Molded article comprising propylene homopolymer composition

By developing a molded article containing a specific propylene homopolymer composition, the shortcomings of the existing polypropylene homopolymer in terms of wear resistance are solved, and a high wear resistance polypropylene homopolymer composition is achieved, suitable for moving parts in the automobile industry.

CN119998338APending Publication Date: 2025-05-13BASELL POLIOLEFINE ITALIA SRL
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Patent Information

Application Number
CN202380071155.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Priority Date
2023-04-17
Filing Date
2023-10-04
Publication Date
2025-05-13

AI Technical Summary

Technical Problem

The existing polypropylene homopolymers have shortcomings in wear resistance, and especially when used in the automotive industry for moving parts, it is difficult to meet the demand for high wear resistance.

Method used

A molded article containing a specific propylene homopolymer composition consisting of two propylene homopolymers, respectively, containing different ethylene-derived units and intrinsic viscosity ranges, to optimize the melt strength and polydispersity of the composition by adjusting the component ratio.

Benefits of technology

A polypropylene homopolymer composition with high melt strength and high molecular weight is achieved, significantly improving the wear resistance of molded articles, making it particularly suitable for the production of automobile products, especially those subject to movement.

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Abstract

A molded article comprising a propylene homopolymer composition, the propylene homopolymer composition comprising: A) from 30% to 70% by weight of a first propylene homopolymer, optionally containing up to 1.0% by weight of ethylene derived units having:-an intrinsic viscosity (IV) measured in tetralin at 135 DEG C in the range from 8.0 dl / g to 13.0 dl / g; b) from 30% to 70% by weight of a second propylene homopolymer, optionally containing up to 1.0% by weight of ethylene derived units having: an intrinsic viscosity (IV), measured in tetrahydronaphthalene at 135 DEG C, ranging from 2.0 dl / g to 4.5 dl / g; the sum of the amount of A) + the amount of B) is 100% by weight.
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Description

Technical Field

[0001] The present disclosure relates to molded articles, preferably compression molded articles comprising a polypropylene homopolymer composition having high molecular weight and high abrasion resistance. Background Art

[0002] Propylene homopolymers are widely used in the field of molding processes such as injection molding or compression molding.

[0003] For many applications, wear resistance is an important feature of articles made of polymeric materials, and scratch and / or mar resistance is an important feature of articles made of polymeric materials, especially for polypropylene. For example, in the automotive industry, durable plastic products are required as external and internal parts, especially if they are part of moving parts (such as gears).

[0004] Therefore, there is a need to develop a propylene homopolymer for molded objects having enhanced abrasion resistance. Summary of the invention

[0005] The present disclosure relates to a molded article comprising a propylene homopolymer composition comprising:

[0006] A) 30 to 70 wt% of a first propylene homopolymer, the first propylene homopolymer optionally containing up to 1.0 wt% of ethylene derived units having:

[0007] - an intrinsic viscosity (IV) ranging from 8.0 dl / g to 13.0 dl / g, measured in tetralin at 135°C;

[0008] B) 30 to 70 wt% of a second propylene homopolymer, the second propylene homopolymer optionally containing up to 1.0 wt% of ethylene derived units having:

[0009] - an intrinsic viscosity (IV) ranging from 2.0 dl / g to 5.5 dl / g, measured in tetralin at 135°C;

[0010] The sum of the amount of A) + the amount of B) is 100% by weight;

[0011] The propylene homopolymer composition has the following characteristics:

[0012] - the presence of two melting points in the DSC thermogram measured according to ISO 11357-3 at a heating and cooling rate of 20°C / min;

[0013] - the higher melting point in the thermogram measured according to ISO 11357-3 at a heating and cooling rate of 20°C / min ranges from 155°C to 170°C;

[0014] - As reported in the Examples section, with C 13 The isotactic pentad mmmm% measured by NMR ranged from 94.5 mol% to 89.0 mol%.

