GLASS FOR PHARMACEUTICAL CONTAINERS
Patent Information
- Application Number
- DE602014092606
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2014-06-04
- Publication Date
- 2025-12-03
- Estimated Expiration
- 2034-06-04
AI Technical Summary
Existing glass containers for pharmaceuticals face issues with delamination and processing difficulties due to boron evaporation and phase separation, which can affect the properties of the medicines stored in them.
A glass composition with controlled components, including SiO2, Al2O3, B2O3, Li2O, Na2O, K2O, and MgO, with specific ranges to enhance delamination resistance, hydrolytic resistance, and processibility, ensuring a working point of 1260°C or less.
The glass exhibits resistance to delamination, maintains excellent hydrolytic resistance, and can be easily processed into complex shapes, making it suitable for pharmaceutical containers like ampoules, vials, and prefilled syringes.
Description
Technical Field
[0001] The present invention relates to a glass for pharmaceutical containers, which has excellent chemical durability and also has excellent processibility.Background Art
[0002] As containers for packing and storing pharmaceuticals, glasses made of various materials have been used. Pharmaceuticals are roughly divided into oral agents and parenteral agents. Among them, in the case of parenteral agents, a liquid medicine packed / stored in a glass container is directly administered into the patient's blood. Therefore, there are extremely rigorous quality requirements for such glass containers. In particular, extractables from the glass into the liquid medicine may change the properties of the liquid medicine, seriously affecting the life and health of the patient. Therefore, the pharmacopoeia of each country prescribes the amount of extractables from the glass. In addition, for processing into various forms such as ampoules, vials, prefilled syringes, and cartridges, excellent viscosity characteristics are necessary.
[0003] As a glass material that meets these requirements, borosilicate glass has generally been used. Borosilicate glass for pharmaceutical containers normally contains, as constituents, SiO 2 , Al 2 O 3 , B 2 O 3 , Na 2 O, K 2 O, CaO, and BaO together with a small amount of fining agent.
[0004] PTL 2 discloses an alkaline earth alumino-silicate glass compositions with improved chemical and mechanical durability and pharmaceutical packages comprising the same. A glass composition may include from about 65 mol.% to about 75 mol. % SiO2; from about 6 mol. % to about 12.5mol. % Al2O3; and from about 5 mol. % to about 12 mol. % alkali oxide. The alkali oxide may include Na 2 O and K 2 O. The K 2 O may be present in an amount less than or equal to 0.5 mol. %. The glass composition may also include from about 8.0 mol. % to about 15 mol. % of at least one alkaline earth oxide. The glass composition is susceptible to strengthening by ion-exchange thereby facilitating chemically strengthening the glass to improve the mechanical durability.
[0005] PTL 3 discloses a glass substrate for information recording media wherein air bubbles can be sufficiently removed, and an information recording medium using the glass substrate. The glass substrate contains 65 to 90 mass % 0f SiO 2 +Al 2 O 3 +B 2 O 3 (where SiO 2 is 45 to 75 mass %; A1 2 O 3 is 1 to 20 mass %; and B 2 O 3 is 0 t0 8 mass %); 7 to 20 mass % of R2O (where R represents Li; Na; or K); 0.1 to 12 mass % of R'O (where R' represents Mg; Ca; Sr; Ba; 0r Zn); and 0.5 to 10 mass % of TiO 2 +ZrO 2 . Moreover; the glass substrate contains at least one multivalent element selected from among a group consisting of V; Mn; Ni; M0; Sn; Ce; and Bi; the molar ratio of the total amount of the oxide of the multivalent element to the total amount of TiO 2 +ZrO 2 is within the range of 0.05 to 0.50.
