Rotary Evaporator
20170113159 ยท 2017-04-27
Assignee
Inventors
Cpc classification
International classification
Abstract
A rotary evaporator comprises a device (10) for securing a ground connection, comprising a ground sleeve and a ground core, between an evaporator piston and a vapor leadthrough. The securing device has a receiving opening (17) for that end of the evaporator piston provided with the ground sleeve, and a securing element (13) which can be moved between a retaining position and a release position and which has a retaining section (31) that, in the retaining position, projects into the receiving opening (17) and that, in the release position, is at least partially retracted from the receiving opening (17), so as to secure or release, as desired, that end of the evaporator piston provided with the ground sleeve.
Claims
1-20. (canceled)
21. A rotary evaporator having an apparatus for the securing of a ground joint between an evaporator flask and a vapor leadthrough, the ground joint comprising: a ground socket; and a ground cone, the securing apparatus having: a receiver opening for an end of the evaporator flask that is provided with the ground socket; and a securing element that is adjustable between a holding position and a release position, the securing element having a holding section that projects into the receiver opening in the holding position and with the holding section being at least partly retracted from the receiver opening in the release position to selectively hold or release the end of the evaporator flask that is provided with the ground socket.
22. The rotary evaporator in accordance with claim 21, wherein the securing element is supported in a plane extending transversely to an introduction direction of the ground socket and/or continuously displaceably.
23. The rotary evaporator in accordance with claim 21, wherein the securing element is preloaded in the direction of the holding position.
24. The rotary evaporator in accordance with claim 21, wherein the securing element has a run-on ramp that cooperates with the end of the evaporator flask provided with the ground socket on its introduction into the receiver opening to press the securing element out of its holding position into the release position.
25. The rotary evaporator in accordance with claim 21, wherein the securing apparatus comprises an actuation element by means of which the securing element can be adjusted from the holding position into the release position.
26. The rotary evaporator in accordance with claim 25, wherein the actuation element is formed in one part with the securing element.
27. The rotary evaporator in accordance with claim 21, wherein the securing element is configured as a slider plate.
28. The rotary evaporator in accordance with claim 27, wherein axes of the receiver opening and of the passage opening are offset in parallel with one another in the holding position and/or extend coaxially with one another in the release position.
29. The rotary evaporator in accordance with claim 27, wherein the holding section is formed by a part of an opening margin of the securing element bounding the passage opening.
30. The rotary evaporator in accordance with claim 21, wherein a respective spring element is provided at at least one narrow side of the securing element to preload the securing element in the direction of the holding position.
31. The rotary evaporator in accordance with claim 30, wherein the respective spring element is, on the one hand, supported at a respective outwardly projecting abutment formed at the respective narrow side and is, on the other hand, supported at a respective counter bearing provided in the securing apparatus.
32. The rotary evaporator in accordance with claim 21, wherein the securing element is supported by means of a sliding support in the securing apparatus.
33. The rotary evaporator in accordance with claim 21, wherein the holding section has a recess in its region cooperating with the end of the evaporator flask provided with the ground socket.
34. The rotary evaporator in accordance with claim 21, wherein the holding section is provided with a fixed-shape, elastically deformable plastic in its region cooperating with the end of the evaporator flask provided with the ground socket.
35. The rotary evaporator in accordance with claim 21, wherein the securing apparatus comprises a fastening section having first and second ends, with the first end being fastened to a rotary drive of the rotary evaporator and the second end being provided with the receiver opening.
36. The rotary evaporator in accordance with claim 35, wherein the first end of the fastening section is provided with a thread by means of which the fastening section is screwed onto a counter-thread formed at the rotary drive.
37. The rotary evaporator in accordance with claim 35, wherein an annular cover is fastened to the other end of the fastening section and the receiver opening extends through said annular cover.
38. The rotary evaporator in accordance with claim 21, wherein the securing element is arranged in a sliding seat.
39. The rotary evaporator in accordance with claim 38, wherein the sliding seat is formed between a fastening section and an annular cover.
40. The rotary evaporator in accordance with claim 39, wherein the securing element has at least one elongate hole through which a respective fastening means is led for fastening the cover to the fastening section.
41. The apparatus in accordance with claim 39, the cover has at least one counter bearing for a respective spring element to preload the securing element in the direction of the holding position.
42. An apparatus for the securing of a ground joint between an evaporator flask and a vapor leadthrough, with the ground joint comprising: a ground socket; and a ground cone, wherein the securing apparatus has a receiver opening for the end of the evaporator flask provided with the ground socket and has a securing element that is adjustable between a holding position and a release position, with the securing element having a holding section that projects into the receiver opening in the holding position and with the securing element being at least partly retracted from the receiver opening in the release position to selectively hold or release the end of the evaporator flask provided with the ground socket.
Description
[0031] The invention will be described in the following by way of example with reference to the drawings.
