CONVEYING A MATERIAL TO BE CONVEYED
20200103170 ยท 2020-04-02
Inventors
Cpc classification
F27B9/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B9/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D2007/063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F27B9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A conveying system (1) for conveying a material along a conveying path. The system (1) includes a system housing (3) having a conveying chamber (5), in which the conveying path is arranged, and having at least one secondary chamber (6 to 8), which is connected to the conveying chamber (5) by at least one passage opening and has a fluid atmosphere that is physically and/or chemically different from the fluid atmosphere in the conveying chamber (5). The at least one passage opening (9, 10) and the fluid atmospheres in the conveying chamber (5) and the at least one secondary chamber (6 to 8) set a defined fluid flow in the system housing (3).
Claims
1. A conveying installation for conveying a material for being conveyed along a conveying path, the conveying installation comprising: an installation housing including a conveying chamber in which the conveying path is arranged; at least one secondary chamber connected by at least one passage opening to the conveying chamber; the secondary chamber is configured to have a first fluid atmosphere therein and the conveying chamber is configured and operable to have a second fluid atmosphere therein; the first and second fluid atmospheres differ physically and/or chemically from each other; the at least one passage opening and the second and the first fluid atmospheres in the conveying chamber and in the at least one secondary chamber respectively are configured for setting a defined fluid flow in the installation housing; the conveying mechanism having at least one component configured for conveying the material being conveyed and the at least one component is arranged in the at least one secondary chamber; and the conveying mechanism having a traction mechanism drive comprising at least one traction mechanism, which is arranged in at least one of the secondary chambers, and having carrier elements which are movable for conveying the material for being conveyed.
2. The conveying installation as claimed in claim 1, further comprising the installation housing having at least one fluid inlet and at least one fluid outlet, and the installation housing is of fluid-tight construction, except for the at least one fluid inlet and the at least one fluid outlet.
3. The conveying installation as claimed in claim 1, further comprising the carrier elements separate the conveying chamber from the secondary chamber in which the at least one traction mechanism is arranged.
4. The conveying installation as claimed in claim 1, further comprising the carrier elements are arranged in the conveying chamber and the carrier elements project through a passage opening into at least one of the secondary chambers.
5. The conveying installation as claimed in claim 4, further comprising the carrier elements project into the at least one secondary chamber, the at least one secondary chamber is arranged laterally at the conveying chamber and at least one traction mechanism is arranged in the secondary chamber.
6. The conveying installation as claimed in claim 1, further comprising a fluid circuit system which comprises at least one of the secondary chambers and which is configured for conducting a fluid through at least one of the passage openings from the secondary chamber into the conveying chamber.
7. The conveying installation as claimed in claim 6, further comprising the fluid circuit system has at least one heat exchanger for cooling a fluid fed to one of the secondary chambers.
8. The conveying installation as claimed in claim 1, further comprising a fluid recycling unit configured for receiving fluid that exits from the conveying chamber and for feeding the fluid that exited back into the conveying chamber.
9. The conveying installation as claimed in claim 8, further comprising the fluid recycling unit includes a fluid cleaning unit for cleaning the fluid received from the conveying chamber by the fluid cleaning unit.
10. The conveying installation as claimed in claim 1, further comprising: a closed-loop control system for closed-loop control of a fluid flow from at least one of the secondary chambers into the conveying chamber dependent on a pressure difference between a pressure in the secondary chamber and a pressure in the conveying chamber.
11. A method for operating a conveying installation the installation being according to claim 1, the method further comprising setting a higher fluid pressure in each of the secondary chambers than the fluid pressure in the conveying chamber.
12. The method as claimed in claim 11, further comprising receiving fluid from the conveying chamber by a fluid recycling unit and feeding the fluid back from the recycling unit into the conveying chamber directly and/or via at least one of the secondary chambers.
13. The method as claimed in claim 12, further comprising cleaning the fluid in the fluid recycling unit before being feeding the fluid back into the conveying chamber.
14. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
DESCRIPTION OF EMBODIMENTS
[0031] Parts which correspond to one another are denoted by the same reference designations in the Figures.