[0015] - at 250°C and at an applied speed equal to 6 mm / s 2 The melt strength measured according to ISO 16790-2005 is higher than 0.070N under the acceleration of

[0016] - the fraction soluble in xylene at 25° C., measured according to ISO 16 152-2005, is comprised between 6.0% and 2.0% by weight;

[0017] - The intrinsic viscosity (IV) measured in tetralin at 135°C ranges from 10.0 dl / g to 4.5 dl / g. DETAILED DESCRIPTION

[0018] The present disclosure relates to a molded article comprising a propylene homopolymer composition comprising:

[0019] A) 30 to 70 wt%; preferably 40 to 60 wt%; more preferably 45 to 55 wt% of a first propylene homopolymer, the first propylene homopolymer optionally containing up to 1.0 wt% of ethylene derived units having:

[0020] - an intrinsic viscosity (IV) measured in tetralin at 135° C. ranging from 8.0 to 13.0 dl / g; preferably from 8.5 to 12.0 dl / g; more preferably from 8.8 to 11.5 dl / g;

[0021] B) 30 to 70 wt%; preferably 40 to 60 wt%; more preferably 45 to 55 wt% of a second propylene homopolymer, the second propylene homopolymer optionally containing up to 1.0 wt% of ethylene derived units having:

[0022] - an intrinsic viscosity (IV) measured in tetralin at 135° C. ranging from 2.0 dl / g to 5.5 dl / g; preferably from 2.2 dl / g to 5.0 dl / g; more preferably from 2.5 dl / g to 4.7 dl / g;

[0023] The sum of the amount of A) + the amount of B) is 100% by weight;

[0024] The propylene homopolymer composition has the following characteristics:

[0025] - the presence of two melting points in the DSC thermogram measured according to ISO 11357-3 at a heating and cooling rate of 20°C / min; preferably the lower melting point is in the range of 135°C to 150°C;

[0026] The higher melting point ranges from 155°C to 170°C; preferably from 157°C to 168°C, measured according to ISO 11357-3 at a heating and cooling rate of 20°C / min;

[0027] - As reported in the Examples section, with C 13 The isotactic pentad mmmm% measured by NMR ranges from 94.5 mol% to 89.0 mol%; preferably from 93.2 mol% to 90.5 mol%; more preferably from 93.0 mol% to 91.0 mol%;

[0028] - the fraction soluble in xylene at 25° C., measured according to ISO 16 152-2005, is comprised between 5.0% and 2.0% by weight; preferably comprised between 4.5% and 2.2% by weight; more preferably comprised between 3.5% and 2.4% by weight;

[0029] - at 250°C and at an applied speed equal to 6 mm / s 2 The melt strength measured according to ISO 16790-2005 under an acceleration of 0.070 N is higher than 0.080 N; more preferably higher than 0.082 N;

[0030] - the intrinsic viscosity (IV) measured in tetralin at 135°C ranges from 10.0 dl / g to 4.5 dl / g; preferably from 9.2 dl / g to 5.2 dl / g; more preferably from 8.5 dl / g to 5.5 dl / g.

[0031] Preferably, the propylene homopolymers of the present disclosure are not nucleated.

[0032] Preferably, the melt strength of the homopolymer of the present disclosure is less than 0.30N.

[0033] Preferably, the homopolymers of the present disclosure exhibit a polydispersity index PI comprised between 4.5 and 7.5; more preferably between 5.0 and 7.2; more preferably between 5.5 and 7.0.

[0034] Preferably, the homopolymers of the present disclosure exhibit a tensile modulus ranging from 2100 MPa to 1100 MPa; preferably from 1800 MPa to 1200 MPa.

[0035] Preferably, the homopolymers of the present disclosure exhibit a relative humidity of 4.0 kJ / m at 23°C. 2 Up to 11.0 kJ / m2 ; preferably 4.5 kJ / m 2 Up to 7.5 kJ / m 2 Charpy impact test.

[0036] The polypropylene homopolymer compositions of the present disclosure are characterized by high melt strength and high molecular weight.

[0037] Therefore, the polypropylene homopolymer composition of the present disclosure preferably shows low abrasion resistance values ​​measured according to ISO 15527: 2007. The average abrasion index value measured according to ISO 15527: 2007 on compression molded plaques may be below 360; preferably below 355. The low abrasion index value makes the molded articles of the present disclosure particularly suitable for the production of automotive articles, especially articles that are subject to movement.

[0038] By fine-tuning the ratio of component A) to component B), the intrinsic viscosity and melt strength of the composition can also be fine-tuned.

