Movable grate for a furnace
10746401 · 2020-08-18
Assignee
Inventors
Cpc classification
F23H2900/03021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23H17/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23H7/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F23K3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23H17/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23H7/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The grate includes a number of grate lanes arranged side by side between a left and a right side section, neighbouring lanes being connected by a midsection and including a lane section having a number of pivotal grate shafts carrying grate bars. Each midsection includes an upper relatively narrow housing section arranged between grate bars of neighbouring lanes and a lower relatively broad housing section protruding under grate bars of said lanes. The upper housing section of each midsection encloses bearings for grate shaft ends of neighbouring lanes. At least one midsection includes a drive mechanism for pivoting back and forth neighbouring grate shafts in opposite rotational directions and a synchronising mechanism of at least one lane section. An actuator of said drive mechanism and said synchronising mechanism are located in the lower housing section of said midsection.
Claims
1. A movable grate for a furnace including a number of grate lanes arranged side-by-side between a left side section and a right side section, neighboring grate lanes being connected by means of a midsection, each grate lane including at least one lane section having a number of pivotal grate shafts carrying grate bars and thereby defining an inclined grate surface of said lane section, each midsection including an upper relatively narrow housing section arranged between grate bars of the corresponding neighboring grate lanes and a lower relatively broad housing section protruding at least partly wider grate bars of said corresponding neighbouring grate lanes, each grate shaft having a driven grate shaft end and a non-driven grate shaft end, each grate shaft end being journaled in a respective bearing, the left and right side sections enclosing bearings for corresponding grate shaft ends of the left and right outermost grate lanes, respectively, and the upper relatively narrow housing section, of each midsection enclosing bearings for corresponding grate shaft ends of corresponding neighbouring grate lanes, each lane section being provided with a drive mechanism including an actuator for pivoting back and forth neighboring grate shafts in opposite rotational directions so as to impart a wave-like movement to material on the grate surface in order to transport such material downwards, a synchronising mechanism being arranged to maintain a predetermined clearance between edge portions of grate bars of neighbouring grate shafts, wherein at least one midsection includes the drive mechanism and the synchronising mechanism of at least one lane section, and in that the actuator of said drive mechanism and said synchronising mechanism are located in the lower relatively broad housing section of said at least one midsection.
2. A movable grate according to claim 1, wherein, in the at least one midsection including the drive mechanism and the synchronising mechanism of the at least one lane section, the mutual relative pivotal positions of the respective grate shafts of the at least one lane section are individually adjustable by means of respective clearance adjustment mechanisms s located in the lower relatively broad housing section of said at least one midsection.
3. A movable grate according to claim 1, wherein, in the at least one midsection including the drive mechanism and the synchronising mechanism of the at least one lane section, the mutual relative pivotal positions of the respective grate shafts of the at least one lane section are individually elastically biased towards respective predetermined relative pivotal positions by means of respective biasing mechanisms located in the lower relatively broad housing section of said at least one midsection.
4. A movable grate according to claim 1, wherein, in the at least one midsection including the drive mechanism and the synchronising mechanism of the at least one lane section, a number of drive shafts corresponding to the respective grate shafts of the at least one lane section are located in the lower relatively broad housing section of said at least one midsection, and the driven grate shaft end of each said grate shaft is individually in driven connection with a corresponding one of said drive shafts.
5. A movable grate according to claim 1, wherein the driven grate shaft end of the respective grate shafts of the at least one lane section is provided with a respective grate shaft lever arm, wherein a first end of the grate shaft lever arm is in driving connection with the grate shaft and a second end of the grate shaft lever arm is pivotally connected to a first end of a corresponding connection rod extending down into the lower relatively broad housing section of said at least one midsection, and wherein a second end of said connection rod located in said relatively broad housing section is in driven connection with the actuator of said drive mechanism.
6. A movable gate according to claim 5, wherein the driven connection between the second end of said respective connection rods and the actuator of said drive mechanism is individually adjustable in order to adjust the individual predetermined clearance between edge portions of grate bars of neighbouring grate shafts.