[0032]
[0033] The material being conveyed is for example a reactive and/or hot and/or abrasive material being conveyed. In particular, harmful and/or environmentally damaging fluid may escape from the material being conveyed, which fluid therefore should not escape in uncontrolled fashion into the environment. Furthermore, dust may form during the transport of the material being conveyed in the conveying chamber 5.
[0034] The conveying chamber 5 and the secondary chamber 7 have fluid atmospheres which fluid atmospheres differ physically and/or chemically. In particular, the fluid atmosphere in the secondary chamber 7 has a higher fluid pressure than the fluid atmosphere in the conveying chamber 5. Fluid flows through the passage openings 9 from the secondary chamber 7 substantially into the conveying chamber 5, and do not flow in the opposite direction from the conveying chamber 5 into the secondary chamber 7. The fluid atmosphere in the conveying chamber 5 may, in particular in the case of a hot material being conveyed, have a higher temperature than the fluid atmosphere in the secondary chamber 7, and/or the atmosphere in the conveying chamber may contain gas that has escaped from the material being conveyed and/or may contain dust that forms during the transport of that material being conveyed. The relatively high fluid pressure in the secondary chamber 7 and the resulting fluid flow from the secondary chamber 7 into the conveying chamber 5 advantageously also prevent ingress of the gas and/or dust from the conveying chamber 5 into the secondary chamber 7.
[0035] The conveying path runs in the conveying chamber 5 between a first conveying chamber end 13 and a second conveying chamber end 15. In the region of the first conveying chamber end 13, material being conveyed is introduced into the conveying chamber 5. At the second conveying chamber end 15, the material being conveyed is discharged from the conveying chamber 5. The first conveying chamber end 13 is for example configured to be closed or closable, whereas the second conveying chamber end 15 has a first fluid outlet 17 through which the fluid flows out of the conveying chamber 5, for example together with the material being conveyed. The installation housing 3 furthermore has a second fluid outlet 18 through which fluid circulating in the fluid circuit system 11 is discharged from the secondary chamber 7. Furthermore, the installation housing 3 may have further fluid outlets 19 through which fluid can be extracted from the conveying chamber 5, for example if a fluid pressure in the conveying chamber 5 overshoots a pressure threshold value. Such fluid outlets 19 may for example have in each case one safety element, for example a safety valve, for example if a safety study considers this to be necessary.
[0036] The installation housing 3 furthermore has a first fluid inlet 21, through which fluid circulating in the fluid circuit system is fed into the secondary chamber 7. Furthermore, the installation housing 3 may have further fluid inlets 22, through which fluid can be fed to the conveying chamber 5, for example in order to influence a fluid flow in the conveying chamber 5. Aside from the fluid outlets 17 to 19 and the fluid inlets 21, 22, the installation housing 3 is of fluid-tight design. In other exemplary embodiments, the first fluid inlet 21 and/or the second fluid outlet 18 may also be arranged at locations other than the locations of the secondary chamber 7 shown in
[0037] By means of this substantially fluid-tight design of the installation housing 3, escape of fluid from the installation housing 3 is restricted to the fluid outlets 17 to 19, such that an only relatively small amount of fluid escapes from the installation housing 3. Furthermore, fluid that has been discharged from the second fluid outlet 18 is fed back to the secondary chamber 7 through the fluid circuit system 11 via the first fluid inlet 21. Moreover, fluid emerging from the first fluid outlet 17 and/or from at least one further fluid outlet 19 may possibly be at least partially collected, fed to the fluid circuit system 11 (possibly after cleaning, see
[0038] A further advantage of the substantially fluid-tight design of the installation housing 3 and of the higher fluid pressure in the secondary chamber 7 in relation to the conveying chamber 5 is that harmful and/or environmentally damaging fluid that has escaped from the material being conveyed can likewise emerge from the conveying chamber 5 only at the fluid outlets 17, 19 and can be disposed of there. The same applies to dust that is situated in the conveying chamber 5.
[0039] Components of the conveying mechanism for conveying the material being conveyed are arranged in the secondary chamber 7.
[0040] The fluid circuit system 11 conducts fluid through the secondary chamber 7, out of the secondary chamber 7 through the second fluid outlet 18, and, for example by means of pipelines, via a turbomachine 25 and optionally via a heat exchanger 27 and back into the secondary chamber 7 through the first fluid inlet 21. Furthermore, the fluid circuit system 11 has a fluid feed 29, through which fluid can be fed to the fluid circuit system 11, particularly to replace fluid that is discharged from the secondary chamber 7 into the conveying chamber 5 through the passage openings 9.