[0039] The propylene homopolymer composition of the present disclosure can be prepared by a method including optionally polymerizing propylene with ethylene in the presence of a Ziegler-Natta catalyst in two reactors connected in series. An essential component of the catalyst is a solid catalyst component comprising a titanium compound having at least one titanium-halogen bond and an electron donor compound, both of which are supported on a magnesium halide in an active form. Another essential component (cocatalyst) is an organoaluminum compound, such as an alkyl aluminum compound. An external donor is optionally added.

[0040] Catalysts having the above characteristics are well known in the patent literature; particularly advantageous are the catalysts described in U.S. Pat. No. 4,399,054 and European Patent No. 45977. Other examples can be found in U.S. Pat. No. 4,472,524.

[0041] The solid catalyst component used in the catalyst comprises as an electron donor (internal donor) a compound selected from the group consisting of ethers, ketones, lactones, compounds containing N, P and / or S atoms, and esters of mono- and dicarboxylic acids.

[0042] Particularly suitable electron donor compounds are esters of succinic acid (succinates). Preferably, the succinates present in the solid catalyst component are selected from succinates of the following formula (I):

[0043]

[0044] wherein the free radicals R1 and R2 are identical or different from each other and are C1-C20 straight or branched alkyl, alkenyl, cycloalkyl, aryl, arylalkyl or alkylaryl groups, optionally containing heteroatoms; and the free radicals R3 and R4 are identical or different from each other and are C1-C20 alkyl, C3-C20 cycloalkyl, C5-C20 aryl, arylalkyl or alkylaryl groups, provided that at least one of them is a branched alkyl group; the compound is a (S, R) or (R, S) type stereoisomer relative to the two asymmetric carbon atoms identified in the structure of formula (I)

[0045] R1 and R2 are preferably C1-C8 alkyl, cycloalkyl, aryl, arylalkyl and alkaryl. Particularly preferred are compounds in which R1 and R2 are selected from primary alkyl, especially branched primary alkyl. Examples of suitable R1 and R2 groups are methyl, ethyl, n-propyl, n-butyl, isobutyl, neopentyl, 2-ethylhexyl. Particularly preferred are ethyl, isobutyl and neopentyl.

[0046] Particularly preferred are compounds in which the R3 and / or R4 radicals are secondary alkyl radicals such as isopropyl, sec-butyl, 2-pentyl, 3-pentyl or cycloalkyl radicals such as cyclohexyl, cyclopentyl, cyclohexylmethyl.

[0047] Examples of such compounds are diethyl 2,3-bis(trimethylsilyl)succinate, diethyl 2,3-bis(2-ethylbutyl)succinate, diethyl 2,3-dibenzylsuccinate, diethyl 2,3-diisopropylsuccinate, diisobutyl 2,3-diisopropylsuccinate, diethyl 2,3-bis(cyclohexylmethyl)succinate, diethyl 2,3-diisobutylsuccinate, diethyl 2,3-dineopentylsuccinate, diethyl 2,3-dicyclopentylsuccinate, diethyl 2,3-dicyclohexylsuccinate in (S,R)(S,R) pure form or in the form of a mixture, optionally in racemic form.

[0048] Particularly suitable electron donor compounds are esters of phthalic acid and 1,3-diethers of the formula:

[0049]

[0050] wherein RI and RII are identical or different and are C1-C18 alkyl, C3-C18 cycloalkyl or C7-C18 aryl radicals; RIII and RIV are identical or different and are C1-C4 alkyl radicals; or is a 1,3-diether, wherein the carbon atom at position 2 belongs to a cyclic or polycyclic structure consisting of 5, 6 or 7 carbon atoms or 5-n or 6-n' carbon atoms and n nitrogen atoms and n' heteroatoms selected from the group consisting of N, O, S and Si, respectively, wherein n is 1 or 2 and n' is 1, 2 or 3, said structure containing two or three unsaturations (cyclic polycyclic structures); alkyl radicals) and optionally condensed with other cyclic structures, or substituted by one or more substituents selected from the group consisting of: straight or branched alkyl radicals, cycloalkyl radicals, aryl, aralkyl, alkaryl radicals and halogens, or condensed with other cyclic structures and substituted by one or more of the above substituents, one or more of which may also be bonded to the condensed cyclic structure; a condensed cyclic structure of one or more of the above alkyl, cycloalkyl, aryl, aralkyl or alkaryl radicals and optionally containing one or more heteroatoms as substituents of carbon atoms or hydrogen atoms or both.