[0006] PTL 4 discloses a lead-free glaze for ceramic articles, which is firable at a peak firing temperature of less than 1150°C. The glaze comprises a borosilicate with greater than 3% Li 2 O 3 and a total Na 2 O and K 2 O content of between 0.3 and 8%.Citation ListPatent Literature
[0007] [PTL 1] WO 2013 / 063275 [PTL 2] US 2013 / 101853 A1 [PTL 3] US 2012 / 183812 A1 [PTL 4] WO 99 / 05070 A1 Non-Patent Literature
[0008] [NPTL 1] PDA J Pharm Sci and Tech 2012, 66 116Summary of InventionTechnical Problem
[0009] In recent years, with the rapid advance of pharmaceutical sciences, a wide variety of medicines have been produced, and medicines to be packed in pharmaceutical containers have been changing, which is accompanied by an increase in the number of powerful medicines that corrode glass containers. When such a medicine is packed / stored in a glass container, the inner surface of the container peels off and floats as flakes in the liquid medicine. This phenomenon, called delamination, has been a serious problem.
[0010] Various studies have been conducted to find out the causes of delamination. As in NPTL 1, the boron component contained in borosilicate glass used as a glass for pharmaceutical containers evaporates during thermal processing, resulting in the formation of a silica rich layer, or the evaporated component recondenses on the container inner surface, which occasionally causes phase separation on the inner surface of the glass container; this is believed to be one of the causes of delamination.
[0011] Accordingly, as glasses for pharmaceutical containers for suppressing delamination, boron free and low boron glasses have been proposed as in PTL 1, and some delamination suppressing effects can be seen. However, there is a problem in that the working points of these glasses are so high that processing into various forms is difficult.
[0012] An object of the present invention is to provide a glass for pharmaceutical containers, which is resistant to delamination and has excellent processibility.Solution to Problem
[0013] The above object is achieved by a glass for pharmaceutical containers according to claim 1 and the use of such a glass according to claim 14. The dependent claims are directed to different advantageous aspects of the invention.
[0014] In the present invention, it is preferable that the glass has a hydrolytic resistance of Class 1 in a test in accordance with the European pharmacopoeia (i.e., a hydrolytic resistance of Class 1 in a test in accordance with ISO 720). The "hydrolytic resistance in a test in accordance with the European pharmacopoeia" refers to the degree of alkali extraction determined by the follow method. (1) A glass sample is ground in an alumina mortar and classified into 300 to 425 µm through a sieve. (2) The obtained powder sample is washed with distilled water and ethanol and dried in an oven at 140°C. (3) 10 g of the dried powder sample is placed in a quartz flask, further 50 mL of distilled water is added, and the flask is capped and treated in an autoclave. The treatment is performed under the following conditions: the temperature is raised from 100°C to 121°C at 1°C / min, then maintained at 121°C for 30 minutes, and lowered to 100°C at 0.5°C / min. (4) After autoclaving, the solution in the quartz flask is transferred to another beaker. Further, the inside of the quartz flask is washed three times with 15 mL of distilled water, and the washing water is also added to the beaker. (5) A methyl red indicator is added to the beaker, followed by titration with a 0.02 mol / L hydrochloric acid solution. (6) With 1 mL of the 0.02 mol / L hydrochloric acid solution equivalent to 620 µg of Na 2 O, the amount of alkali extracted per g of glass is calculated.
[0015] In addition, the "hydrolytic resistance of Class 1 in a test in accordance with the European pharmacopoeia" means that the amount of alkali extracted as Na 2 O determined as above is 62 µg / g or less.
[0016] In the present invention, it is preferable that the alkali resistance in a test in accordance with ISO 695 is at least Class 2. The "test in accordance with ISO 695" herein refers to the follow test. (1) A 15 cm 2< glass sample piece with an entirely mirror finished surface is prepared. First, as a pretreatment, the sample is immersed in a solution containing fluoric acid (40 wt%) and hydrochloric acid (2 mol / L) mixed in a volume ratio of 1:9, followed by stirring for 10 minutes with a magnetic stirrer, and then taken out. Next, the sample is ultrasonically cleaned for 2 minutes with ultrapure water three times, and then ultrasonically cleaned for 1 minute with ethanol twice. (2) Subsequently, the sample is dried in an oven at 110°C for 1 hour and allowed to cool for 30 minutes in a desiccator. (3) The mass of sample m1 is measured to an accuracy of ±0.1 mg and recorded. (4) A 800 mL solution containing an aqueous sodium hydroxide solution (1 mol / L) and an aqueous sodium carbonate solution (0.5 mol / L) mixed in a volume ratio of 1:1 is placed in a stainless steel container and heated to boiling using a mantle heater. After boiling, the sample suspended on a platinum wire is placed therein and maintained boiling for 3 hours. (5) The sample is taken out, ultrasonically cleaned for 2 minutes with ultrapure water three times, and then ultrasonically cleaned for 1 minute with ethanol twice. Subsequently, the sample is dried in an oven at 110°C for 1 hour and allowed to cool for 30 minutes in a desiccator. (6) The mass of sample m2 is measured to an accuracy of ±0.1 mg and recorded. (7) From the masses of sample before and after placed in the boiling alkaline solution, m1 and m2 (mg), and the total surface area of sample A (cm 2< ), the mass loss per unit area is calculated by the following equation as a measurement value of the alkali resistance test. Masslossperunitarea=100×m1−m2 / A
[0017] The "alkali resistance of Class 2 in a test in accordance with ISO 695" means that the measured value determined as above is 175 mg / dm 2< or less. Incidentally, when the measured value determined as above is 75 mg / dm 2< or less, the glass has "an alkali resistance of Class 1 in a test in accordance with ISO 695".
