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Mixers & Grinders

Mixer Grinder Jar Design

Complete Jar Development
AMD Techlab engineered the complete mixer grinder jar assembly, including the stainless-steel jar, ergonomic handle, lid system, manufacturing-ready CAD, and production engineering for commercial manufacturing.
Premium Industrial Design
The jar was designed with refined proportions, smooth surface transitions, and pattern design for enhanced visual appeal, creating a premium consumer product with excellent shelf presence and higher perceived value.
Structural Handle Engineering
The ergonomic handle was reinforced with optimized internal rib structures, secure mounting features, and balanced load distribution to improve strength, durability, user comfort, and long-term reliability.
Injection Mould Optimized
Designed using Design for Manufacturing (DFM) principles with optimized wall thickness, draft angles, structural ribs, snap-fit features, and tooling strategies for efficient plastic injection mould production.
Production-Ready Engineering
Delivered complete manufacturing-ready CAD models, injection mould engineering, STEP files, engineering documentation, and production data for efficient tooling development and large-scale manufacturing.
Mixer Grinder JarStainless Steel Jar DesignIndustrial DesignProduct DevelopmentConsumer Appliance DesignHandle DesignInjection Mould DesignManufacturing Ready CADDesign for ManufacturingDFMPlastic Product DesignMechanical EngineeringStructural DesignSTEP Files
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The engineering behind it.

This mixer grinder jar was developed as a complete consumer appliance engineering project focused on combining premium aesthetics, ergonomic handling, structural durability, and manufacturing efficiency. The objective was to create a high-quality stainless-steel jar with a modern appearance, refined surface detailing, and pattern design that enhances visual appeal while increasing perceived product value in the consumer appliance market.

Particular attention was given to the engineering of the handle assembly. Internal reinforcement ribs, mounting interfaces, fastening geometry, and load paths were carefully optimized to withstand repeated daily use while maintaining excellent user comfort and long-term durability. Every component was digitally packaged and validated to ensure precise fitment, simplified assembly, and reliable production performance. The lid geometry, pouring profile, and ergonomic grip were refined to improve safety, ease of handling, and everyday usability.

The complete assembly was engineered using Design for Manufacturing (DFM) principles for high-volume production. Wall thickness, draft angles, rib placement, structural reinforcement, snap-fit features, and parting-line strategy were optimized to reduce manufacturing complexity while maintaining dimensional accuracy and product strength. Lightweight construction, efficient material utilization, and production-ready engineering contribute to lower manufacturing costs without compromising quality or appearance. The final deliverables included manufacturing-ready CAD models, injection mould engineering, STEP files, renderings, and complete engineering documentation, enabling a seamless transition from concept development to commercial mass production.

01
Draft Angle Analysis
Every face verified for clean ejection.
02
Parting Line Optimisation
Positioned to minimise slider actions and tooling cost.
03
Wall Thickness Mapping
Uniform walls for consistent fill and no sink marks.
04
Ejection & Cooling Layout
Ejector and cooling-channel strategy defined for the toolroom.

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