输液容器用医用PP:透明度和耐灭菌的平衡

应用领域 发布时间: 2026-09-15 1973 阅读

For infusion containers made of modified PP, the most unavoidable contradiction is: transparency relies on reducing crystallinity, while sterilization resistance relies on high crystallinity, making it impossible to fully achieve both. This article explains in depth the mechanisms of balancing transparency with steam/irradiation/EO sterilization, and presents a verifiable checklist path covering low-temperature drop tests, handle stress, drug solution compatibility, and extractables.

Our infusion bags originally used transparent material, but after steam sterilization, why has the cloudiness increased, and why do they appear a bit white when hung up?

This is the most frequently asked question about infusion containers. Behind it is a judgment that has been repeatedly verified: the most common pitfall in selecting materials for infusion containers is treating 'transparency' and 'sterilization resistance' as two separate criteria that can each be fully satisfied — for PP, they are a pair of opposing indicators, and neither can be maximized simultaneously.

The failure sites are also very typical. One type is 'looks transparent, but not transparent after sterilization': the particles and sample parts passed inspection according to transparent grades, but after steam sterilization or irradiation, the haze returns or they even turn yellow. The other type is 'fits, but can't be dropped': large-capacity thin-walled bags crack when dropped at low temperatures during refrigeration and transportation, or cracks start from stress concentration points at hanging ears. These two types of rework cannot be explained simply by saying 'the material is bad.'

1. The six conditions of infusion containers: Temperature is bidirectional, and transparency and sterilization resistance tug at each other.

Core conclusion: For infusion containers using modified PP, temperature and appearance are the most critical dimensions in six aspects, and these two dimensions are opposite—resistance to sterilization requires high crystallinity, while transparency requires low crystallinity.

First report all six numbers, only then can the material direction be established.

DimensionActual operating conditions of infusion bottles/bagsRequirements for the materials
TemperatureBidirectional: Steam sterilization is often up to 134°C with repeated cycles; refrigeration and transportation down to 2–8°C; EO and irradiation are at room temperatureNeeds to withstand both heat and cold, sterilization at high temperatures is a tough test
LoadSuspended self-weight, internal pressure (pressurized injection), drop impact; lifting ring/lug is a stress concentration areaRing stiffness, lug impact resistance, leak-proof sealing
MediumVarious types of medicinal liquids: containing electrolytes, containing fat-soluble components, containing preservatives; fat-soluble medicinal liquids have the strongest extraction effect on additivesDrug-resistant liquid compatible, low filtrable solids
LifespanFor single use, but the shelf life is measured in years, and it must not deviate during the storage periodPrecipitation and performance do not change with shelf life
AppearanceThe liquid medicine, foreign objects, and bubbles must be clearly visible to the naked eye; the haze of the transparent label should be ≤15%Low turbidity, and it must still meet standards after sterilization
ComplianceMedical devices; heavy metals ≤1.0 μg/mL, titanium ≤0.01%, ultraviolet 220–240 nm absorbance ≤0.08Clean, low deposition, traceable

In six dimensions, appearance and temperature are two dimensions that pull against each other: transparency forces crystallinity to go down, while sterilization stability forces crystallinity to go up. If the priorities of these two dimensions are set incorrectly, all subsequent plans will be in vain.

A professional detail: The haze acceptance of transparent medical PP is often based on haze ≤15% (YY/T 0242-2007), with light transmittance compared to the actual wall thickness and molding conditions — but this number is usually measured before sterilization. Steam sterilization can change the crystallization state, causing the haze of the same bottle to drift. Therefore, the acceptance document should state 'retest after sterilization'.

2. Comparison of Material Routes: Medical random copolymer PP, homopolymer PP versus PVC, PETG, glass, which types of infusion containers for each tube

Core conclusion: The material choice for infusion containers is not a question of 'which is better,' but a matter of 'who can avoid which shortcomings'—PP's strengths are compliance and recyclability, while its weaknesses are inherent semi-permeability, slight yellowing after irradiation, and limited barrier properties.

List the routes that can be taken side by side, only making a division of labor statement, without ranking them.