[0018] In the present invention, it is preferable that the working point is 1260°C or less. The "working point" herein means the temperature at which the viscosity of the glass is 10 4< dPa·s.
[0019] The glass for pharmaceutical containers of the present invention comprises, in mol% on an oxide basis, 69 to 81% of SiO 2 , 4 to 12% of Al 2 O 3 , 0.01 to 5% of B 2 O 3 , 5 to 20% of Li 2 O + Na 2 O + K 2 O, 0.1 to 12% of Li 2 O, 0 to 11% of Na 2 O, 0 to 5% of K 2 O, and 0 to 10% of MgO + CaO + SrO + BaO, in which the Li 2 O content is higher than the K 2 O content.Advantageous Effects of Invention
[0020] The glass for pharmaceutical containers of the present invention is resistant to delamination and also can be easily processed into a complex shape. In addition, it has excellent hydrolytic resistance and is suitable as a glass material for pharmaceutical containers, such as ampoules, vials, prefilled syringes, and cartridges.Description of Embodiments
[0021] The reasons for controlling the range of composition for each component will be described. Incidentally, "%" means "mol%" unless otherwise noted.
[0022] SiO 2 is one of the components forming the network of the glass. When the content of SiO 2 is too low, vitrification is difficult to occur, and also the coefficient of thermal expansion becomes too high, whereby thermal shock resistance is likely to decrease. In addition, the acid resistance of the glass tends to be deteriorated. Meanwhile, when the content of SiO 2 is too high, meltability and formability are likely to decrease. Therefore, the content is 70 to 79%, particularly preferably 70 to 78%, and most preferably 73 to 76%.
[0023] Al 2 O 3 is one of the components forming the network of the glass and is effective in improving the hydrolytic resistance of the glass. The content is 4 to 12%, preferably 4.5 to 11%, still more preferably 5 to 10%, and most preferably 5.5 to 7%. When the content of Al 2 O 3 is law, it is difficult to achieve the hydrolytic resistance of Class 1 in a test in accordance with the European pharmacopoeia. Meanwhile, when the content of Al 2 O 3 is high, it is difficult to achieve the working point of 1260°C or less.
[0024] B 2 O 3 is effective in reducing the viscosity of the glass. It is preferable that the content is 0.011 to 5%, 0.01 to 4%, 0.01 to 3%, 0.02 to 2%, 0.01 to 1%, and particularly 0.01 to 0.5%. B 2 O 3 is believed to be one of the causes of delamination. When the content is high, delamination resistance decreases, and flakes likely to occur. That is, this easily results in a greater amount of SiO 2 extracted in a delamination resistance test in accordance with the method described in NPTL 1 than in the case of conventional borosilicate glass. Incidentally, it is preferable that B 2 O 3 is contained as an essential component in view of the meltability and processability. In this case, it is preferable that the content of B 2 O 3 is 0.01% or more, particularly 0.05% or more.
