illinois.

About the Department of Civil Engineering: The Civil Engineering Department at the University of Arkansas, established in 1897, is a leading institution renowned for its commitment to academic excellence and innovative research. Accredited by the Accreditation Board for Engineering and Technology (ABET), the department offers comprehensive undergraduate and graduate programs that prepare students for successful careers in civil engineering. With a focus on hands-on learning, cutting-edge research, and industry partnerships, our faculty and students tackle critical societal challenges in areas such as sustainable infrastructure, transportation, structural, environmental engineering, and water resources. Dedicated to fostering a supportive and inclusive environment, the department equips graduates with the skills and professional network necessary to excel and make significant contributions to the field. For more information, visit http://civil-engineering.uark.edu.

About the Engineering Mechanics Institute: The Engineering Mechanics Institute of ASCE provides a unique and interdisciplinary platform for researchers, practitioners, and educators to engage and exchange knowledge in the field of engineering mechanics. The EMI fosters the development and application of engineering mechanics to solve problems in civil, mechanical, aerospace, and other engineering disciplines. Through its conferences, publications, and collaborative initiatives, EMI aims to advance the state-of-the-art in engineering mechanics and its practical applications.



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Saturday, May 25, 2024

Experts from National Institute of Rock Mechanics inspect Indrakeeladri after frequent landslips

 With frequent landslides occurring on Indrakeeeladri, causing panic among devotees, experts from National Institute of Rock Mechanics (NIRM) recently conducted a field visit to the hill and examined the condition of the rocks.




After a landslide occurred at the hill abutting the National Highway a few days ago, police halted traffic immediately and the Endowments and other department officials visited the spot.

Experts from NIRM, Bengaluru, tested the condition of the rocks atop Indrakeeladri and around the hill. Experts of rock engineering expressed satisfaction over the measures being taken by the Endowments Department to prevent landslides.

redit: G.N. Rao

With frequent landslides occurring on Indrakeeeladri, causing panic among devotees, experts from National Institute of Rock Mechanics (NIRM) recently conducted a field visit to the hill and examined the condition of the rocks.

After a landslide occurred at the hill abutting the National Highway a few days ago, police halted traffic immediately and the Endowments and other department officials visited the spot.

Experts from NIRM, Bengaluru, tested the condition of the rocks atop Indrakeeladri and around the hill. Experts of rock engineering expressed satisfaction over the measures being taken by the Endowments Department to prevent landslides.

“The NIRM engineers, who conducted examinations at various places, said that the condition of the hill is safe but suggested long-term observation of Indrakeeladri,” said temple Executive Engineer Rama Devi.

Senior rock mechanics engineers said areas that needed to be looked into are stability analysis, seepage during rainy season, underground damage assessment, stress on the hill, water pouring and other technical aspects.

“As per the advice of the technical team of the Endowments Department, the Devasthanam management has arranged a metal fencing along the ghat road and other places to prevent landslips,” Ms. Rama Devi, who accompanied the NIRM team, told The Hindu on Friday.

Credit: G.N. Rao

With frequent landslides occurring on Indrakeeeladri, causing panic among devotees, experts from National Institute of Rock Mechanics (NIRM) recently conducted a field visit to the hill and examined the condition of the rocks.

After a landslide occurred at the hill abutting the National Highway a few days ago, police halted traffic immediately and the Endowments and other department officials visited the spot.

Experts from NIRM, Bengaluru, tested the condition of the rocks atop Indrakeeladri and around the hill. Experts of rock engineering expressed satisfaction over the measures being taken by the Endowments Department to prevent landslides.

“The NIRM engineers, who conducted examinations at various places, said that the condition of the hill is safe but suggested long-term observation of Indrakeeladri,” said temple Executive Engineer Rama Devi.

Senior rock mechanics engineers said areas that needed to be looked into are stability analysis, seepage during rainy season, underground damage assessment, stress on the hill, water pouring and other technical aspects.

“As per the advice of the technical team of the Endowments Department, the Devasthanam management has arranged a metal fencing along the ghat road and other places to prevent landslips,” Ms. Rama Devi, who accompanied the NIRM team, told The Hindu on Friday.

On October 21, 2020, a major landslide occurred at Mouna Swamy temple atop Indrakeeladri, and boulders rolled down from the hill. The mishap occurred just a few minutes before Chief Minister Y.S. Jagan Mohan Reddy was scheduled to visit the temple to offer silk robes to Goddess Kanaka Durga Devi, during Dasara festivities.

However, a major mishap was averted as the police and Endowments officials stopped ‘darshan’ for the devotees in wake of the Chief Minister’s visit.