[0041] The turbomachine 5 is a blower or a pump, depending on whether the fluid is a gas or a liquid.
[0042] The optional heat exchanger 27 serves for cooling the fluid. It is advantageous in particular in cases in which a hot material being conveyed is transported in the conveying chamber 5 and also components, all of which are to be cooled, of a conveying mechanism for conveying the material being conveyed are arranged in the secondary chamber 7. In these cases, the fluid conducted into the secondary chamber 7 and cooled by the heat exchanger 27 can advantageously also be used for cooling the components of the conveying mechanism arranged in the secondary chamber 7. Alternatively or in addition, the conveying installation may have a separate cooling device (not illustrated) for cooling the secondary chamber 7. For example, the cooling device may have a cooling pipe which is fillable with a coolant or may have multiple cooling pipes, wherein at least one cooling pipe may be situated within the secondary chamber 7.
[0043]
[0044] Modifications of the exemplary embodiment shown in
[0045]
[0046] The conveying installation 1 comprises an installation housing 3, which has a conveying chamber 5, three secondary chambers 6 to 8, and two additional chambers 31, 32.
[0047] The conveying chamber 5 is of a generally ring-shaped form including two horizontally running horizontal portions 36, 38 and two vertically running diverting portions 38, 40. The lower horizontal portion 34 runs below and is spaced apart from an upper horizontal portion 36. The diverting portions 38, 40 form oppositely situated conveying chamber ends 13, 15 of the conveying chamber 5 and each diverting portion connects the two horizontal portions 34, 36 to one another. The conveying path runs in the upper horizontal portion 36 of the conveying chamber 5 between a first conveying chamber end 13 formed by a first diverting portion 38 and a second conveying chamber end 15 formed by a second diverting portion 40. In the vicinity of the first conveying chamber end 13, the installation housing 3 has a charging inlet 42 which is arranged above the upper horizontal portion 36, through which material being conveyed is introduced into the conveying chamber 5. In the region of the second conveying chamber and 15, the installation housing 3 has a discharge opening 44 which is arranged below the second diverting portion 40 and through which material being conveyed is discharged out of the conveying chamber 5.
[0048] The secondary chambers 6 to 8 are each of ring-shaped form. The conveying chamber 5 runs around a first secondary chamber 6, wherein a bottom side of the upper horizontal portion 36, a top side of the lower horizontal portion 34 and the two diverting portions 38, 40 of the conveying chamber 5 join the first secondary chamber 6. A second secondary chamber 7 and a third secondary chamber 8 are arranged at different sides of the first secondary chamber 6 and each adjoins an outer side of the first secondary chamber 6 along the entire ring-shaped course thereof.
[0049] The conveying chamber 5 and the first secondary chamber 6 are separated from one another by carrier elements 46, which transport the material being conveyed. The material being conveyed is for example transported directly by the carrier elements 46 or in containers arranged on the carrier elements 46. The carrier elements 46 are configured for example as carrier plates. Traction mechanisms 48 are arranged in the first secondary chamber 6. Each traction mechanism runs in encircling fashion within the first secondary chamber 6 along its ring-shaped course and each is connected to the carrier elements 46. The traction mechanisms 48 are for example configured as drive chains. The carrier elements 46 are movable with the traction mechanisms 48 along a closed path, which comprises the conveying path, in the installation housing 3. Each traction mechanism 48 runs, below the upper horizontal portion 36 and above the lower horizontal portion 34 of the conveying chamber 5, rectilinearly between two diverting regions 50, 52 which are each situated in the region of one of the conveying chamber ends 13, 15 and in which the traction mechanism 48 is diverted.
[0050] The traction mechanisms 48 are each driven by drive wheels 54, each arranged in a diverting region 50, 52 of the traction mechanisms 48. The traction mechanisms 48 and their drive wheels 54 form a traction mechanism drive, which move the carrier elements 46. A respective one of the two additional chambers 31, 32 is arranged at each diverting region 50, 52. The drive wheels 54 of the diverting region 50, 52 are arranged in the additional chambers. Each additional chamber 31, 32 adjoins the first secondary chamber 6. For each drive wheel 54 arranged therein, each additional chamber has connecting openings 56 to the first secondary chamber 6, through which connecting openings the drive wheel 54 projects into the first secondary chamber 6.
