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- Compression (1)
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- Internal pressure test (1)
- Jerrycan (1)
- Molecular degradation (1)
- Notched impact strength (1)
Beim Transport von aggressiven und gefährlichen Gütern in Kunststoffverpackungen kann es zu unerwünschten Materialveränderungen kommen. Daher erfordert der Einsatz entsprechender Verpackungen eine genaue Kenntnis der verwendeten Werkstoffe.
Zum Transport gefährliche Flüssigkeiten sind u.a. Verpackungen aus Kunststoff (z. B. Kanister) erlaubt, wenn diese geprüft und als Gefahrgutverpackungen zugelassen sind. Eine Zulassung gilt nur für die spezifische Verpackungsbauart, welche die notwendigen Bauartprüfungen bestanden hat.
Für die Zulassung als Gefahrgutverpackung sind verschiedene experimentelle Prüfungen erforderlich. Dazu zählt die hydraulische Innendruckprüfung, Im Folgenden werden Untersuchungen an extrusionsblasgeformten Kanistern aus Polyethylen hoher Dichte (HDPE) verschiedener Typen vorgestellt. Ziel der Arbeiten war es, einen Eignungsnachweis bezüglich Behälterkonstruktion, Werkstoffeigenschaften und Einsatzbedingungen im Sinne einer sicherheitstechnischen Bauartzulassung zu führen. Außerdem wurden die Einflüsse unterschiedlich schädigender Flüssigkeiten auf die mechanischen Eigenschaften des HDPE-Werkstoffes untersucht.
Für die Bauartprüfung zum Nachweis der chemischen Verträglichkeit ist eine sechsmonatige Vorlagerung der Verpackungen mit Originalfüllgut vorgeschrieben. Diese Vorlagerung kann durch den Einsatz spezieller Standardflüssigkeiten auf 21 Tage bei 40° C. verkürzt werden. Die eingesetzten Chemikalien sind die sogenannten Standardflüssigkeiten, die exemplarisch für zahlreiche Stoffe bestimmte Schädigungen auslösen:
• Netzmittellösung - spannungsrissauslösend
• Essigsäure - spannungsrissauslösend
• n-Butylacetat - quellend
• Kohlenwasserstoffgemisch (White Spirit) - quellend
• Salpetersäure - oxidierend
A guided drop test was performed to achieve a defined and reproducible impact orientation of jerrycans. The drop heights where 50% of the jerrycans experienced a failure from a crack where fluid can escape (50% failure drop height) were compared among jerrycans made of four different materials, in their original state and preconditioned with standard liquids. To analyse the impact of only elevated temperatures, the packages were preconditioned for 21?days at 40°C without the use of chemicals.
The 50% failure drop height was compared by using Young's modulus; the notched impact strength (NIS) of specimen cut from plates which were manufactured by compression moulding and the notched tensile impact strength of specimen cut-outs of the jerrycans' side walls. The NIS depends highly on the thermal preconditioning of the plates being manufactured by compression moulding. A trend can be seen that a higher Young's modulus, a higher NIS and a higher notched tensile impact strength result in a higher 50% failure drop height, but the values are spread. The influence of the wall thickness cannot be neglected.
The change of the 50% failure drop height in regard to the preconditioning at 40°C with and without nitric acid was compared in terms of their resistance to molecular degradation, density and degree of crystallinity. The conditioning at elevated temperature causes post-crystallization. It was shown that the resistance to molecular degradation determined on pressed plates correlates with the change of the 50% failure drop height after pre-storage with nitric acid.
The purpose of this article is to demonstrate how the position of a package affects the results in guided and unguided compression tests. Digital image correlation (DIC) shows how localized stresses occur. The positions of the jerricans were moved 1 cm in every direction from the center. The different positions showed how guided and unguided compression applied different loads to thejerrican.
Furthermore, the guided and unguided compressions were compared directly using DIC to show how areas of stress concentrations formed and the localized stress changed. In general, when testing the jerricans with unguided compression, the swivel platen tilted backwards because the rear side of the jerrican was not as stiff as the front side with the lid. Guided and unguided compression tests will give different results because the stress concentrations are different. The position of the jerrican in the stacking test has drastic affects on the outcome of the fest. The stresses between the jerrican bottom and stacking plate were analyzed with a sensor mat and compared the guided and unguided loads.
Guided and unguided compression tests were performed on jerricans and small and large corrugated fiberboard boxes. The different methods produced different results affecting whether the test was passed
or failed.
The effect of the wall thickness variation of blow-moulded bodies made of high-density polyethylene on an internal pressure test after prestoring the packaging with standard liquids was evaluated in experiments and simulations. The objects of the investigation were jerrycans used for the transportation and storage of dangerous goods.
The wall thickness was determined using two alternative methods to the magnetostatic measurement. These alternative methods are used for research purpose to get a volumetric model of the jerrycan wall as a geometric model for the simulation. The comparison of the experiments and the simulations of the internal pressure test were performed using the digital image correlation method. The integral strain and deformation of the whole jerrycan was detected by measuring the total mass of the jerrycan being filled with water during the internal pressure test. This is a suitable alternative to the optical measurements of local deformation by the digital image correlation method. Prestorage at 40°C without the influence of chemicals strengthens the jerrycan, whereas the swelling effect of butyl acetate and hydrocarbon mixture softens the jerrycan. The comparison with the experiment is necessary to verify the accuracy of the simulation. It shows that the deformation can be simulated more precisely by using the actual measured geometry. The weakening of the high-density polyethylene caused by a hydrocarbon mixture can be simulated using the Arrhenius equation. The aim of the simulation was to discover whether it is possible to use specimens to predict the behaviour of a packaging both after the influence of standard liquids.