Temple Trust Board Chairman Karnati Rambabu said the management is taking all measures for the safety of devotees. Caution boards have been arranged around the hill to alert the devotees on landslips, he said.

Minor landslides occurred at several places on the ghat road during heavy rains in the last few years.



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Friday, May 24, 2024

Why quantum mechanics defies physics

The full, weird story of the quantum world is much too large for a single article, but the period from 1905, when Einstein first published his solution to the photoelectric puzzle, to the 1960s, when a complete, well-tested, rigorous, and insanely complicated quantum theory of the subatomic world finally emerged, is quite the story.







This quantum theory would come to provide, in its own way, its own complete and total revision of our understanding of light. In the quantum picture of the subatomic world, what we call the electromagnetic force is really the product of countless microscopic interactions, the work of indivisible photons, that interact in mysterious ways. As in, literally mysterious. The quantum framework provides no picture as to how subatomic interactions actually proceed. Rather, it merely gives us a mathematical toolset for calculating predictions. And so while we can only answer the question of how photons actually work with a beleaguered shrug, we are at least equipped with some predictive power, which helps assuage the pain of quantum incomprehensibility.

Doing the business of physics—that is, using mathematical models to make predictions to validate against experiment—is rather hard in quantum mechanics. And that's because of the simple fact that quantum rules are not normal rules, and that in the subatomic realm all bets are off.

Interactions and processes at the subatomic level are not ruled by the predictability and reliability of macroscopic processes. In the macroscopic world, everything makes sense (largely because we've evolved to make sense of the world we live in). I can toss a ball enough times to a child that their brain can quickly pick up on the reliable pattern: the ball leaves my hand, the ball follows an arcing path, the ball moves forward and eventually falls to the ground. Sure, there are variations based on speed and angle and wind, but the basic gist of a tossed ball is the same, every single time.Not so in the quantum world, where perfect prediction is impossible and reliable statements are lacking. At subatomic scales, probabilities rule the day—it's impossible to say exactly what any given particle will do at any given moment. And this absence of predictability and reliability at first troubled and then disgusted Einstein, who would eventually leave the quantum world behind with nothing more than a regretful shake of his head at the misguided work of his colleagues. And so he continued his labors, attempting to find a unified approach to joining the two known forces of nature, electromagnetism and gravity, with an emphatically not quantum framework.

When two new forces were first proposed in the 1930s to explain the deep workings of atomic nuclei—the strong and weak nuclear forces, respectively—this did not deter Einstein. Once electromagnetism and gravity were successfully united, it would not take much additional effort to work in new forces of nature. Meanwhile, his quantum-leaning contemporaries took to the new forces with gusto, eventually folding them into the quantum worldview and framework.

By the end of Einstein's life, quantum mechanics could describe three forces of nature, while gravity stood alone, his general theory of relativity a monument to his intellect and creativity.


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Tuesday, May 21, 2024

Birmingham Academic honoured with Extreme Mechanics Letters Young Investigator Award

 The Young Investigator Award (YIA) from Extreme Mechanics Letters (EML) honours the best young researchers who have published highly impactful papers in EML.





EML publishes rapid communication of research that highlights the role of mechanics in multi-disciplinary areas across materials science, physics, chemistry, biology, medicine and engineering. Emphasis is on the impact, depth and originality of new concepts, methods and observations at the forefront of applied sciences.

The YIA is awarded annually to the paper's corresponding authors who received their PhD no more than ten years before the award year.

This year, seven young researchers received nominations from documents published in EML in Volumes 57-62 from 2022 to 2023; two were eventually named the winners, including Dr Mingchao Liu, Assistant Professor at the University of Birmingham and Evgueni T. Filipov, Associate Professor, University of Michigan, USA.

Dr Liu was selected based on his two papers, "Modeling of magnetic cilia carpet robots using discrete differential geometry formulation", Extreme Mechanics Letters, Volume 59, P. 101967 (2023) and "A discrete model for the geometrically nonlinear mechanics of hard-magnetic slender structures", Extreme Mechanics Letters, Volume 59, P. 101977 (2023).

In the first, Dr Liu and collaborators developed a discrete magneto-elastic rod model for simulating the dynamic behaviours of hard-magnetic slender structures, notable for its high computational efficiency and applicability to complex micro-structures in varied environments, particularly in soft robotics.

The second paper extends this model to the dynamic analysis of bio-inspired cilia carpet robots driven by external magnetic fields. This framework is crucial for understanding microorganism biophysics and provides guidelines for designing bio-inspired soft robots for biomedical applications.

