1460733785-ae2df2cc-90c8-482c-8524-1151ef06ac84

We claim:

1. Apparatus for blow molding containers from a thermoplastic material, said apparatus comprising:
an extruder for continuously extruding at least one tube of the thermoplastic material downwardly along a vertical axis;
a first mold, said first mold having a first set of mold halves than open and close relative to each other to define, when closed, a first mold cavity;
a second mold, said second mold having a second set of mold halves that open and close relative to each other to define, when closed, a second mold cavity;
means for moving said first mold along a first closed path to present said first mold at a first position to engage, when open, a first finite length of the thermoplastic tube for blowing of the first finite length of the thermoplastic tube into a container as the first mold moves from the first position to a second position of the first closed path; and
means for moving said second mold along a second closed path to present said second mold at the first position to engage, while open, a second finite length of the thermoplastic tube into a container as the second mold moves along the second closed path to the second position;
the first position of the first closed path and the first position of the second closed path being the same, and the second position of the first closed path and the second position of the second closed path being the same, said apparatus comprising no more than two molds.
2. Apparatus for blow molding containers from a thermoplastic material, said apparatus comprising:
an extruder for continuously extruding at least one tube of the thermoplastic material downwardly along a vertical axis;
a first mold, said first mold having a first set of mold halves that open and close relative to each other to define, when closed, a first mold cavity;
a second mold, said second mold having a second set of mold halves that open and close relative to each other to define, when closed, a second mold cavity;
means for moving said first mold along a first closed path to present said first mold at a first position to engage, when open, a first finite length of the thermoplastic tube for blowing of the first finite length of the thermoplastic tube into a container as the first mold moves from the first position to a second position of the first closed path;
means for moving said second mold along a second closed path to present said second mold at the first position to engage, while open, a second finite length of the thermoplastic tube for blowing the second finite length of the thermoplastic tube into a container as the second mold moves along the second closed path to the second position;
the first position of the first closed path and the first position of the second closed path being the same, and the second position of the first closed path and the second position of the second closed path being the same; and
a single in-mold labelling device positioned beneath the extruder to introduce labels into the first and second molds as the first and second molds proceed along the first closed path and the second closed path, respectively.
3. Apparatus according to claim 1 and further comprising:
a single container take-out device for successively removing blown containers from the first mold and the second mold at the second position.
4. Apparatus according to claim 3 wherein:
the second position is horizontally spaced from the first position.
5. Apparatus according to claim 4 wherein:
the second position and the first position are at the same elevation.
6. Apparatus according to claim 1 wherein:
the first closed path includes a first leg extending outwardly in a first direction and downwardly from the first position; and
the second closed path includes a first leg extending outwardly in a direction opposed to the direction of the first leg of the first closed path and downwardly.
7. Apparatus according to claim 2 and further comprising:
a single container take-out device for successively removing blown containers from the first mold and the second mold at the second position.
8. Apparatus according to claim 7 wherein:
the second position is horizontally spaced from the first position.
9. Apparatus according to claim 8 wherein:
the second position and the first position are at the same elevation.
10. Apparatus according to claim 2 wherein:
the first closed path includes a first leg extending outwardly in a first direction and downwardly from the first position; and
the second closed path includes a first leg extending outwardly in a direction opposed to the direction of the first leg of the first closed path and downwardly.
11. A method of blow molding containers from a thermoplastic material, the method comprising:
substantially continuously extruding a thermoplastic material downwardly a vertical axis;
engaging a first finite length of the thermoplastic material in a first mold set at a first position of the first mold set;
moving the first mold set in a closed path having a first leg in which the first mold set is moved from the first position upwardly in a first direction and downwardly;
engaging a second finite length of the extruded thermoplastic material in a second mold at the position where the first finite length of the extruded thermoplastic material was engaged by the first mold set after the first mold set has moved along the first leg of its first closed path;
moving the second mold set along a second closed path having a first leg extending outwardly in a second direction from the first position and downwardly, the second direction being opposed to the first direction;
removing the blown containers from the first mold set at a second position of the second closed path, the second position being spaced horizontally away from the first position; and
thereafter removing the blown containers from the second mold set at a second position of the second mold set, the second position of the second mold set being the same as the second position of the first mold set;
the method comprising using no more than two molds.