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040] The securing apparatus 10 shown in
[0041] The fastening section 11 of the securing apparatus 10 shown in a respective single representation in
[0042] The annular cover 15 shown in a respective single representation in
[0043] If the fastening section 11 is screwed to the hub of the rotary drive of the rotary evaporator, the ground cone of the vapor leadthrough rotationally fixedly received in the hub of the rotary drive projects into the fastening section 11 such that the ground socket of an end of a rotary flask led sufficiently far through the receiver opening 17 moves into a sealing and holding engagement with the ground cone of the vapor leadthrough. In the operation of the rotary drive, the hub of the rotary drive, the securing apparatus 10, the vapor leadthrough and the evaporator flask rotate about their common longitudinal axis and distillate evaporated from the evaporator flask can be supplied to a cooler via the vapor leadthrough.
[0044] As can be seen from
[0045] The slider plate 13 respectively shown in an individual representation in
[0046] The passage opening 21 has a substantially circular cross-section with a diameter at least substantially identical to the receiver opening 17 of the securing apparatus 10. Differing from an exactly circular cross-section, the passage opening 21, however, additionally has a recess 23 of the shape of an arc of a circle that is emphasized by a dashed line in
[0047] The slider plate 13 is continuously displaceably arranged in an elongate guide recess 51 formed at the rear side of the cover 15 that extends between two guide walls 53 of the cover 15 opposite one another with respect to the displacement direction V. Respective hollows 43 that are bounded by respective necks 45 in the displacement direction V are formed in the guide walls 53 of the cover 15. Furthermore, respective radially outwardly projecting abutments 41 are provided at mutually opposite narrow sides 39 of the slider plate 13 and project into the hollows 43 of the cover 15 in the assembled state of the securing apparatus 10 such that the slider plate 13 is captively held between the fastening section 11 and the cover 15.
[0048] The slider plate 13 is slidingly displaceably guided in the displacement direction V extending transversely, in particular perpendicular, to the introduction direction E of the end of the evaporator flask provided with the ground socket through a front end face 61 of the fastening section 11, the rear side 63 of the cover 15 and the guide walls 53. To enable a low-friction sliding of the slider plate 13, a plurality of mutually parallel runners 29 are arranged at both flat sides 65 of the slider plate 13.
[0049] A respective compression spring, not shown, is provided between the necks 45 and the abutments 41 at both narrow sides 39 of the slider plate 13. The respective compression spring is in this respect supported at a respective neck 45 of the respective hollow 43 of the cover 15 and the respective abutment 41 of the slider plate 13 such that the slider plate 13 is preloaded in the direction of the holding position. This in particular means that the slider plate 13 is also located in the holding position when no evaporator flask has been inserted into the receiver opening 21.
[0050] In the holding position of the slider plate 13 correspondingly shown in
[0051] An integral push button 25 is provided at an end of the slider plate 13 remote from the recess 23 and is received in the assembled state of the securing apparatus 10 in a cut-out 27 (
[0052] To fasten an evaporator flask in a secured manner to the vapor leadthrough of a rotary evaporator or to release it therefrom, the following procedure can therefore be carried out.
[0053] For the secured fastening, the end of the evaporator flask provided with a ground socket is introduced into the securing apparatus 10 through the receiver opening 17 into which the slider plate 13 projects in its holding position. The push button 25 does not necessarily have to be actuated for this purpose since the opening margin 30 of the slider plate 13 is at least provided with an inclined chamfer 35 shown in
[0054] To remove the evaporator flask from the rotary drive, the security is released in that the push button 25 is actuated and the slider plate 13 is thus displaced into its release position to release the receiver opening 17 for a removal. The end of the evaporator flask provided with the ground socket can then be pulled of the ground cone of the vapor leadthrough and the evaporator flask can be released from the rotary evaporator.
[0055] Since the slider plate 13 cannot only adopt the holding position shown in
REFERENCE NUMERAL LIST
[0056] 10 securing apparatus [0057] 11 fastening section [0058] 12 rear end [0059] 13 slider plate [0060] 14 internal thread [0061] 15 cover [0062] 16 front end [0063] 17 receiver opening [0064] 19 front ring surface [0065] 20 passage hole [0066] 21 passage opening [0067] 23 recess [0068] 25 push button [0069] 27 cut-out [0070] 29 runner [0071] 30 opening margin [0072] 31 holding section [0073] 33 elastomer insert [0074] 35 chamfer [0075] 37 elongate hole [0076] 39 narrow side [0077] 41 abutment [0078] 43 hollow [0079] 45 neck [0080] 51 guide recess [0081] 53 guide wall [0082] 55 blind hole [0083] 57A semi-round cut-out of the fastening section [0084] 57B semi-round cut-out of the cover [0085] 61 front end face [0086] 63 rear side of the cover [0087] 65 flat side [0088] E introduction direction [0089] V displacement direction [0090] Z cylinder axis