[0051] Ethers of this type are described in published European Patent Applications 361,493 and 728,769.

[0052] Representative examples of the diethers are 2-methyl-2-isopropyl-1,3-dimethoxypropane, 2,2-diisobutyl-1,3-dimethoxypropane, 2-isopropyl-2-cyclopentyl-1,3-dimethoxypropane, 2-isopropyl-2-isopentyl-1,3-dimethoxypropane, 9,9-bis(methoxymethyl)fluorene.

[0053] Other suitable electron donor compounds are phthalic acid esters, such as diisobutyl phthalate, dioctyl phthalate, diphenyl phthalate and benzyl butyl phthalate.

[0054] The preparation of the above-mentioned catalyst components is performed according to various methods.

[0055] For example, MgCl2.nROH adduct (especially in the form of spherical particles) (where n is generally from 1 to 3 and ROH is ethanol, butanol or isobutanol) is reacted with an excess of TiCl4 containing an electron donor compound. The reaction temperature is generally 80° C. to 120° C. The solid is then separated and reacted once more with TiCl4 in the presence or absence of an electron donor compound, after which it is separated and washed with an aliquot of a hydrocarbon until all chloride ions are gone.

[0056] In the solid catalyst component, the titanium compound, denoted Ti, is generally present in an amount of 0.5 to 10% by weight. The amount of electron donor compound remaining fixed on the solid catalyst component is generally 5 to 20 mol% relative to the magnesium dihalide.

[0057] Titanium compounds which can be used for the preparation of the solid catalyst component are titanium halides and halogen alcoholates. Titanium tetrachloride is the preferred compound.

[0058] The above reactions form magnesium halides in active form. Other reactions are known in the literature which, starting from magnesium compounds other than halides, such as magnesium carboxylates, form magnesium halides in active form.

[0059] Al-alkyl compounds used as co-catalysts include Al-trialkyls such as Al-triethyl, Al-triisobutyl, Al-tri-n-butyl and linear or cyclic Al-alkyl compounds containing two or more Al atoms bonded to each other via O or N atoms or SO4 or SO3 groups.

[0060] The Al-alkyl compound is generally used in such an amount that the Al / Ti ratio is 1 to 1000.

[0061] Electron donor compounds that can be used as external donors include aromatic acid esters, such as alkyl benzoates, and in particular silicon compounds containing at least one Si-OR bond, wherein R is a hydrocarbon radical.

[0062] Examples of silicon compounds are (tert-butyl)2Si(OCH3)2, (cyclohexyl)(methyl)Si(OCH3)2, (cyclopentyl)2Si(OCH3)2 and (phenyl)2Si(OCH3)2 and (1,1,2-trimethylpropyl)Si(OCH3)3.

[0063] 1,3-Diethers of the abovementioned formula can also be used advantageously. If the internal donor is one of these diethers, the external donor can be omitted.

[0064] In particular, component A) is preferably prepared by using a catalyst containing a phthalate as internal donor and (cyclopentyl)2Si(OCH3)2 as external donor, or the 1,3-diether as internal donor, even if many other combinations of the aforementioned catalyst components may allow obtaining the composition according to the invention.

[0065] The polymerization is usually carried out at a temperature of 20°C to 120°C, preferably 40°C to 80°C. When the polymerization is carried out in the gas phase, the operating pressure is usually between 0.5MPa and 5MPa, preferably between 1MPa and 4MPa. In bulk polymerization, the operating pressure is usually 1-8Mpa, preferably 1.5-5MPa. Hydrogen is usually used as a molecular weight regulator. The polymerization can be in the gas phase or in the slurry or in the solution. In one or more reactors. Preferably, the polymerization is carried out in two slurry reactors operated in series by changing the hydrogen concentration in the two reactors.

[0066] The molded article of the present disclosure may be, for example, an injection molded article, a blow molded article or a compression molded article. Preferably, the molded article of the present disclosure is a compression molded article.

[0067] The following examples are given to illustrate but not to limit the present disclosure.

[0068] Example

[0069] Characterization

[0070] Fractions insoluble and soluble in xylene at 25°C

[0071] The xylene soluble fraction has been measured according to ISO 16 152-2005; in the case of a solution volume of 250 ml, precipitation at 25° C. for 20 minutes, of which 10 minutes the solution was stirred (magnetic stirrer), and drying at 70°.