7. A movable grate according to claim 4, wherein the driven grate shaft end of each said grate shaft is provided with a grate shaft lever arm, wherein a first end of the grate shaft lever arm is in driving connection with the grate shaft and a second end of the grate shaft lever arm is pivotally connected to a first end of a corresponding connection rod, wherein each said drive shaft is provided with a drive shaft lever arm, and wherein a first end of the drive shaft lever arm is in driven connection with the drive shaft and a second end of the drive shaft lever arm is pivotally connected to a second end of a corresponding connection rod so that each grate shaft lever arm is connected with a corresponding drive shaft lever arm by means of a corresponding connection rod.
8. A movable grate according to claim 7, wherein each connection rod is pivotally connected to the corresponding grate shaft lever arm by means of a first ball joint, and wherein each connection rod is pivotally connected to the corresponding drive shaft lever arm by means of a second ball joint.
9. A movable grate according to claim 4, wherein the grate shafts of said at least one lane section are numbered consecutively in downward direction, wherein the corresponding drive shafts are numbered correspondingly, wherein each drive shaft is provided with a crank arm, wherein the crank arms of drive shafts having odd numbers are connected by means of a first linking rod and the crank arms of drive shafts having even numbers are connected by means of a second linking rod, wherein the actuator of said drive mechanism is a linear actuator, such as a hydraulic piston actuator, and wherein the first linking rod and the second linking, rod are interconnected by means of the linear actuator.
10. A movable grate according to claim 9, wherein each crank arm is mounted pivotally adjustably on the corresponding drive shaft.
11. A movable grate according to claim 9, wherein each crank arm is mounted on the corresponding drive shaft elastically biased towards a predetermined relative pivotal position in relation to said drive shaft.
12. A movable grate according to claim 9, wherein one of the drive shafts having odd numbers is connected to one of the drive shafts having even numbers by means of the synchronising mechanism of at the least one lane section.
13. A movable grate according to claim 12, wherein said synchronising mechanism includes a first synchronising lever arm having a first end fixedly connected to said one of the drive shafts having odd numbers and a second end pivotally connected to a first end of a synchronising rod and a second synchronising lever arm having a first end fixedly connected to said one of the drive shafts having even numbers and a second end pivotally connected to a second end of the synchronising rod.
14. A movable grate according to claim 1, wherein at least one midsection includes axially displaceable bearings in which corresponding grate shaft ends of at least one lane section are journaled, wherein each said axially displaceable bearing is mounted in a displaceable bearing house mounted displaceably in relation to a stationary bearing house support mounted in fixed relationship to said at least one midsection so that said displaceable bearing house is displaceable in the axial direction of the corresponding grate shaft and fixed against rotation about said axial direction, wherein a non-pivotal side cover plate is coupled to and axially displaceable with said displaceable bearing house, wherein the non-pivotal side cover plate forms part of a side wall of the upper relatively narrow housing section of said at least one midsection including axially displaceable bearings, and wherein the non-pivotal side cover plate is mounted in proximity to the outermost grate bars carried by the grate shafts of said at least one lane section.
15. A movable grate according to claim 14, wherein the displaceable bearing house has an outer cylindrical surface arranged slidingly in a cylindrical boring in the stationary bearing house support.
16. A movable grate according to claim 14, wherein a pivotal side cover plate is fixed on each said grate shaft end journaled in an axially displaceable bearing, wherein the pivotal side cover plate forms part of said side wall of the upper relatively narrow housing section, and wherein the pivotal side cover plate is arranged pivotally in a cut-out of the corresponding non-pivotal side cover plate so that an outer edge of the pivotal side cover plate forming an arc of a circle is in close proximity to a corresponding inner edge of the cut-out of the corresponding non-pivotal side cover plate forming a corresponding arc of a circle.
17. A movable grate according to claim 14, wherein the axially displaceable bearings are arranged at non-driven grate shaft ends.