RouteTransparency and Sterilization FeaturesMain concernTypical uses
Medical Random Copolymer PPSemi-transparent (transparency haze ≤15%); γ / EO / steam all suitable; recyclableTransparent and resistant to sterilization; slightly yellowed by irradiationInfusion bottles, rigid containers, some types of bags
Medical homopolymer PPHigh rigidity and good heat resistance, but more opaquePoor transparency, supplemented by wall thickness and moldingContainers and accessories that do not require high transparency
Medical PVC (traditional infusion bag)Good transparency; γ / EO / vaporContains plasticizers, controversy over DEHP leachingTraditional soft bags and infusion sets
PETGHigh transparency, resistant to radiation without yellowingLimited heat resistance, high-temperature sterilization is restrictedPackaging, diagnostic parts, some infusion parts
COC/COPHigh transparency, low precipitation, radiation resistantBalance between cost and resilienceHigh-end packaging, diagnostics
Glass bottleInert, visible, steam-resistantWeight and Risk of DamageInjection vials, high-end infusion
Multilayer coextruded filmBarrier layer polyolefin layer compositeRecycling and processes are more complexHigh barrier pouch

Text Version Conclusion: PVC still holds the largest share of infusion bags due to cost and transparency; PETG does not yellow under irradiation but has limited heat resistance; PP is compliant and recyclable but naturally not fully transparent, requiring spherulites to be refined below the wavelength of visible light to achieve transparency. According to publicly available information (B-level industry report), polyolefin containers are about 25–35% more expensive than PVC, in exchange for being plasticizer-free and having better resistance to lipophilic drug solutions.

3. ★ Selection Criteria Table: Eight Thresholds for Infusion Containers, Each with a Verification Method

Key conclusion: The criteria for modified PP used in infusion containers are not just one, but eight items, and each must be considered together with 'how to measure, and how much counts as passing'; otherwise, choosing a type is equivalent to not choosing at all.

The table below is the part of the whole text most worth saving; pay attention to the third column 'Verification Method · Standard Number'.

IndicatorThreshold Value (Typical)Verification Method · Standard NumberCommon FailuresCommon solution
Transparency / HazeHaze of transparent grade ≤15%YY/T 0242-2007; Retest after sterilizationAfter sterilization, the turbidity increases again, and the medicine solution becomes unclearNucleation system refines spherulites Stabilizes crystallization
Tensile Yield / Bending ModulusTensile yield ≥21 MPa; bending modulus ≥750 MPaT/CSG 002-2020Thin-walled deformation, insufficient supportModerate filling ensures rigidity
Gap Shock≥4 kJ/m²T/CSG 002-2020 (Impact according to GB/T 1843)low-temperature impact fractureToughening Control low-temperature toughness
Filterable residue (most stringent for fat-soluble)Non-volatile substances in n-hexane ≤100 mgT/CSG 002-2020Fat-soluble drug liquid extraction additiveLow-extraction, low-ash medical grade
Pressure Resistance and SealingPressurized infusion does not leak, lifting ears do not crackProduct Standard Internal Pressure/Sealing TestLifting lug stress cracking and leakageStructural reinforcement Reduce stress concentration
Low-temperature drop resistantDrop-resistant at refrigerated and transport temperaturesLow temperature drop test (according to product standards)Low temperature Large volume Thin wall crackingToughening Wall Thickness / Ribs
Resistant to chemical disinfectantsNo cracking or whitening after wiping/soakingDisinfectant Contact TestSurface whitening, stress crackingMedia-resistant system
Cleanliness and traceabilityLow ash content, low catalyst residueT/CSG 002-2020; YY/T 0242Precipitated contaminated medicine solutionMedical-grade clean packaging

Text version conclusion: Among the eight items, transparency and filterable substances should be determined first—the former follows the sterilization method, the latter follows the type of solution. Both must be locked during the selection stage, rather than discovering them during trial production. Treat this table as a health check form; missing any item should be considered a fail. This is much more cost-effective than figuring out the cause after testing sample parts.

4. The trade-off between transparency and sterilization resistance: the more transparent, the less resistant to sterilization, the mechanism is here

Core conclusion: PP needs to be transparent, and the mechanism is to make the crystal size smaller than the wavelength of visible light; whereas heat resistance and sterilization stability precisely depend on high crystallinity — 'the more transparent → the lower the crystallinity → the worse the steam sterilization resistance and dimensional stability,' this is the essence of that pair of opposing indicators.