[0051] The second secondary chamber 7 and the third secondary chamber 8 are each connected by a passage opening 9, which opening for example, runs in a ring-shaped encircling fashion and is of slot-like form, to the conveying chamber 5 and to the first secondary chamber 6. The carrier elements 46 project through the passage openings 9 into the second secondary chamber 7 and into the third secondary chamber 8. Guide wheels 58 are arranged in the second secondary chamber 7 and in the third secondary chamber 8 which guide the carrier elements 46. At least one secondary chamber 6 to 8 may furthermore additionally be connected by at least one further passage opening 10 to the conveying chamber 5. For example, further passage openings 10 between the first secondary chamber 6 and the conveying chamber 5 may be realized by gaps between the carrier elements 46.
[0052] Analogously to the first exemplary embodiment illustrated in
[0053] As in the first exemplary embodiment illustrated in
[0054] Further, the conveying chamber 5 and the secondary chambers 6 to 8 have, as in the first embodiment in
[0055] Analogously to the first exemplary embodiment illustrated in
[0056] The exemplary embodiment of a conveying installation 1 illustrated in
[0057]
[0058]
[0059]
[0060]
[0061]
[0062] Analogously to the exemplary embodiment shown in
[0063] Analogously to the exemplary embodiment shown in
[0064] By contrast to the exemplary embodiment shown in
[0065] Relocation of the traction mechanisms 48 into the secondary chambers 7, 8, simplifies the construction of the installation housing 3 in relation to the exemplary embodiment shown in
[0066] The spacing of the carrier elements 46 from the conveying chamber wall 60 causes a substantially homogeneous fluid atmosphere to form above and below the carrier elements 46. It is advantageous that temperature differences and turbulent flows within the conveying chamber 5 are reduced. The spacing of the carrier elements 46 from the conveying chamber wall 60 and thermal insulation of the conveying chamber wall 60 by thermal insulation layer 62 reduces heat losses from the conveying chamber 5. In that case, during transport of hot material being conveyed, the temperature of the material can be more effectively kept at an approximately constant level along the conveying path.
[0067] The exemplary embodiment of a conveying installation 1 shown in
[0068] Furthermore, the installation housing 3 may be designed for discharging material being conveyed that falls from carrier elements 46 during their conveyance along the conveying path, in a manner such that the conveying chamber 5 does not gradually become blocked by material being conveyed that falls from carrier elements 46. For this purpose, as in
[0069] Although the invention has been illustrated and described in more detail on the basis of preferred exemplary embodiments, the invention is not restricted by the disclosed examples, and other variations may be derived from these by a person skilled in the art without departing from the scope of protection of the invention.
LIST OF REFERENCE DESIGNATIONS
[0070] 1 Conveying installation
[0071] 3 Installation housing
[0072] 5 Conveying chamber
[0073] 6 to 8 Secondary chamber
[0074] 9, 10 Passage opening
[0075] 11 Fluid circuit system
[0076] 13, 15 Conveying chamber end
[0077] 17 to 19 Fluid outlet
[0078] 21, 22 Fluid inlet
[0079] 25 Turbomachine
[0080] 27 Heat exchanger
[0081] 29 Fluid feed
[0082] 31, 32 Additional chamber
[0083] 34, 36 Horizontal portion
[0084] 38, 40 Vertical portion
[0085] 42 Charging inlet
[0086] 44 Discharge opening
[0087] 46 Carrier element
[0088] 48 Traction mechanism
[0089] 50, 52 Diverting region
[0090] 54 Drive wheel
[0091] 56, 57 Connecting opening
[0092] 58 Guide wheel
[0093] 60 Conveying chamber wall
[0094] 62 Heat insulation layer
[0095] 70 Fluid recycling unit
[0096] 72 Fluid cleaning unit
[0097] 80 Closed-loop control system
[0098] 82 Pressure measuring device
[0099] 84 Control unit
[0100] 86 Control valve