18. A movable grate according to claim 1, wherein, in the at least one midsection including the drive mechanism and the synchronising mechanism of the at least one lane section, a stationary frame of said midsection is formed by means of two spaced grate beams extending in the longitudinal direction of said midsection in the lower relatively broad housing section of said midsection, wherein two grate plates in the form of longitudinal L-formed brackets are mounted with a first lower flange on top of the respective spaced grate beams and with a second upright flange extending vertically, and wherein bearing houses arranged in said midsection are carried by the respective second upright flanges of the two longitudinal L-formed brackets.
19. A movable grate according to claim 1, wherein, in the at least one midsection including the drive mechanism and the synchronising mechanism of the at least one lane section, a dust shield is arranged inside an outer enclosure of the at least one midsection, wherein non-displaceable bearing houses or stationary bearing house supports carrying bearings in which respective driven grate shaft ends are journaled extend sealingly through respective openings in the dust shield, wherein the dust shield thereby separates the inside of the outer enclosure of the at least one midsection into an outer room section next to the outer enclosure and an inner room section enclosing the drive mechanism including the actuator and the synchronising mechanism of at least one lane section.
20. A movable grate according to claim 19, wherein the outer room section connected to a supply of pressurised seating gas.
21. A movable grate according to claim 18, wherein the dust shield includes a bottom wall extending between the two spaced grate beams, two spaced side walls extending from the bottom wall to a top part of the upper relatively narrow housing section of said midsection and a top waft connecting the two spaced side walls, wherein non-displaceable bearing houses or stationary bearing house supports carrying bearings in which respective grate shaft ends are journaled extends sealingly through openings in the respective two spaced side walls, and wherein the drive mechanism of the at least one lane section extends through an opening in the bottom wall.
22. A movable grate according to claim 21, wherein the two spaced grate beams forming the stationary frame of said midsection have the form of hollow rectangular tubes, wherein the inside of the hollow rectangular tubes are connected to a supply of pressurised sealing gas, and wherein the pressurised sealing gas is supplied to the outer room section from the inside of the hollow rectangular tubes through holes in the walls of the hollow rectangular tubes.
23. A movable grate according to claim 1, wherein at least some of the grate bars of at least one grate lane extending between two midsections are adapted to be cooled by means of circulating cooling fluid, wherein a cooling fluid supply channel is formed as an axial bore in an inlet end of the grate shafts carrying grate bars and a cooling fluid outlet channel is formed, as an axial bore in an outlet end of the grate shafts carrying grate bars, wherein the cooling fluid supply channels are connected to respective cooling fluid supply tubes extending in one of the two midsections, and wherein the cooling fluid outlet channels are connected to respective cooling fluid return tubes extending in the other of the two midsections.
24. A movable grate according to claim 14, wherein the non-pivotal side cover plates forming part of the side wall of the upper relatively narrow housing section of, said at least one midsection and a top wall of said upper relatively narrow housing section are adapted to be cooled by means of circulating cooling fluid.
25. A movable grate according to claim 1, wherein the left side section and the right side section include the drive mechanisms and the synchronising mechanisms of at, least one lane section of the left outermost grate lane and of at least one lane section of the right outermost grate lane, respectively, wherein the grate shafts of said at least one lane section of the left outermost grate lane and of said at least one lane section of the right outermost grate lane, respectively, are numbered consecutively in downward direction, wherein each grate shaft is provided with a crank arm, wherein the crank arms of grate shafts having odd numbers are connected by means of a first linking rod and the crank arms of grate shafts having even numbers are connected by means of a second linking rod, wherein the actuator of said drive mechanism is a linear actuator, such as a hydraulic piston actuator, and wherein the first linking rod and the second linking rod are interconnected by means of the linear actuator.
26. A movable grate according to claim 1, wherein the movable grate includes a first grate lane, a second grate lane, and a third grate lane, wherein the left side section and the right side section includes axially displaceable bearings for driven grate shaft ends of the first and third grate lanes, respectively, wherein a first midsection includes axially non-displaceable bearings for non-driven grate shaft ends of the first grate lane and axially displaceable bearings for non-driven grate shaft ends of the second grate lane, and wherein a second midsection includes axially non-displaceable bearings for driven grate shaft ends of the second grate lane and axially non-displaceable bearings for non-driven grate shaft ends of the third grate lane.