[0025] Li 2 O, Na 2 O, and K 2 O, which are alkali metal oxides (R 2 O), are effective in reducing the viscosity of the glass. However, when the total content of these components is high, the amount of alkali extracted from the glass increases, and also the coefficient of thermal expansion increases, resulting in a decrease in thermal shock resistance. The total content of R 2 O is 5 to 20%, preferably 7 to 17%, 10 to 15%, 10 to 14.5%, and still more preferably 10.5 to 14.5%.
[0026] Among R 2 O, Li 2 O is the most effective in reducing the viscosity of the glass, followed by Na 2 O, and then K 2 O. In addition, when the contents are the same, K 2 O results in the greatest amount of alkali extracted from the glass, and Li 2 O the smallest. Therefore, in the present invention, it is preferable that the content of R 2 O is controlled to be Li 2 O ≥ Na 2 O ≥ K 2 O, particularly Li 2 O > Na 2 O > K 2 O.
[0027] In addition, in the present invention, Li 2 O is contained as an essential component. The specific content of Li 2 O is 0.1 to 12%, preferably 1.5 to 12%, still more preferably 3 to 11.5%, and particularly 4.5 to 11.5%. It is preferable that the content of Na 2 O is 0 to 11%, 1 to 10%, 1 to 8% and particularly 1 to 6%, and the content of K 2 O is 0 to 5%, 0.1 to 5% and particularly 1 to 5%.
[0028] BaO, SrO, CaO, and MgO, which are alkaline earth metal oxides (R'O), are effective in reducing the viscosity of the glass. They also affect the amount of alkali extracted. However, in the case where these components are included in the glass composition, during use as a pharmaceutical container, an extremely small amount of R'O may be extracted from the glass into the liquid medicine, resulting in the precipitation of a carbonate or sulfate thereof. When the medicine is administered to a human body, such a precipitate may cause a thrombus, or the like, and thus is harmful. Therefore, the total content of R'O is 0 to 10%, preferably 0.1 to 10%, and more preferably 1 to 9%.
[0029] Incidentally, whether a carbonate or sulfate of R'O precipitates depends on the solubility of each salt. Specifically, the solubility of MgO is the highest, followed by CaO, SrO, and then BaO. That is, MgO has the lowest likelihood of salt precipitation, and BaO the highest. In addition, when the contents are the same, the amount of alkali extracted from the glass increases in the order of MgO, CaO, SrO, and then BaO. Accordingly, it is preferable that the content of R'O is controlled to be MgO ≥ CaO ≥ SrO ≥ BaO, particularly MgO > CaO > SrO > BaO.
[0030] In addition, in the present invention, the glass can contain MgO. Particularly, it is preferable that MgO is contained as an essential component. Specifically, the content of MgO is 0 to 9%, 0.1 to 9%, 0.5 to 8.5%, and particularly 1 to 5%.
[0031] The content of CaO is 0 to 2%, 0.1 to 2%, and particularly 0.1 to 1%.
[0032] The content of SrO is 0 to 1%, and, if possible, it is desirable that no SrO is contained. It is preferable that the content of BaO is 0 to 4%, particularly 0 to 1%, and, if possible, it is desirable that no BaO is contained.
[0033] ZrO 2 is effective in improving the alkali resistance of the glass. However, when much ZrO 2 is added, this results in an increase in viscosity and causes deterioration in devitrification resistance. Although ZrO 2 is not an essential component in the present invention, when added, it is preferable that the content is 0 to 2%, particularly 0 to 1%.
[0034] As a fining agent, one or more of F, Cl, Sb 2 O 3 , As 2 O 3 , SnO 2 , Na 2 SO 4 , and the like may also be contained. In this case, the total fining agent content is normally 5% or less, particularly preferably 1% or less, and still more preferably 0.5% or less.
[0035] Other components may also be contained in addition to the above components. For example, in order to improve chemical durability, high temperature viscosity, or the like, TiO 2 , Fe 2 O 3 , ZnO, P 2 O 5 , Cr 2 O 3 , Sb 2 O 3 , SO 3 , Cl 2 , PbO, La 2 O 3 , WO 3 , Nb 2 O 3 , Y 2 O 3 , and the like may be added each in an amount up to 3%.
[0036] Incidentally, when the glass is to be colored, TiO 2 and Fe 2 O 3 may be added to the batch raw material. In this case, the total content of TiO 2 and Fe 2 O 3 is normally 10% or less.