[0072] Melt flow rate (MFR)

[0073] Unless otherwise indicated, measurements are made according to ISO 1133 at 230°C and with a load of 21.6 kg.

[0074] Polydispersity (PI)

[0075] According to ISO 6721-10, a few grams of molten homopolymer are dynamically tested in a rate sweep at a temperature of 200°C with a parallel plate rheometer. G' (storage modulus) and G" (loss modulus) are measured as a function of frequency. From the rate sweep data, PI is defined by PI = 105 / Gc, where Gc is the crossover modulus as the modulus value at G' = G".

[0076] Melting temperature via differential scanning calorimetry (DSC)

[0077] The melting points (Tm) of the polymers were measured by differential scanning calorimetry (DSC) at 20°C / min on a Perkin Elmer DSC-1 calorimeter previously calibrated for the melting point of indium and according to ISO 11357-1, 2009 and 11357-3, 2011. The weight of the sample in each DSC crucible was kept at 6.0±0.5 mg.

[0078] To obtain the melting point, the weighed sample was sealed into an aluminum pan and heated to 200° C. at 20° C. / min. The sample was held at 200° C. for 2 minutes to allow all crystallites to melt completely, and then cooled to 5° C. at 20° C. / min. After standing at 5° C. for 2 minutes, the sample was heated for a second run at 20° C. / min to 200° C. In this second heating run, the peak temperature (Tp,m) was taken as the melting temperature.

[0079] Homopolymer and propylene / ethylene copolymer 13 C NMR

[0080] 13 C NMR spectra were acquired on a Bruker AV-600 spectrometer equipped with a cryoprobe operating at 120 °C in Fourier transform mode at 160.91 MHz.

[0081] At 29.9ppm S ββ The peak of carbon (according to the nomenclature of "Monomer sequence distribution in ethylene-propylene rubber measured by 13C NMR. 3. Use of reaction probability models" CJ Carman, RA Harrington and CE Wilkes, Macromolecules, 1977, 10, 536) was used as an internal reference. The sample was dissolved in 1,1,2,2-tetrachloroethane-d2 at 8 wt / v% concentration at 120°C. Each spectrum was collected with a 90° pulse, with a delay of 15 seconds between the pulse and CPD to remove 1H-13C coupling. 512 transients were stored in 32K data points using a spectral window of 9000 Hz.

[0082] Evaluation of spectral assignments, triplet distribution, and composition was performed according to Kakugo ("Carbon-13 NMR determination of monomer sequence distribution in ethylene-propylene copolymers prepared with δ-titanium trichloride-diethylaluminum chloride" M. Kakugo, Y. Naito, K. Mizunuma, and T. Miyatake, Macromolecules, 1982, 15, 1150) using the following equation:

[0083] PPP=100T ββ / S PPE=100T βδ / S EPE=100T δδ / S

[0084] PEP=100s ββ / S PEE=100S βδ / S EEE=100(0.25S γδ +0.5S δδ ) / S

[0085] S=T ββ +T βδ +T δδ +S ββ +S βδ +0.25S γδ +0.5S δδ

[0086] The mole percent of ethylene content was estimated using the following equation:

[0087] E%mol=100*[PEP+PEE+EEE] The weight percentage of ethylene content is estimated using the following equation:

[0088]

[0089] Where P mol% is the molar percentage of propylene content, and MW E and MW P are the molecular weights of ethylene and propylene respectively.

[0090] The product of the reactivity ratios r1r2 is calculated according to Carman (CJ Carman, RA Harrington and CE Wilkes, Macromolecules, 1977; 10, 536) as:

[0091]

[0092] The stereoregularity of the propylene sequence is calculated according to PPP mmT ββ (28.90ppm to 29.65ppm) and full T ββ The ratio of (29.80 ppm to 28.37 ppm) was calculated as the mm content.

[0093] Intrinsic viscosity

[0094] The sample is dissolved by tetralin at 135°C and then poured into a capillary viscometer. The viscometer tube (Ubbelohde type) is surrounded by a cylindrical glass jacket; this setup allows temperature control with a circulating thermostatic liquid. The descent of the meniscus is timed by a photoelectric device. The passage of the meniscus in front of the upper lamp starts a counter with a quartz crystal oscillator. When passing the lower lamp, the meniscus stops the counter and the outflow time is recorded: this is converted into an intrinsic viscosity value by the Huggins equation, provided that the flow time of the pure solvent under the same experimental conditions (same viscometer and same temperature) is known. A single polymer solution is used to determine [η].