27. A movable grate according to claim 1, wherein the movable grate includes a first grate lane, a second grate lane, a third grate lane, and a fourth grate lane, wherein the left side section and the right side section encloses axially displaceable driven grate shaft ends of the first and fourth grate lanes, respectively, wherein a first midsection includes axially non-displaceable bearings for non-driven grate shaft ends of the first grate lane and axially displaceable bearings for non-driven grate shaft ends of the second grate lane, wherein a second midsection includes axially non-displaceable bearings for driven grate shaft ends of the second grate lane and axially displaceable bearings for non-driven grate shaft ends of the third grate lane, and wherein a third midsection includes axially non-displaceable bearings for driven grate shaft ends of the third grate lane and axially non-displaceable bearings for non-driven grate shaft ends of the fourth grate lane.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(21)
(22) As seen in
(23) Each grate shaft 12 has a driven grate shaft end 17 and a non-driven grate shaft end 18, and each grate shaft end 17, 18 is journalled in a respective bearing 19. As seen in
(24) The grate bars 13 on each grate shaft 12 coincide with the grate bars 13 on the neighbouring shaft 12 without touching these, thereby forming the practically cohesive inclined grate surface 14. The gap between two coinciding grate bars 13 in the form of the predetermined clearance 82 mentioned just above may for instance be approximately 1 to 3 millimetres. The grate function is such that the grate shafts 12 alternately turn to their respective outer positions, and the inclined grate surface 14 thus forms a stair-shaped surface where the steps change direction. This produces a rolling movement to material present on the grate, which may have the effect of breaking it up and agitating it, while at the same time moving it forward in downward direction, thus achieving good exposure to radiant heat from the combustion chamber 83 and good exposure to combustion air.
(25) In the embodiment of the invention illustrated in
(26) Furthermore, as illustrated in
(27) Furthermore, as illustrated in
(28) Referring to
(29) In principle, said driven connection could be any suitable means of drive transmission; however, in the illustrated embodiment, the driven grate shaft end 17 of each respective shaft 12.sub.1, 12.sub.2, 12.sub.3, 12.sub.4, 12.sub.5, 12.sub.6 is provided with a grate shaft lever arm 27, a first end 28 of the grate shaft lever arm 27 is in driving connection with the grate shaft 12 and a second end 29 of the grate shaft lever arm 27 is pivotally connected to a first end 30 of a corresponding connection rod 31. In the illustrated embodiment, the first end 28 of the grate shaft lever arm 27 is fixedly mounted on the driven grate shaft end 17 of the grate shaft 12 by means of bolts. Each said drive shaft 26.sub.1, 26.sub.2, 26.sub.3, 26.sub.4, 26.sub.5, 26.sub.6 is provided with a drive shaft lever arm 33, and a first end 34 of the drive shaft lever arm 33 is in driven connection with the drive shaft and a second end 35 of the drive shaft lever arm 33 is pivotally connected to a second end 32 of the corresponding connection rod 31. In the illustrated embodiment, the first end 34 of the drive shaft lever arm 33 is fixedly mounted on the drive shaft by means of bolts. Thereby, each grate shaft lever arm 27 is connected with a corresponding drive shaft lever arm 33 by means of a corresponding connection rod 31. Thereby, by driving each grate shaft by means of a connection rod, a precise transmission of the movement from the actuator to the grate shaft is possible. Furthermore, by driving each grate shaft independently by means of a respective connection rod extending down into the lower relatively broad housing section of the midsection, the movement of each grate shaft may be controlled independently from an easily accessible location, thereby facilitating precise control and adjustment of the movement of each separate grate shaft in connection with service and maintenance.