[0037] In addition, as impurities, components such as H 2 , CO 2 , CO, H 2 O, He, Ne, Ar, N 2 , and the like may be contained each in an amount up to 0.1%. Further, it is preferable that the contents of noble metal elements incorporated as impurities, such as Pt, Rh, and Au, are each 500 ppm or less, preferably 300 ppm or less.
[0038] The glass for pharmaceutical containers of the present invention has a hydrolytic resistance of Class 1 in a test in accordance with the European pharmacopoeia. This means that the amount of alkali extracted as Na 2 O in the above test is 62 µg / g or less. In the case where the amount of alkali extracted is more than 62 µg / g, when the glass is processed into an ampoule or vial, and a medicine is packed and stored therein, the alkali extracted from the glass may change the properties of medicine components.
[0039] In addition, it is preferable that the glass of the present invention has an alkali resistance of at least Class 2 in a test in accordance with ISO 695. This means that the mass loss per unit area in the above test is 175 mg / dm 2< or less. The mass loss per unit area is preferably 130 mg / dm 2< or less, particularly 75 mg / dm 2< or less. Delamination often occurs when a medicine using a citrate or phosphate buffer, or the like, which shows a strong alkaline behavior even at near neutral pH, is packed / stored in a glass container. Thus, the alkali resistance of a glass can be an index of resistance to delamination. When the mass loss per unit area is more than 175 mg / dm 2< , the possibility of delamination increases.
[0040] In addition, it is preferable that the glass of the present invention has a working point of 1260°C or less, 1240°C or less, 1230°C or less, and particularly 1220°C or less. When the working point is high, the processing temperature at which a material glass tube is processed into an ampoule or vial increases, whereby a significantly increased amount of alkali component evaporates from the glass. The evaporated alkali component adheres to the inner surface of the glass container and causes the change of properties of the medicine packed and stored therein. In addition, when the glass contains boron, boron evaporates and condensates, which can be the cause of delamination.
[0041] Next, a method for producing the glass tube for pharmaceutical containers of the present invention will be described. The following explains an example using the Danner method.
[0042] First, glass raw materials are formulated in the above glass composition to produce a glass batch. Subsequently, the glass batch is continuously fed into a melting furnace at 1550 to 1700°C to perform melting and fining. Then, while winding the obtained molten glass around a rotatory refractory, air is blown out from the tip of the refractory, and the glass is drawn from the tip in the form of a tube. The drawn tubular glass is cut into a predetermined length to give a glass tube for pharmaceutical containers. The glass tube thus obtained is used for the production of a vial or ampoule.
[0043] Incidentally, the glass tube for pharmaceutical containers of the present invention can be produced not only by the Danner method but also using any of known techniques. For example, the Vello method and a down draw method are also effective as production methods for the glass tube for pharmaceutical containers of the present invention.Examples
[0044] Hereinafter, the present invention will be described based on the examples.