[0095] Melt Strength

[0096] The melt strength is measured according to ISO 16790-2005 by the Haul-off MeltStrength Meter produced by Geottfert Werkstoff Pruefmaschinen, Germany. The system measures the extension properties of a polymer melt by pulling a vertical melt strand at a constant pull-off speed or at a linear or exponentially accelerated speed. The HAUL-OFF system measures the force required to elongate the strand and calculates the elongation stress, pulling ratio, apparent elongation and viscosity. The polymer is melted and plasticized by a capillary rheometer and then extruded from a hole die with a diameter of 1 mm, a length of 30 mm and an inlet angle of 180°. The test is performed at 250°C. The distance from the capillary outlet to the center of the sensor pulley is 150 mm. In each temperature test, a force equal to 6 mm / s is applied. 2 The filaments are stretched with an acceleration of 1.5° and their elongation is measured by an angle sensor. In addition to the overall curve, the draw ratio (dimensionless value) and the force (cN) value are recorded as the final result. The value of the melt strength is considered to be the maximum force value of the curve.

[0097] Charpy impact test

[0098] Charpy impact test according to ISO 179-1eA and ISO 1873-2 measured on compression specimens

[0099] Tensile modulus

[0100] Tensile modulus measured on compression specimens according to ISO 527-2 and ISO 1873-2

[0101] Example 1 - Preparation of Homopolymer

[0102] Procedure for preparing solid catalyst components

[0103] The solid catalyst used in the following examples was prepared according to Example 10 of International Patent Application WO 00 / 63261. Triethylaluminium (TEAL) was used as cocatalyst and dicyclopentyldimethoxysilane was used as external donor in the weight ratios shown in Table 1.

[0104] polymerization

[0105] The polymerization run is carried out in a series of two reactors in a continuous mode, equipped with means for transferring the product from one reactor to the one immediately adjacent thereto. The two reactors are liquid phase loop reactors. Propylene is the solvent and hydrogen is used as the molecular weight regulator.

[0106] The gas phase (propylene, ethylene and hydrogen) was analyzed continuously via gas chromatography.

[0107] At the end of the run, the powder was discharged and dried under a stream of nitrogen.

[0108] The main polymerization conditions and polymer characteristics are reported in Tables 1 and 2.

[0109] Table 1 – Polymerization conditions

[0110] Example 1 TEAL / catalyst (weight ratio) 5.4 TEAL / external donor (weight ratio) 3 First Circuit Temperature ℃ 65 Pressure barg 40 <![CDATA[H2ppmol]]> <10ppmol Separation weight % 50 Second Circuit Temperature ℃ 75 Pressure barg 40 <![CDATA[H2ppmol]]> 450ppmol Separation weight % 50

[0111] The characteristics of the polymers of Example 1 and Comparative Example 2 are reported in Table 2.

[0112] Table 2

[0113] Example 1 Comparative Example 2 Component A) weight% 50 - IV dl / g 9.3 - Component B) weight% 50 - IV dl / g 3.7 - Total composition MFR g / 10 minutes 3.39 0.3* IV dl / g 6.5 3.5 XS weight% 2.7 4.5 mmmm mol% 92.4 95.5 Polydispersity, PI 6.6 5 Tensile modulus MPa 1480 1500 Charpy impact test at 23°C <![CDATA[kJ / m 2 ]]> 5.7 Melt Strength N 0.088 0.032

[0114] *(230℃ / 2.16kg)

[0115] Comparative Example 2 is PP H2150 sold by LyondellBasell, a nucleated propylene homopolymer.

[0116] Nm not measured

[0117] Wear tests have been measured according to ISO 15527:2007 at 250°C on compression moulded plaques produced with the polymers of Example 1 and Comparative Example 2. The results are reported in Table 3.