(30) In the illustrated embodiment, each connection rod 31 is pivotally connected to the corresponding grate shaft lever arm 27 by means of a first ball joint 36, and each connection rod 31 is pivotally connected to the corresponding drive shaft lever arm 33 by means of a second ball joint 37. Thereby, a more flexible connection between the grate shaft lever arm and the corresponding drive shaft lever arm may be achieved. Furthermore, it may be possible to employ standard ball joints which are fully sealed and do not require any service for an extended period of time. Such standard ball joints are for instance used in the suspension and steering of cars. The use of such ball joints may be advantageous, especially in relation to ball joints located in the upper relatively narrow housing section where accessibility may be restricted. Furthermore, a ball joint may be better suitable for rocking motion back and forth as compared to standard ball bearings and may therefore last longer. If standard ball bearings are employed, these have to be provided with shaft seals. The shaft seals may not be very well suitable for the rocking motion back and forth and may therefore leak after extended use. Furthermore, the shaft seals may increase the size of the pivotal joint between the connection rod 31 and the corresponding drive shaft lever arm 33 or the corresponding grate shaft lever arm 27. This may be a disadvantage, because space may be limited in the upper relatively narrow housing section 15 of the respective midsections 9, 10.
(31) Referring now to
(32) A first end of each crank arm 38 is mounted pivotally adjustably on the corresponding drive shaft 26 and a second end of each crank arm 38 is connected pivotally to the corresponding first or second linking rod 39, 40 at a respective point thereof. Referring now to
(33) By means of the above-described arrangement of the crank arms 38 on the respective drive shafts 26, the relative rotational position of each crank arm 38 in relation to the corresponding drive shaft 26 may be adjusted by rotation of the two corresponding set screws 85. The adjusted position may be fixed by tightening the locking nuts 107 on the respective set screws 85. Thereby, the adjustment of the driven connection may be performed in the lower relatively broad housing section, thereby facilitating adjustment of the individual clearance 82 between edge portions 23 of grate bars 13 in connection with service and maintenance.
(34) Furthermore, by means of the stack of disc springs 86, each crank arm 38 is mounted on the corresponding drive shaft 26 elastically biased towards a predetermined relative pivotal position in relation to said drive shaft 26. Thereby, if the movement of a grate shaft is prevented, the movement may wholly or partly be taken up by the elastic biasing mechanisms in that one or more of the stacks of disc springs 86 is compressed between the guide 109 for disc springs and the top of the bore 108 in a respective end of the transverse upper part 87 of a crank arm 38. This may happen as an upper end of a respective set screw 85 presses on a respective head of a disc spring guide 109. Thereby, the upper ends of respective set screws 85 arranged at an end of a transverse upper part 87 opposed to an end pressing on a head may possibly be lowered or released from abutment with the respective head of a disc spring guide 109. By locating the respective elastic biasing mechanisms in the lower relatively broad housing section, the biasing mechanisms may be easily accessible, thereby facilitating service and maintenance.
(35) It is noted that
(36) Furthermore, it is seen in
(37) In the illustrated embodiment, as explained above, each said drive shaft 26.sub.1, 26.sub.2, 26.sub.3, 26.sub.4, 26.sub.5, 26.sub.6 is provided with a drive shaft lever arm 33, and a first end 34 of the drive shaft lever arm 33 is in driven connection with the drive shaft and a second end 35 of the drive shaft lever arm 33 is pivotally connected to a second end 32 of the corresponding connection rod 31. However, in alternative embodiments, each connection rod 31 extending down into the lower relatively broad housing section 16 of a midsection 9, 10 is with its second end 32 located in said relatively broad housing section 16 in driven connection with the actuator 21 of said drive mechanism 20 by other means than illustrated. For instance, the second end 32 of connection rods 31 corresponding to grate shafts 12 having odd numbers may be connected by means of a first connection rod, and the second end 32 of connection rods 31 corresponding to grate shafts 12 having equal numbers may be connected by means of a second connection rod. The first and second connection rods may be connected by means of an actuator, such as a linear actuator or linear actuators or a rotary actuator or rotary actuators provided with two crank arms connected to the respective first and second connection rods. Appropriate synchronizing means may further be provided.