This section is the core of the whole article, and the mechanism must be clearly explained. PP is naturally semi-transparent, due to the scattering of light by spherulites. To achieve transparency, there are two methods: random copolymerization of PP (introducing comonomers to disrupt the regularity of crystallization) and nucleating agents (refining spherulites to smaller than the wavelength of visible light). The cost of these two methods is the same—both reduce the degree of crystallinity and the perfection of crystallization. However, resistance to steam sterilization, repeated thermal cycling, and dimensional stability depend precisely on the heat resistance and creep resistance brought by high crystallinity. Therefore, exchanging low crystallinity for transparency simultaneously weakens the heat and sterilization stability that are most needed.

The three sterilization methods have completely different effects on transparency, listed in a table for reference:

Sterilization methodTemperature and PrincipleConsequences of transparency/sizeRequirements for the formulaWhen not suitable
Ethylene Oxide (EO)Room temperature gas phase, gentle on materialsLow temperature is most friendly to transparency; but the residual resolution cycle is long.Almost not picky about PP substrates, but the breathable packaging and analysis need to be stableUrgent delivery, limited site for analysis
Irradiation (γ / electron beam)Room temperature, high efficiency, no residueChain scission Oxidation generates conjugated double bonds → Yellowing, directly damages visual inspectionMust use radiation-resistant stable systemRequires high transparency and high-dose irradiation
Steam at high temperature (high-pressure steam)Frequently reaches 134°C, multiple cyclesHigh temperatures change the crystalline state, haze may increase again, and size changesFormulated for high heat resistance, low precipitation, and stable crystallizationRepeated steam above 120°C for a long time

Mechanism of radiation-induced yellowing (this article uses the core topics from the material library, without creating any new values): High-energy rays preferentially break the C–C bonds in the PP main chain → molecular weight decreases → elongation at break and impact strength decrease; oxidation generates conjugated double-bond chromophores → yellowing. The chain scission rate of general PP is much higher than crosslinking, so the result is both yellow and brittle. There are four strategies: primary antioxidants (hindered phenols), secondary antioxidants (phosphite esters), HALS, ⚠️ but using phenolic antioxidants together with HALS produces deep yellow, which is counterintuitive; introducing 2–3% ethylene in random copolymers lowers crystallinity and promotes free radical recombination, and selecting resins with a narrow molecular weight distribution; in processing, use electron beam instead of γ-ray, nitrogen atmosphere, and reduce the dose from 25 kGy to 15 kGy; in terms of tolerance, unstabilized PP is around 20 kGy, while radiation-stabilized PP can reach 20–50 kGy.

★ A common practice that must be denied: Many people think that 'if you want transparency, just use random copolymer PP,' and that's it. Wrong. Random copolymer maintains transparency, but the dimensional and transparency stability after sterilization relies on the nucleation system and grade selection. Random copolymer lowers crystallinity, and once it is heated by steam, the crystalline state readjusts, and haze may return. Choosing grades without re-testing transparency after sterilization is invalid. Transparent grades are not just 'pick a random copolymer,' but 'random copolymer + nucleation + re-test after sterilization'—these three steps must be carried out together.

5. Common Failures and Root Causes: Haze recovery, low-temperature drop cracks, ear lug cracking, three root causes

Key Conclusion: The three major failures——haze recovery after sterilization, cracking from low-temperature drop, and stress cracking at the ear——are almost never due to 'material defects,' but rather because transparency and sterilization resistance were not aligned, low-temperature toughness was insufficient, and stress concentration was not controlled.

Failure 1: Haze increases and yellowing occurs after sterilization. The root cause is that the formulation was not matched according to the 'stable crystallization, steam/irradiation resistant' system, or phenolic antioxidants were used together with HALS causing deep yellowing; the high temperature of steam sterilization allows the crystalline state to readjust, also increasing the haze. First, check the sterilization method and the stabilizing system, then check the crystallization orientation of the material.

Failure mode 2: Low temperature, large volume, thin walls, rupture upon dropping. The root cause is insufficient toughness and poorly designed wall thickness and reinforcement ribs. Low temperature during refrigeration and transportation, impact loads from large-volume liquids, and thin walls—each factor alone is controllable, but when combined, they exceed the toughness margin of many transparent polypropylene products.