Dr Liu's research focuses on the mechanics of slender structures and their applications in modelling and designing robotic metamaterials with innovative functions, which include programmable robotic behaviours such as shape-morphing, multimodal locomotion, mechanical sensing, actuation, and memory, as well as tunable mechanical properties.



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Monday, May 20, 2024

'Quantum gravity' could help unite quantum mechanics with general relativity at last

"By understanding quantum gravity, we could solve some of the mysteries of our universe — like how it began, what happens inside black holes, or uniting all forces into one big theory." 




Scientists have determined a way to measure gravity on microscopic levels, perhaps bringing them closer to forming a theory of "quantum gravity" and to solving some major cosmic mysteries.

Quantum physics offers scientists the best description of the universe on tiny scales smaller than atoms. Albert Einstein's theory of general relativity, on the other hand, brings about the best description of physics on huge, cosmic scales. Yet, something is frustratingly missing even after 100 years of both theories passing a wealth of experimental verification.

As robust and accurate as the two theories developed at the turn of the 20th century have become, they have refuse to unite.

One of the primary reasons for this dilemma is that, while three of the universe's four fundamental forces — electromagnetism, the strong nuclear force and the weak nuclear force — have quantum descriptions, there is no quantum theory of the fourth: Gravity.

Now, however, an international team has made headway in addressing this imbalance by successfully detecting a weak gravitational pull on a tiny particle using a new technique. The researchers believe this could be the first tentative step on a path that leads to a theory of "quantum gravity."

"For a century, scientists have tried and failed to understand how gravity and quantum mechanics work together," Tim Fuchs, team member and a scientist at the University of Southampton, said in a statement. "By understanding quantum gravity, we could solve some of the mysteries of our universe — like how it began, what happens inside black holes, or uniting all forces into one big theory."

Gravity gets the 'spooky' treatment

It is maybe fitting that general relativity and quantum physics don't get along; after all, Einstein was never comfortable with quantum physics. This is because while quantum physics has many counterintuitive aspects, he found one in particular very troubling.

It was the notion of entanglement. At risk of simplification, entanglement has to do with coordinating particles in such a way that changing the properties of one particle instantly alters the properties of an entangled partner particle, even if the partner is located on the opposite side of the universe. Einstein called this "spooky action at a distance" as it challenged the concept of local realism.

Local realism is the idea that objects always have defined properties and that interactions between those objects are limited by distance and the speed of light, a universal speed limit introduced by Einstein as the foundation of special relativity. Special relativity is, in fact, the theory that led to the formulation of general relativity in the first place. Yet, despite Einstein's protestations, scientists have indeed proven that entanglement and other counterintuitive aspects of quantum physics are truly factors of reality at sub-atomic scales.

Such proof has been achieved with a multitude of pioneering experiments. Fuchs and colleagues, for instance, are following in the footsteps of physicists such as Alain Aspect, John Clauser and Anton Zeilinger, who won the 2022 Nobel Prize in Physics for experimentally verifying the non-local nature of entanglement.

In their new quantum experiment, the researchers, including scientists from Southampton University, Leiden University and the Institute for Photonics and Nanotechnologies, used superconducting magnetic "traps" to measure the weak gravitational pull on the smallest mass anyone has ever attempted to investigate in this way.

The tiny particle was levitated in the superconducting trap at temperatures of around -459.4 degrees Fahrenheit (-273 degrees Celsius), which is just a few hundredths of a degree above absolute zero, the hypothetical temperature at which all atomic movement would cease. This frigid temperature was needed to limit the vibrations of the particles to the very minimum. The team ultimately measured a gravitational pull of 30 "attoNewtons" on the particle.

AttoNewtons represent a measure of force; to give you an idea of how tiny the gravitational force on the studied particles was, one Newton is defined as the force needed to provide a mass of one kilogram with an acceleration of one meter per second per second. And 30 attoNewtons is equivalent to 0.00000000000000003 Newtons!

"Now we have successfully measured gravitational signals at the smallest mass ever recorded, it means we are one step closer to finally realizing how it works in tandem," Fuchs said. "From here, we will start scaling the source down using this technique until we reach the quantum world on both sides."

Team member and University of Southampton scientist Hendrik Ulbricht said this experiment paves the way for tests with even smaller masses, as well as the measurement of even smaller gravitational forces.

"We are pushing the boundaries of science that could lead to new discoveries about gravity and the quantum world. Our new technique that uses extremely cold temperatures and devices to isolate the vibration of the particle will likely prove the way forward for measuring quantum gravity," he concluded. "Unravelling these mysteries will help us unlock more secrets about the universe's very fabric, from the tiniest particles to the grandest cosmic structures."


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