一种解决问题的方法,其基础是通过研究专利中发现的发明原则和模式,找出并解决系统中的矛盾。
- 方法: 工程, 产品设计, 项目管理
TRIZ(发明性问题解决理论)

TRIZ(发明性问题解决理论)
- 敏捷方法论, 持续改进, 创意设计策略, 设计思维, 创新, 解决问题的技巧, 质量管理, 系統建模語言(SysML), 创新思维
目标
如何使用
- Involves defining a problem in terms of technical contradictions (e.g., a product needs to be stronger but also lighter), identifying relevant inventive principles (from a list of 40) or using other 创新思维 tools (e.g., Substance-Field Analysis, ARIZ) to find innovative solutions.
优点
- Provides a systematic approach to inventive 问题解决; helps overcome psychological inertia and find non-obvious solutions; based on a vast knowledge base of successful inventions.
缺点
- 学习曲线可能比较陡峭;需要抽象思维和对 TRIZ 概念的理解;要有效应用某些工具可能比较复杂。
类别
- 工程, 构思, 解决问题, 产品设计
最适合:
- 系统地解决复杂的技术问题,并通过解决矛盾产生创新的解决方案。
TRIZ is particularly advantageous in sectors such as aerospace, automotive, consumer electronics, and manufacturing, where engineering challenges often embody competing demands. This methodology is frequently applied during the design and development phases of projects, especially when teams face constraints or conflicts in performance characteristics, such as needing a product that is both more durable and cost-effective. Participants typically involve multidisciplinary teams, drawing from engineering, design, and planning disciplines to fully leverage the technique’s potential in generating creative solutions that can be patented or commercialized. By systematically identifying technical contradictions, TRIZ encourages teams to think beyond conventional boundaries and access a rich repository of inventive principles that can inspire novel approaches; these principles include strategies like segmentation, combination, and the use of negative or positive feedback. Notably, this approach not only serves to resolve immediate engineering dilemmas but also cultivates an innovative mindset that enables teams to anticipate future challenges. For instance, a recent application of TRIZ in the field of renewable energy focused on increasing the efficiency of solar panels while simultaneously decreasing production costs, exemplifying how TRIZ can be applied to push the limits of existing technology while paving the way for sustainable advancements. Many organizations have reported that utilizing TRIZ can lead to a significant reduction in time spent on problem-solving, as it provides a clear framework that facilitates creative thought processes, reducing the likelihood of falling into established thinking traps.
该方法的关键步骤
- Formulate the problem by defining technical contradictions.
- Analyze the problem using the 39 engineering parameters to identify areas of conflict.
- Identify the relevant inventive principles related to the contradictions from the 40 principles list.
- Apply the Substance-Field Analysis to model the system and its interactions.
- Utilize ARIZ (Algorithm of Inventive Problem Solving) for systematic problem solving.
- Generate innovative ideas by employing the inventive principles identified.
- Evaluate and refine potential solutions to address the contradictions effectively.
- Implement the selected solution while considering physical and operational feasibility.
专业提示
- Implement the 39 Engineering Parameters in a targeted way to uncover specific contradictions and their solutions, aiding in clearer problem definition.
- Utilize the "Trimming" technique within TRIZ to systematically eliminate unnecessary components without affecting functionality, increasing efficiency.
- Integrate Substance-Field Analysis early in your design process to visualize interactions and identify underlying conflict sources, which can lead to innovative concepts.
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