Showing posts with label Materials-Science-Technology-Engineering. Show all posts
Showing posts with label Materials-Science-Technology-Engineering. Show all posts

Tuesday, June 9, 2009

SAGE Materials Science & Engineering Journals Current free trial runs till 30 June09

Sage encourages scientists, technologists and engineers to register for their latest free trials, which among others gives access to SAGE Materials Science & Engineering Journals until June 30, 2009. The Sage Mat Sci and Eng list is as follows:

•Adaptive Behaviour
•Building Services Engineering Research and Technology
•Concurrent Engineering
•Food Science and Technology
•High Performance Polymers
•Indoor and Built Environment
•International Journal of Damage Mechanics
•International Journal of Robotics Research
•International Journal of High Performance Comp Applications
•Journal of Bioactive and Compatible Polymers
•Journal of Biomaterials Applications
•Journal of Building Physics
•Journal of Cellular Plastics
•Journal of Composite Materials
•Journal of Elastonomers and Plastics
•Journal of Fire Protection Engineering
•Journal of Fire Sciences
•Journal of Industrial Textiles
•Journal of Intelligent and Materials Systems & Structures
•Journal of Plastic Film and Sheeting
•Journal of Reinforced Plastics and Composites
•Journal of Sandwich Structures and Materials
•Journal of Thermoplastic Composite Materials
•Journal of Vibration & Control
•Lighting Research & Technology
•Mathematics & Mechanics of Solids
•SIMULATION
•Textile Research Journal
•The International Journal of Structural Health Monitoring
•Transactions of the Institute of Measurement and Control
•Waste Management and Research

Sage invites interested readers to sign up now!

Wednesday, January 14, 2009

7 Tips for Materials Sustainability and The Environment

The 7 Tips are:

1. Understand terminology and legislation, which is currently evolving in this area.

2. Choose the most appropriate methods for waste management, with social / economic / ecological justification.

3. Use life cycle assessment principles as a basis for environmental auditing, to calculate an “index of merit” for waste management options.

4. Choose appropriate methods of recycling for products and components not commonly recycled. e.g. using non-melt processing methods.

5. Outline the likely changes to material’s properties from different recycling methods.

6. Confidently discuss and identify requirements with suppliers, customers and workplace colleagues.

7. Demonstrate the ability to think laterally and solve new problems in this subject area, through the theory and case studies taught and mini-projects.

These 7 tips are echoed for their general applicability and are taken from the proposed 1 week course "Materials Sustainability and The Environment - A Materials for Industry Short Course" to be held at Loughborough University, 16 th to 20 th February 2009 .

More ...

Wednesday, December 10, 2008

Green and Powerful - Energy Materials - Happy Birthday 1st Year of Materials UK KTN-Knowledge Transfer Network

A one page conference report appeared in the Nov.2008 issue my professional Institute journal cf Sources below (1 of 4).

The figure left is due to the Energy Technologies Institute-ETI.(2)

What was a good summary, yet appeared to be a fairly small window to one of the pillars of all materials, technology and engineering fields; namely, the so-called "Energy Materials", ie. materials used for energy harnessing-generation-conversion and storage.

One way to make sure of the readers degree of interest?

Well I checked link given - Materials UK, (2) proof if needed, that the summary was good and that my interest was of the required level-stimulated!

This turned out to be a rich resource on Advanced Materials: Technological and Engineering overview, pointers-roadmaps, Strategies for progress. This is an excellant structuring of the UK combined effort to find the necessary synergies to face the great challenges which the Future undoubtably holds in particular due to Climate Change and fossile based energy sources.

Dare I say "multi-national or better multi-cultural?" structuring of this island-commonwealth?
NB. Great Graphics for you blog or company presentation. cf above due to ETI. The more echo the better and progress greener! (2)

But that is not all!

To the brave hearted; this can also open more avenues to the earlier collaborative European Union co-ordinated EuMaT (3) series of initiatives. "Energy Materials" ie. materials used for energy harnessing-generation-conversion and storage.
These advance materials, especially those called-upon to operate under very high temperatures in corrosive gas environments such special steels and alloys with or without complex ceramic coatings are commonly refered to as high-duty, high integrety materials incidentally naturally calls for and supports massive R and D effort in short the medium and longterm. eg. such as that in which I was involved in at my old out-fit "Imphy SA"- now Eramet-Aubert and Duval and Arcelor-Mittal - suffering albeit on a smaller scale, a similar fate to that of the the UK Nuclear Industry, (4) but in reverse!
NB1. I had pre-posted the above and was checking appearance and links when I found a further link on (4) with precious information on the potential of Scotland as a prime renewable energy source, specifically the example of Isle of Jura, Argyll, described and commented by the highly experienced Sir William Lithgow Scottish Shipbuilding Industrialist and Fellow of Engineering. W. Lithgow treats two of the themes main subjects sessions at the Conf. (1) and (2) Power Generation and Distribution cf. (4) additional information.

NB2. Great Graphics for you blog or company presentation. The more echo the better and progress greener! (2)

Sources:

1 Materials World Nov 2008
NB. Appologies- The Materials World Feature "Talking Energy is available to members only, however allow me to invite you to read the many features open to all and point out the many other open features in the abondant archives. I purposely avoided giving to much detail in order to respect the Journal. However if there are requests for a shortened version of the Feature, I will be pleased to consider this as an opporunity.

More importantly, The Institute (IoM3) publishes 20 peer reviewed very high quality specialised journals both in print and online for a global audience.

