Deying Pan

dblp:292/8856 · DBLP profile ↗
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6ranked-venue papers
1as first author
6since 2021 · last 2025
0000-0001-5159-9744ORCID · verified

Domains — the database's venue-derived domains; a paper can count in several

Human-computer interaction and ubiquitous computing · 6 · 1 first-author · 6 since 2021
YearPublicationVenuePosition
2025 Touch-n-Curl: Designing and Constructing Skeletal Form through 3D Printing Flattened Zipper Assembly
Deying Pan, Fanqi Zhou, Yitao Fan, Tianshu Dong, Fanke Qi, Yongbo Ni, Ye Tao 0001, Lingyun Sun, Guanyun Wang
UIST1
2024 Touch-n-Go: Designing and Fabricating Touch Fastening Structures by FDM 3D Printing
abstract
Touch fastening structures are widely used to quickly assemble and disassemble an object with multiple parts. However, such structures are under-explored in the context of additive manufacturing for personal fabrication. We proposed Touch-n-Go, a method for designing touch-fastening structures with customizable mechanical properties such as holding capacities or shearing strength. Additionally, the customization of fastener patterns enables both static and dynamic connections, and the dynamic connections grant the freedom of rotation and translation. To facilitate the customization process, we developed a design tool that allows the integration of fastening structures on the surface of a 3D-printed object. Furthermore, we validated the fastening properties of Touch-n-Go through a series of experiments, and the result exhibits performances that match or even surpass off-the-shelf fasteners. Finally, we demonstrated the implementation of Touch-n-Go through a collection of applications.
Lingyun Sun, Deying Pan, Hongyi Hu, Junzhe Ji, Yue Tao, Shanghua Lou, Boyi Lian, Yitao Fan, Ye Tao 0001, Guanyun Wang
CHI2
2024 MagneDot: Integrated Fabrication and Actuation Methods of Dot-Based Magnetic Shape Displays
abstract
This paper presents MagneDot, a novel method for making interactive magnetic shape displays through an integrated fabrication process. Magnetic soft materials can potentially create fast, responsive morphing structures for interactions. However, novice users and designers typically do not have access to sophisticated equipment and materials or cannot afford heavy labor to create interactive objects based on this material. Modified from an open-source 3D printer, the fabrication system of MagneDot integrates the processes of mold-making, pneumatic extrusion, magnetization, and actuation, using cost-effective materials only. By providing a design tool, MagneDot allows users to generate G-code for fabricating and actuating displays of various morphing effects. Finally, a series of design examples demonstrate the possibilities of shape displays enabled by MagneDot.
Lingyun Sun, Yitao Fan, Boyu Feng, Deying Pan, Yiwen Ren, Qi Wang 0075, Ye Tao 0001, Guanyun Wang
UIST5
2023 All-in-One Print: Designing and 3D Printing Dynamic Objects Using Kinematic Mechanism Without Assembly
abstract
The field of Human-Computer-Interaction (HCI) has been consistently utilizing kinematic mechanisms to create tangible dynamic interfaces and objects. However, the design and fabrication of these mechanisms are challenging due to complex spatial structures, step-by-step assembly processes, and unstable joint connections resulting from the inevitable matching errors within separated parts. In this paper, we propose an integrated fabrication method for one-step FDM 3D printing (FDM3DP) kinematic mechanisms to create dynamic objects without additional post-processing. We describe the Arch-printing and Support-bridges method, which we call All-in-One Print, that compiles given arbitrary solid 3D models into printable kinematic models as G-Code for FDM3DP. To expand the design space, we investigate a series of motion structures (e.g., rotate, slide, and screw) with multi-stabilities and develop a design tool to help users quickly design such dynamic objects. We also demonstrate various application cases, including physical interfaces, toys with interactive aesthetics and daily items with internalized functions.
Jiaji Li, Junzhe Ji, Deying Pan, Yitao Fan, Kuangqi Zhu, Yue Yang 0005, Lingyun Sun, Ye Tao 0001, Guanyun Wang
CHI4
2023 PneuFab: Designing Low-Cost 3D-Printed Inflatable Structures for Blow Molding Artifacts
abstract
Access to computer-aided fabrication tools, such as 3D printing, empowers various craft techniques to democratize the creation of artifacts. To afford new blow molding techniques in the field of Human-Computer Interaction, we make efforts to simplify this challenging handy fabrication and enrich the design space of blow molding by taking advantage of the thermoformability and heat deformability of 3D printed thermoplastics. We propose a novel and democratized blow molding technique, PneuFab, enabled by FDM 3D-printed custom structures and temporal triggering methods. Then we implement and evaluate a design tool that allows users to play with parameters and preview the resulting forms until achieving their desired shapes. Showcasing design spaces including artifacts with complex geometries and tunable stiffness, we hope to expand access and dive into what more the digital blow molding fabrication can be.
Guanyun Wang, Kuangqi Zhu, Lingchuan Zhou, Mengyan Guo, Deying Pan, Yue Yang 0005, Jiaji Li, Jiang Wu 0019, Ye Tao 0001, Lingyun Sun
CHI7
2022 X-Bridges: Designing Tunable Bridges to Enrich 3D Printed Objects' Deformation and Stiffness
abstract
Bridges are unique structures appeared in fused deposition modeling (FDM) that make rigid prints flexible but not fully explored. This paper presents X-Bridges, an end-to-end workflow that allows novice users to design tunable bridges that can enrich 3D printed objects' deformable and physical properties. Specifically, we firstly provide a series of deformation primitives (e.g. bend, twist, coil, compress and stretch) with three versions of stiffness (loose, elastic, stable) based on parametrized bridging experiments. Embedding the printing parameters, a design tool is developed to modify the imported 3D model, evaluate optimized printing parameters for bridges, preview shape-changing process, and generate the G-code file for 3D printing. Finally, we demonstrate the design space of X-Bridges through a set of applications that enable foldable, resilient, and interactive shape-changing objects.
Lingyun Sun, Jiaji Li, Junzhe Ji, Deying Pan, Kuangqi Zhu, Yitao Fan, Yue Yang 0005, Ye Tao 0001, Guanyun Wang
UIST4