2026-09-04
The manufacturing landscape for laboratory glassware is undergoing a transformative shift with the introduction of fully automated production systems capable of unprecedented output and precision. Modern facilities now have access to equipment that combines remarkable speed with exceptional stability, addressing long-standing challenges in glass test tube manufacturing.
Traditional glass test tube manufacturing methods often struggle with labor-intensive processes, inconsistent quality, and unpredictable output. The new generation of automated production lines eliminates these limitations through intelligent, integrated systems that handle every stage - from raw material feeding and forming to cutting, annealing, and final inspection - with precision control.
With a staggering production capacity of 5,500 units per hour, these systems enable manufacturers to fulfill larger orders in shorter timeframes while maintaining consistent quality. The technology accommodates a versatile range of specifications, handling diameters from 10mm to 40mm and lengths between 75mm and 200mm with equal precision.
Quality parameters such as dimensional accuracy, wall thickness uniformity, surface smoothness, and chemical resistance receive particular attention in these automated systems. Advanced mold designs and precise process controls ensure each test tube meets rigorous quality standards, with wall thickness accuracy maintained within ±1.1mm for reference specifications of φ14, L100, T1.1.
The equipment's reliability has been rigorously tested and optimized to prevent production interruptions and minimize product loss, providing manufacturers with dependable operational continuity.
The production line's technical advantages stem from meticulous engineering and thoughtful design. With a total power consumption of just 1.5KW using standard 220V 50Hz power supply, the system offers economical operation. Its compact footprint (4800mm × 1150mm × 1250mm) and manageable weight (1050kg) allow for seamless integration into existing facilities without extensive modifications.
Gas supply requirements have been carefully considered, with detailed reference data provided for liquefied gas, propane, and air pressure and consumption rates. For instance, the system requires only 0.2 MPa liquefied gas pressure with an hourly consumption of 5.5Kg, demonstrating its energy-efficient operation.
| Parameter | Unit | Value |
|---|---|---|
| Production Capacity | Units/hour | 5,500 (for φ14, L100, T1.1 specification) |
| Tube Dimensions | Diameter Range | Φ10-40 mm |
| Length Range | 75-200 mm | |
| Power Consumption | KWH | 1.5 KWH (220V 50Hz) |
| Dimensions | L×W×H (mm) | 4800×1150×1250 |
| Weight | Kg | 1050 |
| Gas Pressure (Reference) | Liquefied Gas (MPa) | 0.2 |
| Propane (MPa) | 0.2 | |
| Air (MPa) | 0.2 | |
| Gas Consumption (Reference) | Liquefied Gas (Kg/h) | 5.5 |
| Propane (M³/h) | 48 | |
| Air (M³/h) | 10 |
This advanced production technology represents a significant leap forward for laboratory glassware manufacturing, offering manufacturers the tools to enhance productivity while maintaining the highest quality standards. The combination of precision engineering, energy efficiency, and operational reliability positions this automated system as a transformative solution for modern production facilities.
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