(38) In these alternative embodiments, the driven connection between the second end 32 of said respective connection rods 31 and the actuator 21 of said drive mechanism 20 may be individually adjustable in order to adjust the individual predetermined clearance between edge portions 23 of grate bars 13 of neighbouring grate shafts 12. Thereby, the adjustment of the driven connection may be performed in the lower relatively broad housing section, thereby facilitating adjustment of clearance in connection with service and maintenance. Furthermore, in these alternative embodiments, the driven connection between the second end 32 of said respective connection rods 31 and the actuator 21 of said drive mechanism 20 may be individually elastically biased towards respective predetermined relative positions by means of respective biasing mechanisms located in the lower relatively broad housing section 16 of said midsections 9, 10. Thereby, if the movement of a grate shaft is prevented, the movement may wholly or partly be taken up by the biasing mechanisms. Furthermore, by locating the respective biasing mechanisms in the lower relatively broad housing section 16, the biasing mechanisms may be easily accessible, thereby facilitating service and maintenance.
(39) Referring to
(40) As seen in
(41) As furthermore seen in
(42) Because the pivotal side cover plate 57 is fixed on the grate shaft end 18, it will follow axial displacements of the grate shaft end 18 resulting from temperature changes of the grate shaft 12, and the pivotal side cover plate 57 will therefore also follow the displacements of the non-pivotal side cover plate 53.
(43) Axially displaceable bearings 50 as discussed above may be arranged at driven shaft grate shaft ends 17 or at non-driven grate shaft ends 18. However, for structural reasons, it may be preferred to arrange such axially displaceable bearings 50 only at non-driven grate shaft ends 18. Depending on the drive mechanism, it may be advantageous that the driven grate shaft ends do not move in axial direction.
(44) As seen in
(45) A dust shield 65 is arranged inside an outer enclosure 66 of each respective midsection 8, 9, 10. Non-displaceable bearing houses 64 and stationary bearing house supports 52 carrying bearings 19 in which respective driven grate shaft ends 17 are journalled extend sealingly through respective openings 67 in the dust shields 65. The dust shield 65 thereby separates the inside of the outer enclosure 66 of each midsection into an outer room section 68 next to the outer enclosure 66 and an inner room section 69. In the second and third midsections 9, 10, the inner room section 69 encloses the drive mechanism 20 including the actuator 21 and the synchronising mechanism 22 of each lane section 11. Thereby, the drive mechanism including the actuator and the synchronising mechanism may be even better protected against dust and dirt possibly entering through leaks from the combustion chamber. Thereby, maintenance costs may be reduced.
(46) The outer room section 68 is connected to a supply of pressurised sealing gas. Thereby, an overpressure in relation to the pressure in the combustion chamber 83 may be created in the outer room section 68, thereby even better preventing dust and dirt from possibly entering through leaks from the combustion chamber into the outer room section. The outer room section 68 may thereby create a barrier between the combustion chamber 83 and the inner room section 69, thereby even better preventing dust and dirt from possibly entering the inner room section enclosing the drive mechanism including the actuator and the synchronising mechanism. Thereby, maintenance costs may be even more reduced.
(47) The dust shield 65 includes a bottom wall 70 extending between the two spaced grate beams 60, two spaced side walls 71 extending from the bottom wall 70 to a top part of the upper relatively narrow housing section 15 of the midsections 8, 9, 10 and a top wall 72 connecting the two spaced side walls 71. In the second and third midsections 9, 10, non-displaceable bearing houses 64 and stationary bearing house supports 52 carrying bearings 19 in which respective grate shaft ends 17, 18 are journalled extend sealingly through openings 67 in the respective two spaced side walls 71, and the drive mechanism 20 of each lane section 11 extends through an opening 73 in the bottom wall 70.
(48) The bearings 19 carried by the non-displaceable bearing houses 64 and stationary bearing house supports 52 are sealed against the outer room section 68 and possibly against the inner room section 69, respectively, by means of corresponding stacks 81 of disc springs.