Failure Three: Stress cracking in lifting rings/lugs. The root cause is that the hanging stress points themselves are areas of stress concentration. The lug corners, sudden changes in wall thickness, and residual stresses from the gate all amplify here. This is a typical starting point for cracking, not simply that the material became brittle; it is that the structure and the material were not aligned together.

A judgment that peers can't copy: on an infusion container, 'transparent' and 'sterilization-resistant' are not two separate indicators, but the two ends of the same crystallinity knob. If you treat them as two separate checklists for inspection, you will inevitably get stuck at the stage of re-testing after sterilization—so this checkpoint must be positioned beforehand.

6. Verification sequence: First determine the sterilization method and type of solution. After sterilization, retesting can result in outright rejection.

Core Conclusion: The validation sequence should first determine the 'sterilization method and type of solution,' while the re-measurement of transparency and size after sterilization is a veto step that cannot be skipped — measuring only before sterilization is equivalent to not measuring at all.

Almost no peers write this section, but it is key to whether changing materials can save money and pass registration. If the order is wrong, problems will all come up at the final step.

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① Determine sterilization method and type of solution Steam / EO / irradiation? Does the solution contain fat-soluble substances / electrolytes / preservatives?

↓ These two steps are uncertain, everything that follows is just a guess

② Re-measure transparency and size after sterilization: haze, light transmittance, size — re-measure after sterilization (one-vote veto)

↓ If this step fails, everything before it was done for nothing.

③ Low-temperature drop and lug impact Drop at refrigerated and transport temperatures Lug suspension impact

↓ This step is not passed, go back to increase toughness and adjust the structure

④ Pressure Resistance and Sealing Pressurized infusion, lug stress, no leakage in sealing

⑤ Drug solution compatibility and filterable substances Fat-soluble drug solutions go through the first stage, then check the specific drug solution

⑥ Assembly and Suspension Complete Machine Verification: Hanging, labels and print adhesion, no flaking, complete machine

⑦ Preclinical validation

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Every step has the criterion of 'just return to the previous level.' The most common mistake is skipping step ②—only testing the typical particle values before sterilization and accepting the sample visually, then moving on to mass production; only after sterilization does the whole batch's haze increase or dimensions drift, exposing the problem. Re-testing after sterilization is one of the most fundamental differences between infusion containers and industrial parts.

Text version conclusion: Verification sequence: sterilization method, type of medicinal solution → retesting after sterilization → drop test of ear loops → internal pressure sealing → medicinal solution compatibility → whole device → preclinical. Retesting after sterilization must be placed first and is a single-vote veto, because it is the most likely to directly deem the product defective.

7. Reverse honesty: Extremely high transparency combined with high-dose irradiation, long-term steam above 120°C, or extremely high barrier properties; such items should not use modified PP

Core conclusion: When encountering any one of 'extremely high transparency and high-dose irradiation,' 'repeated steam at over 120°C for a long time,' or 'extremely high barrier,' this part should not be forced to modify PP; a different approach should be chosen.

After talking about what can be done, it is necessary to talk about what cannot be done.

The situation that occurredWhy is modified PP not suitable?Which way should I go?
Requires extremely high transparency and must withstand high-dose irradiationIrradiation yellowing and transparency are in opposite directions; radiation-resistant systems also have to sacrifice some transparency.Pursue radiation-resistant, non-yellowing paths such as PETG and COC/COP
Requires repeated steam sterilization at above 120℃ for a long periodThe heat resistance limit of PP is around that line, and the repeated cyclical dimensional changes and atomization are hard to suppress.Switch to higher heat-resistant engineering plastics or glass containers
Requires high barrier (for drugs sensitive to oxygen/moisture)PP's intrinsic barrier is limited, and the improvement achieved through modification is also limited.Multilayer co-extrusion, aluminum foil/PA composite, or glass
Lipid-soluble drug solution long-term contact with a requirement for extremely low precipitationAdditives in PP are more easily extracted in lipophilic mediaLow-precipitation-specific grade, or evaluate using more inert materials

The pattern is consistent: whenever there are 'two opposing requirements being demanded at the same time,' it indicates that this part should not be forced to use PP. In such cases, our approach is to first clarify this point before discussing whether there is room for compromise.

