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HS_polimi捐助貴賓 (初入文壇)
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[交流]
意大利米蘭理工大學(xué)Moroni教授2025年招博士生
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【招生】:意大利米蘭理工大學(xué)moroni教授課題組2025年招收1-2名三年制博士生 【人員】:博士生(學(xué)制3年),擬研究?jī)?nèi)容見(jiàn)附件 【渠道】:由 polimi-csc 或 csc 資助 【專(zhuān)業(yè)要求】:機(jī)械工程、計(jì)算機(jī)科學(xué)或類(lèi)似理工科碩士 【簡(jiǎn)歷】歡迎有意者將完整、真實(shí)的英文簡(jiǎn)歷發(fā)送至:giovanni.moroni@polimi.it。 【學(xué)科】:米蘭理工大學(xué)(politecnico di milano)成立于1863年,主校區(qū)位于意大利倫巴第大區(qū)米蘭。它是意大利第一所技術(shù)大學(xué),其“機(jī)械、航空和制造工程”學(xué)科在 2024 年 qs world university rankings中全球排名第9位 補(bǔ)充申請(qǐng)鏈接 https://www.dottorato.polimi.it/ ... larship-council-csc [ Last edited by HS_polimi on 2024-12-2 at 21:39 ] |
捐助貴賓 (初入文壇)
捐助貴賓 (初入文壇)
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【研究方向】:giovanni moroni 是米蘭理工大學(xué)機(jī)械工程學(xué)院制造技術(shù)和系統(tǒng)教授,manufacturing and production systems research group科研團(tuán)隊(duì)的負(fù)責(zé)人。其研究領(lǐng)域主要有: geometrical product specification and verification imaging techniques and algorithms in computed tomography knowledge-based process planning additive manufacturing 由于論壇上傳限制,可參照去年招生信息內(nèi)容 http://m.gaoyang168.com/t-15950173-1,也歡迎咨詢(xún)了解具體研究?jī)?nèi)容。 |
捐助貴賓 (初入文壇)
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Just to update the proposal of the call for PhD Candidate ——————————————————————————————————————————————————————— Mechanical Engineering Department – Politecnico di Milano – Milano, Italy PhD Candidate Project Abstract Geometrical product specification and verification in additive manufacturing It is well established that additive manufacturing (AM) is a historical breakthrough in manufacturing and deeply impacts the overall design and manufacturing process chain as well as the entire life cycle of a product. The greater benefits of AM come from the fact that by adding material point-to-point and layer-by-layer, it is possible to control both the shape and material complexity of a product. This ‘‘complexity for free’’ requires alterations to current methods to describe and communicate complex design. This need is particularly true and well recognized with respect to the specification of geometry, material, tolerances, surface finish, and any additional functional requirements of the product. The transition to digital manufacturing, as for AM, is rising in importance to incorporate Product and Manufacturing Information (PMI) in the Model-Based Engineering (MBE) packages. To this extent with respect to AM, there is a need of developing methods to perform the following: 1. Tolerance complex freeform surface 2. Communicate and tolerance heterogeneous materials and internal feature 3. Communicate dimensioning and tolerancing requirements throughout the product lifecycle 4. Facilitate machine-readable dimensioning and tolerancing from design to manufacturing, conformance, and verification. However, to completely take advantage of AM, the process chain needs a lot of development with respect the tolerance verification step. Conventional coordinate measuring systems are not characterized by a flexibility comparable to AM, in particular when internal geometries (e.g., lattice structures) are involved. The only well-developed measurement technique able today to carry geometric measurements on complex-shaped parts is 3D X-ray computed tomography, but it needs development with respect to performance verification, uncertainty assessment, and digital tools and methods to plan the geometrical verification. All of these considerations are the fundamental motivation for the research group activities on tolerancing and X-ray computed tomography for additive manufacturing. Selected papers: 1. Petrò, S., Pagani, L., Moroni, G., Scott, P.J., 2021, Conformance and nonconformance in segmentation-free X-ray computed tomography geometric inspection, Precision Engineering, 72:25-40 2. Petrò, S., Moroni, G., 2021, Statistics-based decision rules for the ISO 10360 series of standard tests, CIRP Annals – Manufacturing Technology, 70/1:423-426 3. Petrò, S., Moroni, G., 2021, A statistical point of view on the ISO 10360 series of standards for coordinate measuring systems verification, Measurement: Journal of the International Measurement Confederation, 172:108937 4. Vaneker, T., Bernard, A., Moroni, G., Gibson, I., Zhang, Y., 2020, Design for additive manufacturing: Framework and methodology, CIRP Annals – Manufacturing Technology, 69/2:578-599 5. Morse, E., Dantan, J.Y., Anwer, N., Soderberg, R., Moroni, G., Qureshi, A.J., Jiang, X., Luc Mathieu, L., 2018, Tolerancing: managing uncertainty from conceptual design to final product, CIRP Annals – Manufacturing Technology, 67/2:695-717 6. Moroni, G., Petrò, S., 2018, Segmentation-free geometrical verification of additively manufactured components by x-ray computed tomography, CIRP Annals – Manufacturing Technology, 67/519-522 7. Moroni, G., Petrò, S., Polini, W., 2017, Geometrical product specification and verification in additive manufacturing, CIRP Annals – Manufacturing Technology, 66/1:157-160 8. Thompson, M.K., Moroni, G., Vaneker, T., Fadel, G., Campbell, R.I., Gibson, I., Bernard, A., Schulz, J., Graf, P., Ahuja, B., Martina, F., 2016, Design for additive manufacturing: Trends, opportunities, considerations, and constraints, CIRP Annals – Manufacturing Technology, 65/2:737-760. |
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