12. A method of blow molding containers from a thermoplastic material, the method comprising:
substantially continuously extruding a thermoplastic material downwardly a vertical axis;
engaging a first finite length of the thermoplastic material in a first mold set a first position of the first mold set;
moving the first mold set in a closed path having a first in which the first mold set is moved from the first position upwardly in a first direction and downwardly;
engaging a second finite length of the extruded thermoplastic material in a second mold at the position where the first finite length of the extruded thermoplastic material was engaged by the first mold set after the first mold set has moved along the first leg of its first closed path;
moving the second mold set along a second closed path having a first leg extending outwardly in a second direction from the first position and downwardly, the second direction being opposed to the first direction;
removing the blown containers from the first mold set at a second position of the second closed path, the second position being spaced horizontally away from the first position;
thereafter removing the blown containers from the second mold set at a second position of the second mold set, the second position of the second mold set being the same as the second position of the first mold set; and
applying labels, in sequence, to interiors of the first mold set and the second mold set, the labels being applied to the interiors of the first mold set at the first position of the first mold set and being applied to the interiors of the second mold set at the first position of the second mold set.
13. Apparatus for blow molding containers from a thermoplastic material, said apparatus comprising:
an extruder for continuously extruding at least one tube of the thermoplastic material downwardly along a vertical axis;
a first mold, said first mold having a first set of mold halves that open and close relative to each other to define, when closed, a first mold cavity;
a second mold, said second mold having a second set of mold halves that open and close relative to each other to define, when closed, a second mold cavity;
means for moving said first mold along a first closed path to present said first mold at a first position to engage, when open, a first finite length of the thermoplastic tube for blowing of the first finite length of the thermoplastic tube into a container as the first mold moves from the first position to a second position of the first closed path;
means for moving said second mold along a second closed path to present said second mold at the first position to engage, while open, a second finite length of the thermoplastic tube for blowing the second finite length of the thermoplastic tube into a container as the second mold moves along the second closed path to the second position;
the first position of the first closed path and the first position of the second closed path being the same, and the second position of the first closed path and the second position of the second closed path being the same; and
means separate from the first mold set and the second mold set for grasping the extruded tube and for moving downwardly before a finite length of the extruded thermoplastic tube is grasped by the first mold set or the second mold set, the means for grasping releasing the extruded thermoplastic tube and withdrawing from the thermoplastic tube after the finite length of the thermoplastic tube has been grasped by the first mold set or the second mold set.
14. A method of blow molding containers from a thermoplastic material, the method comprising;
substantially continuously extruding a thermoplastic material downwardly a vertical axis;
engaging a first finite length of the thermoplastic material in a first mold set at a first position of the first mold set;
moving the first mold set in a closed path having a first leg in which the first mold set is moved from the first position upwardly in a first direction and downwardly;
engaging a second finite length of the extruded thermoplastic material in a second mold at the position where the first finite length of the extruded thermoplastic material was engaged by the first mold set after the first mold set has moved along the first leg of its first closed path;
moving the second mold set along a second closed path having a first leg extending outwardly in a second direction from the first position and downwardly, the second direction being opposed to the first direction;
removing the blown containers from the first mold set at a second position of the second closed path, the second position being spaced horizontally away from the first position; and
thereafter removing the blown containers from the second mold set at a second position of the second mold set, the second position of the second mold set being the same as the second position of the first mold set;
grasping the extruded thermoplastic tube by a device separate from the first mold means and the second mold means and before the first finite length of the thermoplastic tube or the second finite lengths of thermoplastic tube is grasped by the first mold means or the second mold means;
moving the device downwardly;
grasping the first finite length of the thermoplastic tube or the second finite lengths of the thermoplastic tube while it is engaged by the device;
releasing the thermoplastic tube by the device; and
withdrawing the device from the thermoplastic tube to permit the first finite length of the thermoplastic tube in the first mold means or the second finite length of thermoplastic tube in the second mold means, as the case may be, to move along the first closed path or the second closed path.

