Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Zixuan Zhang is active.

Publication


Featured researches published by Zixuan Zhang.


Journal of Manufacturing Science and Engineering-transactions of The Asme | 2015

A Mixed Double-Sided Incremental Forming Toolpath Strategy for Improved Geometric Accuracy

Zixuan Zhang; Huaqing Ren; Rui Xu; Newell Moser; Jacob Smith; Ebot Ndip-Agbor; Rajiv Malhotra; Z. Cedric Xia; Kornel F. Ehmann; Jian Cao

Double-sided incremental forming (DSIF) is a relatively new dieless forming process which uses two hemispherical ended tools, one on each side of the sheet, moving along a predefined trajectory to locally deform a peripherally clamped sheet of metal. DSIF provides greater process flexibility, higher formability, and eliminates the tooling cost when compared to conventional sheet forming processes. While DSIF provides much improved geometric accuracy compared to other incremental forming processes, current toolpath planning strategies suffer from long forming times. A novel mixed double-sided incremental forming (MDSIF) toolpath strategy is proposed in the present study. It simultaneously reduces the total forming time by half while preserving the best currently achievable geometric accuracy. The effect of the forming parameters, i.e., of the incremental depth and of tool positioning on the geometric accuracy of the parts formed with MDSIF was investigated and compared to those formed by traditional DSIF strategies.


Journal of Manufacturing Science and Engineering-transactions of The Asme | 2015

Effects of Tool Positions in Accumulated Double-Sided Incremental Forming on Part Geometry

Huaqing Ren; Newell Moser; Zixuan Zhang; Ebot Ndip-Agbor; Jacob Smith; Kornel F. Ehmann; Jian Cao

In accumulated double-sided incremental forming (ADSIF), two hemispherical tools impart the local deformation to the sheet via their programed in-plane spiral motion and the depth of the part is achieved via rigid body motion of the already formed part. Unlike single point incremental forming (SPIF) and double-sided incremental forming (DSIF), ADSIF does not impose forces on the already-formed part and, therefore, has the potential of achieving higher geometric accuracy. A systematic method is proposed in this work to study the influences of the relative tool positions on the local formed shape and the final geometry, which is essentially the accumulation of all previously formed local deformations. Meanwhile, the concepts of the stable angle and the peak angle are introduced to better describe the cross-sectional geometry of a formed part with a constant wall angle at that particular cross section. It is recommended that, while multiple combinations of the relative positions of two forming tools may achieve the same stable angle that the positioning parameters should be chosen such that the resultant forming force or the wall angle variation between the stable and peak angles is minimized.


ESAFORM 2016: Proceedings of the 19th International ESAFORM Conference on Material Forming | 2016

An investigation into the mechanics of double-sided incremental forming using finite element methods

Newell Moser; Zixuan Zhang; Huaqing Ren; Kornel F. Ehmann; Jian Cao

Double-Sided Incremental Forming (DSIF) is a developing sheet metal manufacturing process that has gained a lot of attention in recent years due to its inherent flexibility, low-overhead cost, and die-less nature. However, it can be challenging to define the tool gap so as to achieve a desired pressure through the sheet thickness since one must first predict sheet thinning. In this investigation, a novel part design is proposed which varies in-plane curvature as a function of depth. A finite element model for DSIF is developed and the strain histories in various regions are extracted. It was concluded that if the supporting tool loses contact with the sheet, localized necking can occur prior to part failure. Additionally, part geometry can have significant effects on the tool contact area which, consequently, affects the evolution of strain.


ASME 2014 International Manufacturing Science and Engineering Conference, MSEC 2014 Collocated with the JSME 2014 International Conference on Materials and Processing and the 42nd North American Manufacturing Research Conference | 2014

A mixed toolpath strategy for improved geometric accuracy and higher throughput in double-sided incremental forming

Rui Xu; Huaqing Ren; Zixuan Zhang; Rajiv Malhotra; Jian Cao

Incremental sheet forming has attracted considerable attention in the recent past due to advantages that include high process flexibility and higher formability as compared to conventional forming processes. However, attaining required geometric accuracy of the formed part is one of the major issues plaguing this process. The Double-Sided Incremental Forming process has emerged as a potential process variant which can preserve the process flexibility while maintaining required geometric accuracy. This paper investigates a mixed toolpath for Double-Sided Incremental Forming which is able to simultaneously achieve good geometric accuracy and higher throughput than is currently possible. The geometries of parts formed using the mixed toolpath strategy are compared to the desired geometry. Furthermore, an examination of the forming forces is used to uncover the reasons for experimentally observed trends. Future work in this area is also discussed.Copyright


Cirp Annals-manufacturing Technology | 2016

A hybrid mixed double-sided incremental forming method for forming Ti6Al4V alloy

Beatrice Valoppi; Antonio José Sánchez Egea; Zixuan Zhang; Hernan Alberto González Rojas; Andrea Ghiotti; Stefania Bruschi; Jian Cao


Cirp Annals-manufacturing Technology | 2016

Effective forming strategy for double-sided incremental forming considering in-plane curvature and tool direction

Newell Moser; Zixuan Zhang; Huaqing Ren; Huan Zhang; Yi Shi; Ebot Ndip-Agbor; Bin Lu; Jun Chen; Kornel F. Ehmann; Jian Cao


Procedia Manufacturing | 2016

Springback Reduction by Annealing for Incremental Sheet Forming

Zixuan Zhang; Huan Zhang; Yi Shi; Newell Moser; Huaqing Ren; Kornel F. Ehmann; Jian Cao


Manufacturing letters | 2016

Preliminary investigations on Double Sided Incremental Forming of thermoplastics

Mohammad Ali Davarpanah; Zixuan Zhang; Shalu Bansal; Jian Cao; Rajiv Malhotra


Journal of Manufacturing Science and Engineering-transactions of The Asme | 2018

Experimental Characterization and Numerical Modeling of the Interaction Between Carbon Fiber Composite Prepregs During a Preforming Process

Weizhao Zhang; Xuan Ma; Jie Lu; Zixuan Zhang; Qian Jane Wang; Xuming Su; Danielle Zeng; Mansour Mirdamadi; Jian Cao


International Journal of Mechanical Sciences | 2018

Deformation mechanics and failure mode in stretch and shrink flanging by double-sided incremental forming

Huan Zhang; Zixuan Zhang; Huaqing Ren; Jian Cao; Jun Chen

Collaboration


Dive into the Zixuan Zhang's collaboration.

Top Co-Authors

Avatar

Jian Cao

Northwestern University

View shared research outputs
Top Co-Authors

Avatar

Huaqing Ren

Northwestern University

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Newell Moser

Northwestern University

View shared research outputs
Top Co-Authors

Avatar

Huan Zhang

Shanghai Jiao Tong University

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Jacob Smith

Northwestern University

View shared research outputs
Top Co-Authors

Avatar

Jie Lu

Northwestern University

View shared research outputs
Researchain Logo
Decentralizing Knowledge