VIII. Material Change Risk List: From mold shrinkage rate to post-sterilization retesting, review all seven items before taking action

Core conclusion: Before deciding to experiment with medical-grade modified PP for infusion containers, what needs to be addressed first is not performance, but the three areas of mold, process, and validation sequence, among which the one that should be discussed first is the re-measurement of transparency after sterilization.

Items to moveWhat needs to be confirmed?What will happen if I don't do it?
Mold shrinkage rateThe difference in shrinkage rate of the new material compared to the original plan, thin-walled parts are especially sensitiveThe dimensions are out of tolerance, and the assembly does not fit.
Gate and VentingTransparent materials are more sensitive to gates and ventingWeld lines, air marks, fogging of transparent parts
Material Temperature and Mold TemperatureThe process windows of transparent/nucleating systems are differentUneven crystallization, excessive haze
DryDecided according to the specific systemSilver threads, bubbles
Pressure Holding and DemoldingThin-walled parts are easily scratched during ejectionDistortion, highlight
Color differenceMedical part color chart to be confirmed firstBatch color difference dispute
Verification orderFirst sample → Retest after sterilization → Short run → Mass productionAll the risks are concentrated to explode at the final step

Text version conclusion: Changing materials involves three aspects: molds, processes, and color difference, among which the first thing to discuss is the 'post-sterilization transparency re-test' in the verification sequence. Skipping small samples and going straight to mold trials is equivalent to spending the cost upfront; skipping the post-sterilization re-test and going straight to mass production means that a single failure will result in the entire batch being scrapped—this is much more costly for infusion containers than for industrial parts.

9. One-page report form: Infusion containers, directly included in the technical review

Core conclusion: This table allows technicians to report conclusions directly without having to reorganize their wording—the only criterion is whether the client can use it to finalize the material direction in a single meeting.

SceneRecommended RouteKey indicatorsVerification StandardConditions that need to be confirmed first
Infusion bottle (steam sterilization)Medical Transparent Random Copolymer PP Nucleating Steam Sterilization Resistant SystemHaze ≤15% (retested after sterilization); tensile yield ≥21 MPaYY/T 0242; T/CSG 002-2020Whether to repeat the steam cycle
Infusion bag (EO sterilized)Medical-grade transparent PP, hardly selective of substratesFog density ≤15%; EO residue limitYY/T 0242; ISO 10993-7Analysis Period and Site
Infusion container (radiation sterilized)Medical random copolymer PP, radiation-resistant stable system, nucleated transparentHaze ≤15%; yellowness index after radiation ≤20 (25 kGy)YY/T 0242; ISO 10993 seriesSterilization dose, whether high transparency is required
Lipophilic drug solution containerLow-extractable medical PP, lipophilic media controlled according to the strictest standardNon-volatile substances in n-hexane ≤100 mgT/CSG 002-2020Liquid medicine ingredients, contact duration
High-barrier liquid medicine containerMulti-layer Co-extrusion / PP Composite Barrier LayerMeets standards for oxygen and moisture permeabilityProduct Standard Barrier TestBarrier level requirements

Text version conclusion: This table allows technicians to report both 'sterilization method and type of solution' at once, and then determine the material direction. Deciding on the material without reporting all the prerequisites is the action with the highest rework rate in the selection of infusion containers.

10. The part of this item that is most prone to problems is often not the material.

The most common early failures in the infusion container industry are the recurrence of cloudiness after sterilization and stress cracking at the hanging ears, and among these two issues, the proportion caused by the material itself is not high. The criterion for the former is clearly written: the cloudiness of the transparent grade must fall within the threshold specified in YY/T 0242-2007 (retested after sterilization). The mechanism is that high-temperature steam changes the crystalline state or irradiation-induced chain scission and oxidation generate chromophores. The common solution is random copolymerization, nucleation to refine spherulites, and stabilizing the system. Cracking at the hanging ears mostly needs to be addressed from the structure and stress concentration.