The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

1-12. (canceled)
13. A salt selected from the anhydrous and hydrated forms of (1R,2R,3S,5S)-2-methoxymethyl-3-(3,4-dichlorophenyl)-8-azabicyclo3.2.1octane tartrate.
14. The salt of claim 13 being selected from the anhydrous and hydrated forms of (1R,2R,3S,5S)-2-methoxymethyl-3-(3,4-dichlorophenyl)-8-azabicyclo3.2.1octane L-tartrate.
15. The salt of claim 13, being (1R,2R,3S,5S)-2-methoxymethyl-3-(3,4-dichlorophenyl)-8-azabicyclo3.2.1octane L-tartrate monohydrate.
16. The salt of claim 13, being an anhydrous form of (1R,2R,3S,5S)-2-methoxymethyl-3-(3,4-dichlorophenyl)-8-azabicyclo3.2.1octane L-tartrate.
17. The salt of claim 16, being the polymorphic form (form II) of (1R,2R,3S,5S)-2-methoxymethyl-3-(3,4-dichlorophenyl)-8-azabicyclo3.2.1octane L-tartrate anhydrate characterized by the following principal peaks in its X-ray powder diffraction pattern:
Peak No.
1
2
3
4
5
6
7
8
9
10
2 Theta \xb0 (Cu K\u03b1)
10.35
11.68
12.53
14.81
15
15.77
16.82
17.41
17.77
18.87
d space (\u212b)
8.5
7.6
7.1
6.0
5.9
5.6
5.3
5.1
5.0
4.7
Peak
11
12
13
14
15
16
17
18
19
2 Theta \xb0 (Cu K\u03b1)
20.29
21.26
21.66
23.44
23.73
25.44
25.99
27.58
28.14
d space (\u212b)
4.4
4.2
4.1
3.8
3.7
3.5
3.4
3.2
3.2
18. The salt of claim 16, being the polymorphic form (form III) of (1R,2R,3S,5S)-2-methoxymethyl-3-(3,4-dichlorophenyl)-8-azabicyclo3.2.1octane L-tartrate anhydrate characterized by the following principal peaks in its X-ray powder diffraction pattern:
Peak No.
1
2
3
4
5
6
7
8
9
10
2 Theta \xb0 (Cu K\u03b1)
5.37
10.6
10.82
11.58
11.88
12.79
14.78
16.27
16.5
17.03
d space (\u212b)
16.4
8.3
8.2
7.6
7.4
6.9
6.0
5.4
5.4
5.2
Peak
11
12
13
14
15
16
17
18
19
2 Theta \xb0 (Cu K\u03b1)
17.84
19.29
20.01
21.2
22.99
23.46
24.54
25.15
26.59
d space (\u212b)
5.0
4.6
4.4
4.2
3.9
3.8
3.6
3.5
3.3
19. The salt of claim 16, being the polymorphic form (form IV) of (1R,2R,3S,5S)-2-methoxymethyl-3-(3,4-dichlorophenyl)-8-azabicyclo3.2.1octane L-tartrate anhydrate characterized by the following principal peaks in its X-ray powder diffraction pattern:
Peak No.
1
2
3
4
5
6
7
8
9
10
2 Theta \xb0 (Cu K\u03b1)
5.31
10.19
11.23
12.13
12.35
12.69
14.31
14.55
14.77
16.43
d space (\u212b)
16.6
8.7
7.9
7.3
7.2
7.0
6.2
6.1
6.0
5.4
Peak
11
12
13
14
15
16
17
18
19
20
2 Theta \xb0 (Cu K\u03b1)
17.48
18.21
18.43
18.81
19.36
19.61
20.26
20.5
21.29
21.46
d space (\u212b)
5.1
4.9
4.8
4.7
4.6
4.5
4.4
4.3
4.2
4.1
Peak
21
22
23
24
25
26
27
28
29
30
31
32
2 Theta \xb0 (Cu K\u03b1)
21.95
22.53
22.77
23.38
23.59
23.9
24.45
25.02
25.56
26.19
26.83
27.21
d space (\u212b)
4.0
3.9
3.9
3.8
3.8
3.7
3.6
3.6
3.5
3.4
3.3
3.3
20. A pharmaceutical composition, comprising a therapeutically effective amount of a salt of claim 13, together with at least one pharmaceutically acceptable carrier, excipient or diluent.