2. Energy Materials UK-KTN Knowledge Transfer Network

3. European Technology Platform for Advanced Materials and Technologies

4. Comparing nuclear power in France and England by Prof Jack Haris FRS FEng.FRS.

Wednesday, May 7, 2008

Mathematical Modeling in Materials Science Review by H.Bhadeshia,Univ. of Cambridge UK



In April, I drew your attention to this No. of Materials Science & Technology (Feb 08 Vol 24 ) in particular to the four Mathematical Modeling papers. While awaiting members feedback, comments etc., I have chosen to summarise my favorite paper in this issue:
Mathematical models in materials science pp. 128-136(9) Author: H.-Bhadeshia, H.K.D.H.

I cannot help admiring Prof.Harry Bhadeshia’s thinking and writing. His review paper
Mathematical models in materials science I feel, is very well balanced indeed. The pros and cons, yes there are cons, are both superb examples in positive critical thinking. The review is timely.

Right from the start his Abstract sets the scene for his review.

He graphically portrays two visions or methods of modelling, the linear whereby the relative length scales are important and an interdisciplinary – disconnected approach

(fig.1. above)

Harry-Bhadeshia draws upon historical developments with salient examples of the undoubted successes and the redoubtable excesses one encounters so often with all new methods and approaches. A sort of "dedicated follower of fashion syndrome which does not I surmise exclude money, always, in fashion-the necessary evil!)Harry stresses the fact that models however useful do not explain Nature and quotes,Nobel Prize Winner 1977, PHILIP W. ANDERSON[Pdf format-LINK] of Bell Labs. & Princeton Univ.

"After all, the perfect
computation simply reproduces Nature, it does not
explain her."

I may add that this message did not go unheeded, both following Nobels P-G. Gennes (1991) & G. Charpak (1992) in France have confirmed their sharing & support, authoring books, of the “Andersonian View” (incidentally the homonym of my original Univ in Glasgow, Strathclyde which started life as the Andersonian Institute arguably a precursor of such approaches.)

Harry-Bhadeshia clearly underlines the differences and complimentary aspects of Modelling vs. the classical scientific method.

How then does this differ from ordinary
science, which also yearns for the mathematical formulation
of Nature? cf Fig2.



Harry-Bhadeshia defines four classes of models:
“Models might be classified as follows:
(i) those which lead to an unexpected outcome that
can be verified
(ii) those which are created or used in hindsight to
explain diverse observations
(iii) existing models which are adapted or grouped
to design materials or processes
(iv) models used to express data, reveal patterns, or
for implementation in control algorithms.

and he notes that "While these categories are not exclusive, they serve to highlight the applications of models, with the emphasis being on quantitative expression, whether that is fuzzy or discrete.”

Excess information and information loss is considered. If ever a theme largely surpasses the relms of Maths Modeling this is one, few in modern economies are spared:

Harry uses a more explicit expression than “Information overflow!” and “pulls our collective ear", sharply, in offering a couple of explainations for our “lack of nerve, concentration, diligence…” as one may expect of good teacher,
Comments, welcome.

Quote:"These examples highlight the fact that researchers often have the capability to collect fine detail but perhaps not the patience or skill to exploit that information fully. Precisely the same issues arise in materials modelling where data can often be generated at resolutions not possible using experiments (for
example, heat and fluid flow during welding). The outputs of such methods are ‘coarse grained’ before publication." (I presume due to the peer refereeing process)

Further criticisms raised are:

“Similarily atomistic calculations require huge computing resources, and yet the answers they produce are quite simple, for example, the cohesive
energy of postulated crystal structures or the elastic moduli.”

“The danger with computationally intensive methods is that the focus shifts on the final outcome rather than on the steps leading to that solution.”

“It is difficult to assess the utility of large quantities of data when scientific expertise tends to be highly specialised.”

Harry suggests that: “good practice would be to make the data freely available so that others can look at the information with a fresh perspective. The World Wide Web makes this (technically) an easy task to implement.”

He supports this approach with reference to creep data made available and exploited.
Fuller details are available in the published review. However more information is available via the University of Cambridge, NPL:
umMaterials Algorithms Project and is an important step in the direction of WWW data handling and exploitation arguably another expression of The Andersonian View: “A place of useful learning”.


The many succsesses obtained by computational thermodynamic approaches are discussed together with their limitations, notably, the phases to be calculated must be known.

Many other topics in both experimental (validation) and mathematical modelling are discussed in clear terms such as:
-Uncertainty; graphical examples types of uncertainty are discussed ,
-Neural Networks are demystified,
-Generic Algorithms are recommended for design problems since they usually begin with a -specification of the required properties. So a model may be used to find the domain of inputs that lead to the desired properties (outputs), often by a trial and error.
-Strong steels whereby mathematical modelling led to the invention of new products, eg. Blastalloy 160, blast resistant steel, designed for fighting ship hulls, has a yield strength of 1110 MPa and a Charpy toughness of roughly 176 J at room temperature.
-Creep resistant steels – a notable failure according to Prof Bhadeshia who with hindsight offers some hints as to why both theory (and practise) had been relative failures vs. the amount of effort invested.
-Expense of modelling- insights from an experienced user.
-Model validation – ditto.

I shall not quote from Harry’s insightful conclusions but leave this to the enlightened reader’s initiative. Indeed a fully worthwhile read. I strongly recommend it for both specialists and general metallurgical and materials science professionals and managers.

JA.