Stackable Storage Container
Find Innovative SolutionsGenerate Solutions
Solution Overview
Problem
Existing stackable storage containers lack structural stability under vacuum conditions, preventing efficient stacking and fail to monitor internal pressure, temperature, and humidity, which can lead to improper storage conditions for sensitive materials.
Innovation Solution
A stackable storage container design featuring a honeycomb structure for base and vertical ridges on sidewalls for structural support, quick connect fittings for atmosphere flushing, and integrated pressure, temperature, and humidity sensors with Bluetooth monitoring capabilities, ensuring a vacuum seal and transparent construction for content visibility.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Strength
If conventional container designs are used, then manufacturing simplicity is maintained, but structural stability under vacuum is insufficient
Solution Approach 1:
The container structure is divided into multiple reinforcing elements including vertical ribs on sidewalls, horizontal ribs on the base, and a honeycomb pattern on the lid. These segmented structural elements distribute vacuum forces across multiple load-bearing components rather than relying on a single monolithic structure, thereby improving vacuum stability while maintaining manufacturing feasibility through modular reinforcement patterns.
Solution Approach 2:
The container employs composite structural design combining rigid plastic material with integrated reinforcement geometries. The body, lid, and base are formed as composite structures with embedded rib and honeycomb patterns that create a multi-layered load-bearing system, enhancing overall structural strength and vacuum resistance without requiring additional separate components.
2Loss of information
If conventional container designs are used, then device simplicity is maintained, but monitoring capability is absent
Solution Approach 1:
The container integrates multiple monitoring functions into a single unified system. The pressure sensor, temperature sensor, and humidity sensor are combined with an electronic display and control circuitry that provides comprehensive environmental monitoring through one integrated interface. This multi-functional approach prevents information loss about container conditions while avoiding the complexity of separate monitoring devices.
Solution Approach 2:
Traditional mechanical gauges for pressure monitoring are replaced with electronic pressure sensors that provide digital readings. Temperature and humidity are monitored using electronic sensors rather than mechanical or visual indicators. This substitution of mechanical systems with electronic sensing and display technology enables comprehensive monitoring capability while maintaining manageable system complexity through integrated electronics.
3Stability of the object's composition
If simple lid design is used, then ease of manufacture is maintained, but stacking stability is insufficient
Solution Approach 1:
The lid structure incorporates a honeycomb pattern that divides the lid surface into multiple hexagonal cells. This segmented geometry creates a rigid yet lightweight structure that resists deformation under stacking loads. The honeycomb segmentation provides exceptional strength-to-weight ratio, enabling stable stacking without requiring厚重的 solid lid construction.
Solution Approach 2:
The lid employs curved surface geometry with arched contours and rounded edges rather than flat planar surfaces. These curved forms distribute mechanical stresses more evenly across the lid structure, enhancing stacking stability. The curved geometry also provides structural rigidity while maintaining ease of molding during manufacturing.
4Reliability
If vacuum sealing is implemented, then preservation effectiveness is improved, but structural deformation risk increases
Solution Approach 1:
The container walls incorporate vertical ribs and horizontal ribs that segment the wall surfaces into multiple reinforced panels. These segmentation features prevent uniform collapse under vacuum pressure by creating rigid frames that maintain overall container shape while allowing localized flexibility. The segmented structure effectively resists vacuum-induced deformation.
Solution Approach 2:
The container uses composite structural design combining the base material with integrated reinforcement elements. The body, lid, and base form a composite structure where rigid plastic material is enhanced with embedded rib patterns and honeycomb geometries. This composite construction maintains structural integrity and shape under vacuum sealing while enabling effective vacuum preservation.
Applied Scientific Principles
This section explains which scientific principles are used to turn an abstract innovation direction into a practical engineering solution.
Function Achieved in This Case
The container maintains structural integrity under vacuum, allows for efficient stacking, and enables real-time monitoring of internal conditions, ensuring proper preservation of stored materials by maintaining a vacuum seal and optimal environmental parameters.
Implementation Method 1
The lower exterior side of the base includes a honeycomb structure that provides structural support to the container, particularly when a vacuum is applied to the interior volume
Implementation Method 2
The end walls include quick connecting fittings that allow for different types of air hose connections for flushing the interior atmosphere and for achieving a vacuum within the sealed container
Implementation Method 3
One end wall includes a pressure gauge that is configured to monitor and display the current atmospheric pressure within the container
Implementation Method 4
The sensor display may be configured to measure and display the current relative humidity and temperature within the interior volume
Implementation Method 5
The sensor display may be configured to measure and display the current relative humidity and temperature within the interior volume
Data Source
AI summary
A stackable storage container that includes multiple quick connect fittings for flushing the container atmosphere and maintaining a vacuum within the closed stackable storage container, as well as pressure, temperature, and relative humidity sensors and displays for monitoring the interior volume of the container. The base includes a honeycomb structure that includes vertical perimeter edges intersecting at perpendicular angles to form a grid of squares. The base also includes vertically oriented support posts and bracing contact points positioned above each of the support posts.