(49) As seen in
(50) In the embodiment illustrated in
(51) Referring to
(52) Referring to
(53) As best seen in
(54) Referring again to
(55) Furthermore, it is seen in
(56) In the embodiment illustrated in
(57) As described above, in the embodiment illustrated in
(58)
(59) By comparing the embodiments of
(60) Furthermore, it may be understood that the embodiment of
(61) According to the present invention, other embodiments than those described above and illustrated in the figures are possible. For instance, the embodiment illustrated in
(62) As another example, the embodiment illustrated in
(63) The different embodiments described above may be combined in any suitable way. On the basis of the above, the skilled person will understand that many further embodiments according to the present invention are possible.
LIST OF REFERENCE NUMBERS
(64) 1 movable grate 2, 3, 4, 5 grate lane 6 left side section 7 right side section 8, 9, 10 midsection 11 lane section 12.sub.1, 12.sub.2, 12.sub.3, 12.sub.4, 12.sub.5, 12.sub.6 grate shaft 13 grate bar 14 inclined grate surface 15 upper relatively narrow housing section 16 lower relatively broad housing section 17 driven grate shaft end 18 non-driven grate shaft end 19 bearing for grate shaft end 20 drive mechanism 21 actuator 22 synchronising mechanism 23 edge portions of grate bar 24 clearance adjustment mechanism 25 biasing mechanism 26.sub.1, 26.sub.2, 26.sub.3, 26.sub.4, 26.sub.5, 26.sub.6 drive shaft 27 grate shaft lever arm 28 first end of grate shaft lever arm 29 second end of grate shaft lever arm 30 first end of connection rod 31 connection rod 32 second end of connection rod 33 drive shaft lever arm 34 first end of drive shaft lever arm 35 second end of drive shaft lever arm 36 first ball joint 37 second ball joint 38.sub.1, 38.sub.2, 38.sub.3, 38.sub.4, 38.sub.5, 38.sub.6 crank arm 39 first linking rod 40 second linking rod 41 first synchronising lever arm 42 first end of first synchronising lever arm 43 second end of first synchronising lever arm 44 synchronising rod 45 first end of synchronising rod 46 second synchronising lever arm 47 first end of second synchronising lever arm 48 second end of second synchronising lever arm 49 second end of synchronising rod 50 axially displaceable bearings for grate shaft ends 51 displaceable bearing house 52 stationary bearing house support 53 non-pivotal side cover plate 54 side wall of upper relatively narrow housing section 55 outer cylindrical surface of displaceable bearing house 56 cylindrical boring in stationary bearing house support 57 pivotal side cover plate 58 cut-out of non-pivotal side cover plate 59 outer edge of pivotal side cover plate 60 grate beam 61 longitudinal L-formed bracket 62 first lower flange of longitudinal L-formed bracket 63 second upright flange of longitudinal L-formed bracket 64 non-displaceable bearing house 65 dust shield 66 outer enclosure of midsection 67 openings in side walls of dust shield 68 outer room section 69 inner room section 70 bottom wall of dust shield 71 side walls of dust shield 72 top wall of dust shield 73 opening in bottom wall of dust shield 74 inside of hollow rectangular tube 75 hole in wall of hollow rectangular tube 76 cooling fluid supply channel 77 cooling fluid outlet channel 78 cooling fluid supply tube 79 cooling fluid return tube 80 top wall of upper relatively narrow housing section 81 stack of disc springs 82 predetermined clearance between edge portions 83 combustion chamber 84 bottom ash hopper 85 set screw 86 stack of disc springs 87 transverse upper part of crank arm 88 carrier 89 coupling elements 90 cooling fluid supply channel 91 cooling fluid outlet channel 92 internal cooling channel of T-plate or covering unit 93 T-plate 94 cooling fluid inlet tube 95 cooling fluid outlet tube 96 covering unit 97 tap 98 hinge part 99 non-pivotal side cover plate of side section 100 axially displaceable grate shaft end of side section 101 axially non-displaceable bearing of grate shaft end 102 axially displaceable bearing house 103 pivotal side cover plate 104 upper side of non-pivotal side cover plate 105 lower side edge of covering unit 106 nut 107 locking nut 108 bore 109 disc spring guide 110 locking ring