[0045] Tables 1 to 5 show the examples of the present invention (Samples No. 14, 15, 16. 17, 32 and 33) and comparative examples (Samples No. 1 to 13, 18 to 30, and 34 to 42). Table 1Sample No.12345678910Glass Composition [mol%]SiO 2 75.669.975.173.672.378.974.974.974.974.9Al 2 O 3 5.911.04.86.06.16.06.06.06.06.0B 2 O 3 MgO4.94.54.54.64.60.94.54.51.51.5CaO0.50.50.50.50.60.10.50.51.51.5SrO1.01.0BaO1.01.0Li 2 O3.16.16.16.26.26.111.14.66.111.1Na 2 O8.85.95.95.96.05.91.44.75.91.4K 2 O1.01.91.92.02.01.91.44.61.91.4ZrO 2 1.01.02.0SnO 2 0.20.20.20.20.20.20.20.20.20.2Cl∑R 2 O12.913.913.914.114.213.913.913.913.913.9∑R'O5.45.15.15.15.21.05.05.05.05.0Strain PointPs (°C)495535478490509465477480464465Annealing PointTa (°C)543584524536555513521528507507Softening PointTs (°C)799840764777799763780780733725Working Point10 4< (°C)1216125011631177118512121152121111361109Hydrolytic Resistance[µg / g]446250493447525952Alkali Resistance[mg / dm 2< ]527243473210764826665Delamination Resistance[µg / cm 2< ]1.84 Table 2 11121314151617181920Glass Composition [mol%]SiO 2 74.974.974.974.273.673.071.475.075.073.9Al 2 O 3 6.06.06.05.95.95.85.77.07.06.0B 2 O 3 0.91.82.64.4MgO1.51.54.54.54.44.44.42.42.48.1CaO1.51.50.50.50.50.50.52.02.00.9SrO1.01.0BaO1.01.0Li 2 O8.18.16.16.15.95.95.95.07.04.6Na 2 O1.44.45.95.85.85.75.65.05.04.6K 2 O4.41.41.91.91.91.91.93.41.41.7ZrO 2 SnO 2 0.20.20.20.20.20.20.20.20.20.2Cl∑R 2 O13.913.913.913.813.613.513.413.413.410.9∑R'O5.05.05.15.14.94.94.94.44.49.0Strain PointPs (°C)472461472471472472473484478528Annealing PointTa (°C)516503518514514512511531524575Softening PointTs (°C)743724758745737726710781764825Working Point10 4< (°C)1140111811711152114411301116120711911234Hydrolytic Resistance[µg / g]58544949484440Alkali Resistance[mg / dm 2< ]716264666872736460Delamination Resistance[µg / cm 2< ]2.151.822.072.382.412.89 Table 3 21222324252627282930Glass Composition [mol%]SiO 2 70.976.074.471.477.577.577.577.577.577.5Al 2 O 3 6.05.96.09.06.06.06.06.06.06.0B 2 O 3 MgO8.14.94.54.51.51.52.52.52.53.5CaO0.90.60.50.50.30.30.30.30.30.3SrOBaOLi 2 O6.11.96.16.16.07.55.56.57.56.5Na 2 O5.910.15.95.95.54.05.04.03.03.0K 2 O1.90.41.91.92.52.52.52.52.52.5ZrO 2 0.50.50.50.50.50.50.50.5SnO 2 0.20.20.20.20.20.20.20.20.20.2Cl∑R 2 O13.912.413.913.914.014.013.013.013.012.0∑R'O9.05.55.05.01.81.82.82.82.83.8Strain PointPs (°C)486516480517473474495Annealing PointTa (°C)529566527565520521544Softening PointTs (°C)752827770815773770804Working Point10 4< (°C)1137125311821225120711981247123012261257Hydrolytic Resistance[µg / g]624639464441Alkali Resistance[mg / dm 2< ]815152565755575157Delamination Resistance[µg / cm 2< ]2.242.041.561.551.56 Table 4 31323334Glass Composition [mol%]SiO 2 77.074.074.377.0Al 2 O 3 6.06.06.06.0B 2 O 3 0.40.1MgO3.54.54.53.5CaO0.30.50.50.3SrOBaOLi 2 O7.06.16.16.0Na 2 O3.05.95.94.0K 2 O2.51.91.92.5ZrO 2 0.50.50.50.5SnO 2 0.20.20.20.2Cl∑R 2 O12.513.913.912.5∑R'O3.85.05.03.8Strain PointPs (°C)486478481Annealing PointTa (°C)534523527Softening PointTs (°C)794761769Working Point10 4< (°C)1240117111791241Hydrolytic Resistance[µg / g]4153Alkali Resistance[mg / dm 2< ]52555450Delamination Resistance[µg / cm 2< ]1.471.84 Table 5 3536373839404142Glass Composition [mol%]SiO 2 76.376.377.974.974.974.968.264.7Al 2 O 3 4.56.06.16.06.06.05.45.2B 2 O 3 10.08.813.3MgO5.05.14.50.50.54.14.0CaO1.00.60.60.50.50.50.50.4SrO4.0BaO0.54.0Li 2 O1.46.16.15.65.4Na 2 O6.011.86.11.45.95.95.45.1K 2 O1.50.14.011.11.91.91.81.7ZrO 2 SnO 2 0.20.20.20.20.20.20.2Cl0.2∑R 2 O7.511.910.113.913.913.912.712.2∑R'O1.55.55.65.05.05.04.74.4Strain PointPs (°C)525562606540466455478479Annealing PointTa (°C)570615667596508497513512Softening PointTs (°C)785876967879724709689675Working Point10 4< (°C)11701297140413131115109310321014Hydrolytic Resistance[µg / g]1758409674884150Alkali Resistance[mg / dm 2< ]1307074100768094Delamination Resistance[µg / cm 2< ]2.731.983.056.16
[0046] The samples were prepared as follows.
