The invention relates to a process for producing a grafted rubber comprising:
Such a process is known from WO 2006/039774. WO 2006/039774 describes a continuous extrusion process for the manufacturing of a maleic grafted ethylene-propylene rubber comprising the above-mentioned steps with the provision that the rubber is dried to a moisture content of less than 0.1 wt % and the dried rubber is provided to the first injection zone at a temperature of less than 160° C.
Table 6 of WO 2006/039774 describes that 3.8 (1.5+2.3) phr maleic anhydride (MAh) and 0.75 (0.3+0.45) phr of a peroxide (PO) as free radical initiator are injected to obtain 2.0 wt % of bound MAh. This is an efficiency of 53%. The efficiency of example 4 is not more than 55%. The grafting reaction is typically carried out between 150 and 200° C. WO 2006/039774 does not disclose how an efficiency of more than 55% can be obtained.
A disadvantage of the process described in WO 2006/039774 is a relatively low efficiency of the grafting reaction, which causes excessive loss of MAh.
An object of the invention is to provide a process with a high efficiency for the amount of MAh that is grafted onto the rubber.
This object is obtained according to the invention by a process wherein the rubber is fed in a slab/melt dosing unit and transported to the continuous extrusion reactor by a melt pump, dried to a moisture content of between about 0.2 and about 0.5 wt % and the dried rubber is provided to a first reaction zone of the continuous reactor at a temperature of between 190 and 250° C. and the first and the second free radical initiator is an organic peroxide with a half-life (t1/2) of more than 1 second if measured in mono-chlorobenzene at 220° C.
In an embodiment of the invention grafting efficiency of more than 70% could be obtained.
Another embodiment of the process of the invention is that the residual, non reacted MAh could be reduced to 0.5 wt %. A lower residual amount of MAh reduces side reactions of the unreacted MAh in the extruder under grafting and shearing conditions. High temperature side products of MAh are known to be a source of haziness and discoloration of the functional rubber, hence the reduction of free maleic anhydride results in color and clarity improvements of the product stream. Lower residual MAh allows an improved purification of the product stream by vacuum stripping in the vacuum zone. The level of sensitizing MAh in the product is in consequence reduced.
In the process of the invention the rubber is ethylene-propylene rubber, which is fed to a slab/melt dosing unit and transported to the continuous extrusion reactor by a melt pump. The melt pump dampens fluctuations in the rubber feed stream caused by introducing rubber slabs to the melt extruder. The melt pump further reduces pulsations and fluctuations of the system, thus allowing control of reactants dosing and in consequence resulting in product consistency.
In a further embodiment of the invention, the rubber is dried to an amount of between about 0.2 and about 0.3 wt %.
In a still further embodiment of the invention, the dried rubber is provided to the first reaction zone at a temperature of between about 195 and 220° C.
A preferred embodiment of the process of the invention is carried out in a continuous extrusion reactor 2 shown in
An ethylene-propylene rubber (EPM) is preferably fed via hopper 10 to a melt extruder 11 and transported to the continuous extrusion reactor by a melt pump 12
Bales of rubber (Keltan 3200A, a product of DSM Elastomers, 49 wt % ethylene and 51 wt % of propylene with a weight average molecular weight of 180 kg/mol), were stripped of film wrap and fed via hopper 10 to a melt dosing extruder 11 and transported to an extruder arrangement by a melt pump 12 at a feed rate of 50 kg/h. According to the setup, excess moisture was allowed to leave the melt to the atmosphere via opening 20a. Measurement of the rubber melt that was collected from the open injection port 22a resulted in a melt temperature of 176° C. and a moisture content of 0.22 wt %. After reinstalling the injection valve, molten maleic anhydride (80° C.) was fed at the dosing points (22a, 22b) at a combined feed rate of 2.5% of the rubber throughput. Di-tert-butyl peroxide (Akzo Nobel, Trigonox B) as a 30 wt % solution in mineral oil was fed at the dosing points (23a, 23b) at a combined rate of 0.4% of the rubber throughput. Screw speed was 250 rpm to reach a reaction melt temperature of 201° C. measured by the melt thermocouple (24a) in the reaction zone 24. Degassing of unreacted product was done via the vent zone (26) at a vacuum of 200 mbar. Final compression of the melt in the extruder head (29) gave a final melt temperature (27) of 298° C. The rubber melt exiting the extruder was fed to an under water pelletizer system (3) including a pelletizing head with a star knife assembly and water recirculation system with heat exchanger.
The obtained maleic anhydride grafted rubber was a clear light yellow rubber with a melt flow index (MFI) of 4.9 g/10 min (190° C., 2160 g), a gel level of 0.05 wt % and a maleic anhydride functional level measured by IR method of 1.93 wt % (conversion 77%). The residue of free maleic was measured by HPLC to be below 0.1 wt %.
The process was performed under nearly identical conditions as described in example 1 with as the major difference the adjustment of combined feed rate of molten MAh and peroxide to respectively 3.8% and 0.8% of the rubber throughput at the respective dosing points. The reaction melt temperature, measured by the melt thermocouple (24a) was maintained by means of rpm at 202° C. The obtained maleic anhydride grafted rubber was a clear yellow rubber with a melt flow index (MFI) of 4.2 g/10 min (190° C., 2160 g), a gel level of 0.06 wt % and a maleic anhydride functional level measured by IR method of 2.85 wt % (conversion 75%). The residue of free maleic was measured by HPLC to be 0.11 wt %.
The process was performed under nearly identical conditions as described in example 1 with as the major difference the adjustment to an increased melt temperature in the maleic anhydride-grafting zone (24) by means of a slightly increased screw severity (e.g. replacement transport with kneading elements) and operating at 350 rpm. Rubber melt collected at the injection port 22a had a temperature of 210° C. and a moisture content of 0.2 wt %). Melt temperature, measured by the melt thermocouple (24a) was 254° C. The obtained rubber had a high melt flow index of 8.3 g/10 min (190° C., 2160 g). The level of maleic anhydride by IR was 1.03 wt % (conversion 41%) whereas the free maleic increased to 0.35 wt %.
The process was performed under nearly identical conditions as described in example 1 with as the major difference the adjustment to a reduced melt temperature in the maleic anhydride-grafting zone by means of screw speed reduction to 175 rpm. Melt temperature, measured by the melt thermocouple (24a) was 185° C.
The obtained maleic anhydride grafted rubber was a hazy, brownish rubber and the texture of the cold sample indicated presence of gels. This was confirmed by solubility in THF followed by filtration through a 25 micron filter resulting in a gel content of 1.4%. The melt flow index of the sample was not measured. The maleic anhydride functional level by IR method was 1.25 wt % (conversion 50%). The residue of free maleic was measured by HPLC to be 0.23 wt %.
| Number | Date | Country | Kind |
|---|---|---|---|
| 07024052.8 | Dec 2007 | EP | regional |
| Filing Document | Filing Date | Country | Kind | 371c Date |
|---|---|---|---|---|
| PCT/EP2008/066534 | 12/1/2008 | WO | 00 | 10/8/2010 |
| Number | Date | Country | |
|---|---|---|---|
| 61013359 | Dec 2007 | US |