Systematic innovation and the underlying principles behind TRIZ and TOC

被引:58
作者
Stratton, R [1 ]
Mann, D
机构
[1] Nottingham Trent Univ, Sch Engn, Nottingham, England
[2] Univ Bath, Dept Mech Engn, Bath BA2 7AY, Avon, England
关键词
systematic innovation; TRIZ; TOC; constraints management; trade-offs; manufacturing strategy;
D O I
10.1016/S0924-0136(03)00192-4
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
innovative developments in the design of product and manufacturing systems are often marked by simplicity, at least in retrospect, that has previously been shrouded by restrictive mental models or limited knowledge transfer. These innovative developments are often associated with the breaking of long established trade-off compromises, as in the paradigm shift associated with JIT & TQM, or the resolution of design contradictions, as in the case of the dual cyclone vacuum cleaner. The rate of change in technology and the commercial environment suggests the opportunity for innovative developments is accelerating, but what systematic support is there to guide this innovation process. This paper brings together two parallel, but independent theories on inventive problem solving; one in mechanical engineering, namely the Russian Theory of Inventive Problem Solving (TRIZ) and the other originating in manufacturing management as the Theory of Constraints (TOC). The term systematic innovation is used to describe the use of common underlying principles within these two approaches. The paper focuses on the significance of trade-off contradictions to innovation in these two fields and explores their relationship with manufacturing strategy development. (C) 2003 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:120 / 126
页数:7
相关论文
共 50 条
[31]   Innovation design of medical equipment based on TRIZ [J].
Gao, Changqing ;
Guo, Leiming ;
Gao, Fenglan ;
Yang, Bo .
TECHNOLOGY AND HEALTH CARE, 2015, 23 :S269-S276
[32]   Research on mechanical design innovation based on TRIZ [J].
Wang Fengliang ;
Guo Chunjie .
AGRO FOOD INDUSTRY HI-TECH, 2017, 28 (03) :1123-1127
[33]   The Constraints Analysis on TRIZ in Management Innovation Application [J].
Pang, Jinzhu ;
Guo, Xinbao ;
Yang, Yawen .
ADVANCES IN MANUFACTURING TECHNOLOGY, PTS 1-4, 2012, 220-223 :220-223
[34]   Effect of TRIZ on enhancing employees' creativity and innovation [J].
Jafari, Mostafa ;
Zarghami, Hamid Reza .
AIRCRAFT ENGINEERING AND AEROSPACE TECHNOLOGY, 2017, 89 (06) :853-861
[35]   TRIZ Routes the Solving Process of Innovation Problem [J].
Bai, Jingru ;
Bai, Na ;
Wang, Qing ;
Jia, Chunxia .
2014 INTERNATIONAL CONFERENCE ON ADVANCED EDUCATION AND MANAGEMENT (ICAEM), 2014, :558-562
[36]   Research on application of process model for product concept creative design based on TRIZ and TOC [J].
Huang S. ;
Liu X. ;
Ai H. .
International Journal on Interactive Design and Manufacturing (IJIDeM), 2017, 11 (4) :957-966
[37]   Classification of TRIZ Inventive Principles and Sub-principles for Process Engineering Problems [J].
Sekaran, Arun Prasad Chandra ;
Livotov, Pavel ;
Mas'udah .
NEW OPPORTUNITIES FOR INNOVATION BREAKTHROUGHS FOR DEVELOPING COUNTRIES AND EMERGING ECONOMIES, 2019, 572 :314-327
[38]   Time-space-direction extension TRIZ innovation model for product innovation [J].
Ren W. ;
Yu K. .
International Journal of Circuits, Systems and Signal Processing, 2022, 16 :53-59
[39]   Systematic Ideation Effectiveness Study of TRIZ [J].
Hernandez, Noe Vargas ;
Schmidt, Linda C. ;
Okudan, Guel E. .
JOURNAL OF MECHANICAL DESIGN, 2013, 135 (10)
[40]   The Analysis in the Difficulty of Carrying on the Innovation Based on the TRIZ Theory [J].
Wang, Keshe ;
Liu, Huanli ;
Xu, Yuxiang .
ADVANCED MANUFACTURING SYSTEMS, PTS 1-3, 2011, 201-203 :241-246