21. Use of a salt of claim 13 for the manufacture of a medicament.
22. A method for treatment, prevention or alleviation of a disease or a disorder or a condition of a living animal body, including a human, which disorder, disease or condition is responsive to inhibition of monoamine neurotransmitter re-uptake in the central nervous system, which method comprises the step of administering to such a living animal body in need thereof a therapeutically effective amount of a salt according to claim 13.
23. The method according to claim 22, wherein the disease, disorder or condition ismood disorder, depression, atypical depression, depression secondary to pain, major depressive disorder, dysthymic disorder, bipolar disorder, bipolar I disorder, bipolar II disorder, cyclothymic disorder, mood disorder due to a general medical condition, substance-induced mood disorder, pseudodementia, Ganser’s syndrome, obsessive compulsive disorder, panic disorder, panic disorder without agoraphobia, panic disorder with agoraphobia, agoraphobia without history of panic disorder, panic attack, memory deficits, memory loss, attention deficit hyperactivity disorder, obesity, anxiety, generalized anxiety disorder, eating disorder, Parkinson’s disease, parkinsonism, dementia, dementia of ageing, senile dementia, Alzheimer’s disease, acquired immunodeficiency syndrome dementia complex, memory dysfunction in ageing, specific phobia, social phobia, post-traumatic stress disorder, acute stress disorder, drug addiction, drug abuse, cocaine abuse, nicotine abuse, tobacco abuse, alcohol addiction, alcoholism, pain, chronic pain, inflammatory pain, neuropathic pain, migraine pain, tension-type headache, chronic tension-type headache, pain associated with depression, fibromyalgia, arthritis, osteoarthritis, rheumatoid arthritis, back pain, cancer pain, irritable bowel pain, irritable bowel syndrome, post-operative pain, post-stroke pain, drug-induced neuropathy, diabetic neuropathy, sympathetically-maintained pain, trigeminal neuralgia, dental pain, myofacial pain, phantom-limb pain, bulimia, premenstrual syndrome, late luteal phase syndrome, post-traumatic syndrome, chronic fatigue syndrome, urinary incontinence, stress incontinence, urge incontinence, nocturnal incontinence, sexual dysfunction, premature ejaculation, erectile difficulty, erectile dysfunction, eating disorders, anorexia nervosa, sleep disorders, autism, mutism, trichotillomania, narcolepsy, post-stroke depression, stroke-induced brain damage, stroke-induced neuronal damage or Gilles de la Tourettes disease.

1460733777-986fd080-8f22-4e1c-a8de-f882faa246a7

1. A stripping composition comprising at least one of alcohols having a cyclic ether structure in the molecule thereof as component (a), an anticorrosive as component (b) and lactic acid as component (c).
2. The stripping composition according to claim 1, wherein said alcohol having a cyclic ether structure in the molecule thereof is represented by the following chemical formula:
X\u2014(A\u2014OH)n
(where X is a cyclic ether structure, A is a hydrocarbon chain having 1 to 8 carbon atoms, and n is an integer of 1 or more and represents the number of substituents to the cyclic ether structure).
3. The stripping composition according to claim 1, wherein said alcohol having a cyclic ether structure in the molecule thereof is furfuryl alcohol or tetrahydrofurfuryl alcohol.
4. The stripping composition according to claim 1, wherein the component (a) is a mixture of alcohol having a cyclic ether structure in the molecule thereof and alcohol having a glycol ether structure in the molecule thereof.
5. The stripping composition according to claim 1, comprising water as component (d).
6. The stripping composition according to claim 5, wherein the content of said water is less than 70% by weight.
7. The stripping composition according to claim 1, wherein said component (b) is an anticorrosive selected fromthe grop consisting of (1) purine derivatives; (2) compounds of dibasicity of higher, each having at least one carboxylic group, having an ability to form a chelate with a metal, and having a hydrophobic group; (3) the mixture of said purine derivatives and quinaldinic acid, or (4) the mixture of said compounds of (2) and quinaldinic acid; (5) the mixture of said purine derivatives of (1) and said compounds of (2); and (6) the mixture of said purine derivatives of (1), said compounds of (2), and quinaldinic acid.