[0047] First, a 500 g batch was formulated in the composition shown in the table and melted using a platinum crucible at 1650°C for 3.5 hours. Incidentally, stirring was performed twice during the melting process in order to reduce bubbles in the sample. After melting, an ingot was produced, processed into a shape required for measurement, and subjected to various kinds of evaluation. The results are shown in the tables.
[0048] As is clear from the tables, with respect to Samples No.1 to 34, the working point was 1257°C or less, the amount of alkali extracted in a hydrolytic resistance test was 62 µg / g or less, and the amount of alkali extracted in an alkali resistance test was 107 mg / dm 2< or less. In addition, the amount of SiO 2 extracted in a delamination resistance test was 2.89 µg / cm 2< or less.
[0049] For the measurement of strain point Ps, the temperature at which the viscosity of the glass was 10 14.5< dPa·s was determined by Fiber Elongation method in accordance with ASTM C336.
[0050] For the measurement of annealing point Ta, the temperature at which the viscosity of the glass was 10 13.0< dPa·s was determined by Fiber Elongation method in accordance with ASTM C336.
[0051] For the measurement of softening point Ts, the temperature at which the viscosity of the glass was 10 7.6< dPa·s was determined by Fiber Elongation method in accordance with ASTM C338.
[0052] For the measurement of working point, the temperature at which the viscosity of the glass was 10 4.0< dPa·s was determined by a platinum ball pulling up method.
[0053] The hydrolytic resistance test was performed in accordance with the European pharmacopoeia. The detailed test procedure is as follows. A glass sample was ground in an alumina mortar and classified into 300 to 425 µm through a sieve. The obtained powder was washed with distilled water and ethanol and dried in an oven at 140°C. 10 g of the dried powder sample was placed in a quartz flask, further 50 mL of distilled water was added, and the flask was capped. The quartz flask containing the sample was placed in an autoclave and treated. The treatment conditions were as follows: the temperature was raised from 100°C to 121°C at 1°C / min, then maintained at 121°C for 30 minutes, and lowered to 100°C at 0.5°C / min. The solution in the quartz flask was transferred to another beaker. Further, the inside of the quartz flask was washed three times with 15 mL of distilled water, and the washing water was also added to the beaker. A methyl red indicator was added to the beaker, followed by titration with a 0.02 mol / L hydrochloric acid solution. With 1 mL of the 0.02 mol / L hydrochloric acid solution equivalent to 620 µg of Na 2 O, the amount of alkali extracted was calculated.
