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Article

Design and Optimization of Miniaturized Actuation System with Systematic Dual-Output Compliant Displacement Amplification

by
Rohan R. Ozarkar
1,2,
Nilesh P. Salunke
3,*,
Prajitsen G. Damle
2,
Rahul Shukla
4,5,
Shakeelur Raheman
6,7 and
Khursheed B. Ansari
8,*
1
Department of Mechanical Engineering, R. C. Patel Institute of Technology, Shirpur 425405, India
2
Department of Mechanical Engineering, Shram Sadhna Bombay Trust’s College of Engineering and Technology, Jalgaon 425001, India
3
Department of Mechanical Engineering, SVKM’s NMIMS Global University, Dhule 424001, India
4
Indus Synchrotrons Utilization Division, Raja Ramanna Centre for Advanced Technology, Indore 452013, India
5
Homi Bhabha National Institute, Training School Complex, Anushakti Nagar, Mumbai 400094, India
6
Department of Mechanical Engineering, Pohang University of Science and Technology, 77 Cheongam-Ro, Nam-Gu, Pohang 37673, Gyeongbuk, Republic of Korea
7
Department of Applied Science and Humanity, SVKM’s NMIMS Global University, Dhule 424001, India
8
Department of Chemical Engineering, College of Engineering, King Khalid University, Abha 61411, Saudi Arabia
*
Authors to whom correspondence should be addressed.
Actuators 2026, 15(5), 244; https://doi.org/10.3390/act15050244
Submission received: 26 March 2026 / Revised: 19 April 2026 / Accepted: 28 April 2026 / Published: 30 April 2026
(This article belongs to the Special Issue Miniature and Micro-Actuators—2nd Edition)

Abstract

Compliant displacement amplification mechanisms are widely used in MEMSs and micro-actuated systems to enhance the limited stroke of micro-actuators. However, systematic integration of instantaneous center building block (IC-BB)-based conceptual design and structured post-synthesis optimization for symmetric single-input dual-output compliant displacement amplification mechanisms (SIDO-CDAMs) remains limited in the literature. In this work, a symmetric SIDO-CDAM is first conceptually synthesized using the IC-BB approach by employing only compliant dyad building blocks (CDBs), resulting in a mechanism that produces dual outputs in the same direction. The synthesized conceptual mechanism is subsequently realized with necessary geometric refinements and modeled to validate the conceptual design. A two-stage post-synthesis optimization framework is then proposed to enhance geometrical advantage (GA) while reducing stiffness. In Stage-1, Taguchi design of experiments combined with analysis of variance (ANOVA) is used to screen design parameters, identify the dominant factor, and fix it at its optimal level to eliminate masking effects. In Stage-2, a reduced Taguchi design integrated with gray relational analysis (GRA) is applied for multi-response optimization based on finite element analysis (FEA). Regression models and FEA-based confirmation tests are employed to validate the optimized design. The results demonstrate a significant improvement in displacement amplification with a simultaneous reduction in stiffness compared to the base design. The proposed IC-BB-based conceptual synthesis, coupled with structured post-synthesis optimization, provides a robust and computationally efficient framework for the development of micro-actuation and precision engineering applications.
Keywords: compliant mechanism; displacement amplification; dual-output mechanism; MEMS; miniaturized system; Taguchi method; ANOVA; gray relational analysis compliant mechanism; displacement amplification; dual-output mechanism; MEMS; miniaturized system; Taguchi method; ANOVA; gray relational analysis
Graphical Abstract

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MDPI and ACS Style

Ozarkar, R.R.; Salunke, N.P.; Damle, P.G.; Shukla, R.; Raheman, S.; Ansari, K.B. Design and Optimization of Miniaturized Actuation System with Systematic Dual-Output Compliant Displacement Amplification. Actuators 2026, 15, 244. https://doi.org/10.3390/act15050244

AMA Style

Ozarkar RR, Salunke NP, Damle PG, Shukla R, Raheman S, Ansari KB. Design and Optimization of Miniaturized Actuation System with Systematic Dual-Output Compliant Displacement Amplification. Actuators. 2026; 15(5):244. https://doi.org/10.3390/act15050244

Chicago/Turabian Style

Ozarkar, Rohan R., Nilesh P. Salunke, Prajitsen G. Damle, Rahul Shukla, Shakeelur Raheman, and Khursheed B. Ansari. 2026. "Design and Optimization of Miniaturized Actuation System with Systematic Dual-Output Compliant Displacement Amplification" Actuators 15, no. 5: 244. https://doi.org/10.3390/act15050244

APA Style

Ozarkar, R. R., Salunke, N. P., Damle, P. G., Shukla, R., Raheman, S., & Ansari, K. B. (2026). Design and Optimization of Miniaturized Actuation System with Systematic Dual-Output Compliant Displacement Amplification. Actuators, 15(5), 244. https://doi.org/10.3390/act15050244

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