8. The stripping composition according to claim 7, wherein said compound of (2) is o-phthalic acid.
9. A stripping composition comprising at least one of alcohols having an ether-bond in the molecule thereof as component (a), and an anticorrosive as component (b), wherein said component (b) is an anticorrosive selected from the group consisting of (1) adenine or the derivative thereof; (2) compounds of dibasicity of higher each having at least one carboxylic group, having an ability to form a chelate with a metal, and having a hydrophobic group; (3) the mixture of said purine derivatives and quinaldinic acid, or (4) the mixture of said compounds of (2) and quinaldinic acid; (5) the mixture of said purine derivatives of (1) and said compounds of (2); and (6) the mixture of said purine derivatives of (1), said compounds of (2), and quinaldinic acid.
10. The stripping composition according to claim 1, further comprising at least one of amines as component (e).
11. The stripping composition according to claim 10, wherein said amine is an alkanolamine.
12. The stripping composition according to claim 10, wherein the base equivalent value of said amines is larger than the equivalent value of the acid component in the system.
13. The stripping composition according to claim 9, further comprising at least one of amines as component (e).
14. The stnpping composition according to claim 13, wherein said amine is an alkanolamine.
15. The stripping composition according to claim 13, wherein the base equivalent value of said amines is larger than the equivalent value of the acid component in the system.
16. The stripping composition according to claim 5, further comprising at least one of amines as component (e).
17. The stripping composition according to claim 16, wherein said amine is an alkanolamine.
18. The stripping composition according to claim 16, wherein the base equivalent value of said amines is larger than the equivalent value of the acid component in the system.
19. The stripping composition according to claim 16, comprising 0.001 to 15% by weight of component (b), 1 to 13.5% by weight of component (c), 2 to 70% by weight of component (d), 1 to 40% by weight of component (e), and 30% by weight or more component (a) as the balance.
20. A stripping composition comprising at least one of alcohols having an ether bond in the molecule thereof as component (a), at least one of hydrofluoric acid and a salt thereof as component (c\u2032), and water as component (d).
21. The stripping composition according to claim 20, wherein said component (a) is an alcohol having a cyclic ether structure in the molecule thereof.
22. The stripping composition according to claim 21, wherein said alcohol having a cyclic ether structure in the molecule thereof is furfuryl alcohol or tetrahydrofurfuryl alcohol.
23. The stripping composition according to claim 20, further comprising at least one of amines as component (e).
24. The stripping composition according to claim 23, wherein said amine is an alkanolamine.
25. The stripping composition according to claim 23, comprising 0.01 to 15% by weight of component (c\u2032), 5 to 30% by weight of component (d), 10 to 40% by weight of component (e), and 20% by weight or more component (a) as the balance.
26. The stripping composition according to claim 23, further comprising an anticorrosive as component (b).
27. The stripping composition according to claim 26, wherein said component (b) is an anticorrosive selected from the group consisting of (1) purine derivatives; (2) compounds of dibasicity of higher, each having at least one carboxylic group, having an ability to form a chelate with a metal, and having a hydrophobic group; (3) the mixture of said purine derivatives and quinaldinic acid, or (4) the mixture of said compounds of (2) and quinaldinic acid; (5) the mixture of said purine derivatives of (1) and said compounds of (2); and (6) the mixture of said purine derivatives of (1), said compounds of (2), and quinaldinic acid.
28. The stripping composition according to claim 27, wherein said compound of (2) is o-phthalic acid.
29. The stripping composition according to claim 27, wherein said purine derivative of (1) is adenine or a derivative thereof.
30. The stripping composition according to claim 26, comprising 0.001 to 15% by weight of component (b).
31. The stripping composition according to claim 9, wherein said component (a) is an alcohol having a cyclic ether structure in the molecule thereof.