[0118] Table 3

[0119] Example 1 Comparative Example 2 Minimum wear index 336 394.6 Maximum wear index 346 418.0 Average wear index 337 361

Claims

1. A molded article comprising a propylene homopolymer composition, the propylene homopolymer composition comprising: A) 30 to 70 wt% of a first propylene homopolymer, which optionally contains up to 1.0 wt% of ethylene derived units having: - an intrinsic viscosity (IV) ranging from 8.0 dl / g to 13.0 dl / g, measured in tetralin at 135°C; B) 30 to 70 wt% of a second propylene homopolymer, which optionally contains up to 1.0 wt% of ethylene derived units having: - an intrinsic viscosity (IV) ranging from 2.0 dl / g to 4.5 dl / g, measured in tetralin at 135°C; The sum of the amount of A) + the amount of B) is 100% by weight; The propylene homopolymer composition has the following characteristics: - the presence of two melting points in the DSC thermogram measured according to ISO 11357-3 at a heating and cooling rate of 20°C / min; - the higher melting point ranges from 155°C to 170°C measured according to ISO 11357-3 at a heating and cooling rate of 20°C / min; - as reported in the Examples section of the description, with C 13 The isotactic pentad mmmm% measured by NMR ranged from 94.5 mol% to 89.0 mol%. - at 250°C and at an applied speed equal to 6 mm / s 2 The melt strength measured according to ISO 16790-2005 is higher than 0.070N under the acceleration of the fraction soluble in xylene at 25° C., measured according to ISO 16 152-2005, is comprised between 6.0% and 2.0% by weight; - the intrinsic viscosity (IV) measured in tetralin at 135°C ranges from 10.0 dl / g to 4.5 dl / g.

2. The molded article comprising the propylene homopolymer composition according to claim 1, wherein - there are two melting points in the DSC thermogram measured according to ISO 11357-3 at a heating and cooling rate of 20°C / min; and the lower melting point ranges from 135°C to 150°C.

3. The molded article comprising the propylene homopolymer composition according to claim 1 or 2; wherein the higher melting point is in the range of 157 to 168°C measured according to ISO 11357-3 at a heating and cooling rate of 20°C / min.

4. The molded article comprising the propylene homopolymer composition according to any of claims 1 to 3, wherein the fraction soluble in xylene at 25°C measured according to ISO 16 152-2005 is comprised between 5.0 and 2.5 wt.-%.

5. The molded article comprising the propylene homopolymer composition according to any one of claims 1 to 4, wherein component A) ranges from 40 to 60 wt.-%, and component B) ranges from 40 to 60 wt.-%.

6. A molded article comprising a propylene homopolymer composition according to any one of claims 1 to 5, wherein as reported in the Examples section, 13 The isotactic pentad mmmm% measured by C NMR ranges from 93.2 mol% to 90.5 mol%.

7. The molded article comprising the propylene homopolymer composition according to any one of claims 1 to 6, wherein the intrinsic viscosity (IV) measured in tetralin at 135°C is in the range of 8.5 to 12.0 dl / g.

8. The molded article comprising the propylene homopolymer composition according to any one of claims 1 to 7, wherein the intrinsic viscosity (IV) measured in tetralin at 135°C is in the range of 9.2 to 5.2 dl / g.

9. The molded article comprising the propylene homopolymer composition according to any one of claims 1 to 8, wherein the intrinsic viscosity (IV) of component A) measured in tetralin at 135°C is in the range of 8.5 to 12.0 dl / g.

10. The molded article comprising the propylene homopolymer composition according to any one of claims 1 to 9, wherein at 250°C and under an applied pressure equal to 6 mm / s 2 The melt strength measured according to ISO 16790-2005 under acceleration of 0.080N is higher.

11. The molded article comprising the propylene homopolymer composition according to any one of claims 1 to 10, wherein the intrinsic viscosity (IV) of component B) measured in tetralin at 135°C is in the range of 2.2 to 5.0 dl / g.

12. Moulded article comprising a propylene homopolymer composition according to any of claims 1 to 11, wherein the homopolymer exhibits a polydispersity index PI measured according to ISO 6721-10 comprised between 4.5 and 7.

5.

13. Moulded article comprising a propylene homopolymer composition according to any of claims 1 to 12, wherein the homopolymer exhibits a polydispersity index PI measured according to ISO 6721-10 comprised between 5.0 and 7.

2.

14. The molded article according to any one of claims 1 to 13, which is an injection molded article, a blow molded article or a compression molded article.

15. A compression molded article comprising the propylene homopolymer according to claims 1 to 13.

Citation Information

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