The common industry practice is to first determine the 'sterilization method' and 'type of drug solution' as prerequisites, then decide on the substrate grade, transparent nucleation system, and stabilizer direction—if the order is reversed, problems will persist. Here, one responsibility boundary needs to be clarified: what material suppliers can do is ensure low precipitation and batch consistency at the formulation level, while the main responsibility for drug solution compatibility and biological evaluation lies with the device company.

Ningbo Cologne New Materials Co., Ltd. regularly supplies PP substrates and modified particles for medical applications in this area, covering directions such as transparency, radiation stability, and low extractables. They provide recommendations on substrate grades and additives according to the customer's product standards and sterilization methods, mainly addressing issues like 'transparency and sterilization resistance not being aligned.' Formulations can be adjusted according to specific operating conditions, and small-scale samples and mold trials can be conducted for comparison.

Frequently Asked Questions

Question: After sterilizing the infusion bag with steam, the mist density rises again. Does this mean the material is no good?

Answer: Most likely, the formulation was not prepared according to the 'stable crystallization, steam-resistant' system, or the random copolymerization reduced the crystallinity too much, so when steam is applied, the crystallization state readjusts. First, check the sterilization temperature and number of cycles, as well as the nucleation system, then look at the crystallization orientation of the material — this is an issue of formulation and molding.

Question: Will lipid-soluble drug solutions extract the additives?

Answer: Yes, and fat-soluble media are easier to extract than aqueous media. The common practice is to first test according to the strictest standard (for example, n-hexane non-volatile ≤100 mg, T/CSG 002-2020), and then conduct compatibility assessment for the specific drug solution. This is the same mechanism as the 'strictest oil simulant' on the food side, except that this article discusses the drug solution side.

Question: Which is more convenient to choose, EO sterilization or irradiation?

Answer: EO is gentle on materials and almost non-discriminatory to the PP matrix, but it has a long residual decomposition period and requires controlling the limit; irradiation is efficient with no residue, but a radiation-resistant formulation must be used, otherwise transparent parts will turn yellow and cloudy. Which one to choose depends on the delivery schedule and the parts' tolerance for transparency.

Operating conditionKey criterionCologne regular supply
Infusion bottle (steam sterilization)Haze ≤15% (retested after sterilization); tensile yield ≥21 MPaMedical transparent random copolymer PP Nucleation Steam sterilization resistance orientation
Infusion container (EO/irradiation)EO Residual Limit / Post-irradiation Yellowing Index ≤20 (25 kGy)Medical transparent PP, system adjusted according to sterilization method
Lipophilic drug solution containerNon-volatile substances in n-hexane ≤100 mgLow-extractable medical PP orientation

A reminder: when there’s a problem with a part, the most common mistake is to change the material first. Increased haze, drop cracks, ear cracks—each of these issues has more than one cause. First identify the cause, then change the material; if the order is reversed, you often end up changing materials several times and still be in the same place.

Finally, say three sentences

First, transparency and sterilization resistance are a pair of opposing indicators for PP, not two separate checklists. They share the same crystallinity knob, and neither can be maximized at both ends—decide which end is more critical not to compromise first.

Secondly, different sterilization methods have different consequences for transparency. EO is the most friendly to transparency, irradiation causes yellowing, and steam can increase cloudiness; the formulation needs to follow the sterilization method.

Third, after sterilization, the transparency and size must be re-measured. Measuring only before sterilization is equivalent to not measuring at all. This step must be conducted before drop, internal pressure, and compatibility verification.

The next article discusses the inner liner of refrigerators and the inner drum of washing machines — what these parts fear most is not transparency, but resistance to detergents (ESC) and low-temperature shocks.

About Us

The selection process gets stuck, usually at a very specific step.

Whether an infusion container should be transparent or resistant to steam sterilization, whether a nucleation system was added but worries about the haze returning after steam, whether an ear hanger stress-cracking issue was checked for material and mold temperature — explaining clearly at which step it's stuck is much more useful than saying 'we need a good material'.

Ningbo Kolon New Materials Co., Ltd. produces modified polypropylene (PP) granules, covering three types of base materials: homopolymer, random copolymer, and impact copolymer, as well as modifications in directions such as transparency, radiation resistance, low exudation, filling, glass fiber reinforcement, toughening, and flame retardancy; it also trades in major petrochemical plant PP resins, by-product materials, and bulk materials.

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