32. The stripping composition according to claim 31, wherein said alcohol having a cyclic ether structure in the molecule thereof is represented by the following chemical formula:
X\u2014(A\u2014OH)n

(where X is a cyclic ether structure, A is a hydrocarbon chain having 1 to 8 carbon atoms, and n is an integer of 1 or more and represents the number of substituents to the cyclic ether structure).
33. The stripping composition according to claim 31, wherein said alcohol having a cyclic ether structure in the molecule thereof is furfuryl alcohol or tetrahydrofurfuryl alcohol.
34. The stripping composition according to claim 9, wherein the component (a) is a mixture of alcohol having a cyclic ether structure in the molecule thereof and alcohol having a glycol ether structure in the molecule thereof.
35. The stripping composition according to claim 9, comprising water as component (d).
36. The stripping composition according to claim 35, wherein the content of said water is less than 70% by weight.
37. The stripping composition according to claim 9, further comprising at least one of organic or inorganic weak acids as component (c).
38. The stripping composition according to claim 37, wherein said component (c) is lactic acid.
39. The stripping composition according to claim 37, comprising water as component (d).
40. The stripping composition according to claim 39, wherein the content of said water is less than 70% by weight.
41. The stripping composition according to claim 39, further comprising at least one of amines as component (e).
42. The stripping composition according to claim 41, wherein said amine is an alkanolamine.
43. The stripping composition according to claim 41, wherein the base equivalent value of said amines is larger than the equivalent value of the acid component in the system.
44. The stripping composition according to claim 41, comprising 0.001 to 15% by weight of component (b), 0 to 15% by weight of component (c), 2 to 70% by weight of component (d), 1 to 40% by weight of component (e), and 30% by weight or more of component (a) as the balance.

The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

1. Cosmetic composition in stick form, which can be applied dry, for caring for andor making up keratin fibres, (i) which is in the form of an emulsion comprising a fatty phase dispersed in an aqueous phase, the said fatty phase comprising carnauba wax andor synthetic beeswax, in a content of at least 2% by weight relative to the total weight of the said composition, and (ii) which has a shear hardness of between 375 gm and 5000 gm, the said shear hardness being measured at 20\xb0 C. on a cylindrical stick, using a rigid tungsten wire 250 \u03bcm in diameter, by advancing the wire relative to the stick at a rate of 100 mmminute.
2. Composition according to the preceding claim 1, wherein it may be obtained, or is obtained, via a process comprising at least one step that involves a removal of heat, allowing a lowering of the temperature of the composition to less than 4\xb0 C. in less than 30 minutes.
3. Composition according to claim 2, wherein the carnauba wax andor the synthetic beeswax is included in a content of at least 3% by weight, relative to the total weight of the said composition.
4. Composition according to claim 1, wherein the shear hardness is between 500 gm and 2500 gm.
5. Composition according to claim 1, wherein it has a solids content of less than or equal to 45% by weight, relative to the total weight of the said composition.
6. Composition according to claim 1, wherein it also comprises at least one additional wax, other than synthetic beeswax and carnauba wax, chosen from waxes that are solid at room temperature, optionally in the form of an aqueous wax dispersion, of animal, plant, mineral or synthetic origin, and mixtures thereof, andor having a tack of greater than or equal to 0.7 N.s and a hardness of less than or equal to 3.5 MPa.
7. Composition according to claim 6, wherein the additional wax is chosen from (i) hydrocarbon-based waxes such as natural beeswax (or blanched beeswax), lanolin wax, Chinese insect waxes, rice wax, candelilla wax, ouricury wax, esparto grass wax, cork fibre wax, sugarcane wax, Japan wax, sumach wax, montan wax, microcrystalline waxes, paraffins, ozokerite, polyethylene waxes, the waxes obtained by Fischer-Tropsch synthesis, waxy copolymers and esters thereof, (ii) the waxes obtained by catalytic hydrogenation of animal or plant oils containing linear or branched C8-C32 fatty chains, (iii) silicone waxes, (iv) fluoro waxes, (v) the wax obtained by hydrogenation of olive oil esterified with stearyl alcohol, and (vi) the waxes obtained by hydrogenation of castor oil esterified with cetyl alcohol.