[0054] The alkali resistance test was performed in accordance with ISO 695. The detailed test procedure is as follows. A 15 cm 2< glass sample piece with an entirely mirror finished surface was prepared. First, as a pretreatment, the sample was immersed in a solution containing fluoric acid (40 wt%) and hydrochloric acid (2 mol / L) mixed in a volume ratio of 1:9, followed by stirring for 10 minutes with a magnetic stirrer. The sample was then taken out, ultrasonically cleaned for 2 minutes with ultrapure water three times, and then ultrasonically cleaned for 1 minute with ethanol twice. Subsequently, the sample was dried in an oven at 110°C for 1 hour and allowed to cool for 30 minutes in a desiccator. The mass of sample m1 was measured to an accuracy of ±0.1 mg and recorded. A 800 mL solution containing an aqueous sodium hydroxide solution (1 mol / L) and an aqueous sodium carbonate solution (0.5 mol / L) mixed in a volume ratio of 1:1 was placed in a stainless steel container and heated to boiling using a mantle heater. After boiling, the sample suspended on a platinum wire was placed therein and maintained boiling for 3 hours. The sample was taken out, ultrasonically cleaned for 2 minutes with ultrapure water three times, and then ultrasonically cleaned for 1 minute with ethanol twice. Subsequently, the sample was dried in an oven at 110°C for 1 hour and allowed to cool for 30 minutes in a desiccator. The mass of sample m2 was measured to an accuracy of ±0.1 mg and recorded. From the masses of sample before and after placed in the boiling alkaline solution, m1 and m2 (mg), and the total surface area of sample A (cm 2< ), the mass loss per unit area was calculated by the following equation as a measurement value of the alkali resistance test. Mass loss per unit area = 100 × m 1 − m 2 / A
[0055] The delamination resistance test was performed in accordance with the method described in NPTL 1. However, because there are differences in the sample from, or the like, the method described in NPTL 1 was used with some modifications. The detailed procedure is as follows. A glass piece with an entirely mirror finished surface having a surface area of about 13 cm 2< was prepared and, in order to replicate thermal processing for the production of a container, heated for 20 seconds at the softening point of each sample. Subsequently, a Teflon (registered trademark) container was filled with a 0.9% aqueous NaCl solution adjusted to pH 8.0 with an aqueous Na 2 HPO 4 solution. The sample was immersed therein, and the container was capped. The Teflon container containing the sample was placed in an autoclave and treated. The treatment conditions were as follows: the temperature was raised from 100°C to 121°C at 1°C / min, maintained at 121°C for 1 hour, and lowered to 100°C at 0.5°C / min. Using ICP-OES (Inductively Coupled Plasma Optical Emission Spectrometry), the amount of SiO 2 that had been extracted into the solution through the treatment was determined as the amount of extractable relative to the surface area of the sample (µg / cm 2< ). The amount of SiO 2 extracted is used as an index of delamination resistance. The smaller the amount of SiO 2 extracted is, the higher delamination resistance such a glass is considered to have.
Claims
1. A glass for pharmaceutical containers comprising, in mol% on an oxide basis, 70 to 79% of SiO2, 4 to 12% of Al2O3, 0.01 to 5% of B2O3, 5 to 20% of Li2O + Na2O + K2O, 0.1 to 12% of Li2O, 0 to 9% of MgO, 0 to 2% of CaO, 0 to 1% of SrO, 0 to 4% of BaO, and 0 to 10% of MgO + CaO + SrO + BaO.
2. The glass for pharmaceutical containers according to claim 1, comprising, in mol% on an oxide basis, 0 to 4% of B2O3.
3. The glass for pharmaceutical containers according to claim 1 or 2, comprising, in mol% on an oxide basis, 0 to 11% of Na2O and 0 to 5% of K2O.
4. The glass for pharmaceutical containers according to any one of claims 1 to 3, further comprising 0 to 2 mol% of ZrO2.
5. The glass for pharmaceutical containers according to any one of claims 1 to 4, wherein the total content of Li2O + Na2O + K2O is 10 to 15 mol%.
6. The glass for pharmaceutical containers according to any one of claims 1 to 5, wherein the content of Al2O3 is 5.5 to 7 mol%.
7. The glass for pharmaceutical containers according to any one of claims 1 to 6, having a hydrolytic resistance of Class 1 in a test in accordance with the European pharmacopoeia.
8. The glass for pharmaceutical containers according to any one of claims 1 to 7, having an alkali resistance of at least Class 2 in a test in accordance with ISO 695.
9. The glass for pharmaceutical containers according to any one of claims 1 to 8, having a working point of 1260°C or less.
10. The glass for pharmaceutical containers according to claim 1, further comprising, in mol% on an oxide basis, 0 to 11% of Na2O and 0 to 5% of K2O, wherein the Li2O content is higher than the K2O content.
11. The glass for pharmaceutical containers according to claim 10, wherein the total content of Li2O + Na2O + K2O is 10 to 15 mol%.
12. The glass for pharmaceutical containers according to claim 10 or 11, wherein the content of Al2O3 is 5.5 to 7 mol%.
13. A glass tube for pharmaceutical containers, made of the glass for pharmaceutical containers of any one of claims 1 to 12.
14. A use of the glass according to any one of claims 1 to 12 for production of a pharmaceutical container.