8. Composition according to claim 1, wherein it also comprises ozokerite wax.
9. Composition according to claim 1, wherein it has a total content of wax(es) of between 2% and 35% by weight.
10. Composition according to claim 1, wherein it also comprises at least one emulsifier chosen from anionic, nonionic, cationic and amphoteric surfactants, and polymeric surfactants, and mixtures thereof
the nonionic surfactants being chosen from:
nonionic surfactants with an HLB of greater than or equal to 8 at 25\xb0 C., and
nonionic surfactants with an HLB of less than 8 at 25\xb0 C.;
the anionic surfactants being chosen from salts of C16-C30 fatty acids, salts of polyoxyethylenated fatty acids, phosphoric esters and salts thereof, sulfosuccinates, alkyl ether sulfates, isethionates, acylglutamates, soybean derivatives, citrates, praline derivatives, lactylates, sarcosinates, sulfonates and glycinates, and
the amphoteric surfactants being chosen from N-acylamino acids and amine oxides, and silicone surfactants such as dimethicone copolyol phosphates.
11. Composition according to claim 9, wherein it comprises at least one anionic surfactant chosen from salts of C16-C30 fatty acids, phosphoric esters and salts thereof, and optionally at least one nonionic surfactant chosen from oxyethylenated andor oxypropylenated ethers (which may comprise from 1 to 150 oxyethylene andor oxypropylene groups) of fatty alcohols esters of fatty acids (especially of C5-C24 and preferably C16-C22 acids) and of polyols, esters of fatty acids and of oxyethylenated andor oxypropylenated glycerol ethers (which may comprise from 1 to 150 oxyethylene andor oxypropylene groups), and mixtures thereof.
12. Composition according to claim 9, wherein it comprises from 0.01% to 30% by weight.
13. Process for coating keratin fibres, comprising at least the steps consisting in:
placing the said keratin fibres in contact with at least part of the surface of a stick comprising a cosmetic composition as defined according to claim 1; and then
effecting a relative movement between the surface of the said stick and the said keratin fibres, so as to bring about erosion of the said stick and the formation of a deposit of at least one coat of the said cosmetic composition on the said keratin fibres.
14. Device for conditioning and applying a cosmetic composition for caring for andor making up keratin fibres, wherein it comprises at least:
one stick comprising a cosmetic composition as defined according to claim 1;
one support for the said stick; and
optionally at least one application element, the said application element possibly being equipped with members for separating andor combing the said keratin fibres.
15. Stick, which can be applied dry, for making up andor caring for keratin materials, which may be obtained, or is obtained, via the process comprising at least one of the following steps consisting successively in:
heating a composition containing a fatty phase and an aqueous phase, the said fatty phase comprising carnauba wax andor synthetic beeswax, in a content of at least 2% by weight relative to the total weight of the said composition, to a temperature of between 80\xb0 C. and 100\xb0 C.,
emulsifying the said phases especially using a stirrer so as to obtain a composition of emulsion type with an aqueous continuous phase,
hot-casting the said composition in a conditioning device, and then
cooling the said composition to temperature of between \u221230\xb0 C. and 10\xb0 C., until the composition is in the form of a stick.
16. Stick, which can be applied dry, for making up andor caring for keratin fibres,
(i) which is in the form of an emulsion comprising a fatty phase dispersed in an aqueous phase, the said fatty phase comprising carnauba wax andor synthetic beeswax, in a content of at least 2% by weight, relative to the total weight of the said composition,
(ii) which has a shear hardness of between 375 gm and 5000 gm, the said shear hardness being measured at 20\xb0 C. on a stick using a rigid tungsten wire 250 \u03bcm in diameter, by advancing the wire relative to the stick at a rate of 100 mmminute,
(iii) the said stick being obtained via a process comprising at least the following steps consisting successively in:
heating the said emulsion to a temperature of between 80\xb0 C. and 100\xb0 C.,
emulsifying the said phases especially using a stirrer so as to obtain a composition of emulsion type with an aqueous continuous phase,
hot-casting the said composition in a conditioning device, and then
removing heat, to allow a lowering of the stick temperature to less than 4\xb0 C. in less than 30 minutes.