Background of the Invention
This invention relates to an apparatus for monitoring the operation of a drag chain conveyor, the traction mechanism of which comprises at least one endless chain that is trained about a drive sprocket and a return sprocket and which has a series of dragging members. The bearing of the return sprocket is displaceable in the longitudinal direction of the conveyor. The endless chain is tensioned with a constant bias by means of an energy storing device (such as spring elements) that exerts a force on the bearing support of the return sprocket.
Drag chain conveyors serve for the continuous transport of bulk material (such as coal) along predetermined fixed conveyor paths, for example, for feeding steam generating equipment.
The traction mechanism which is disposed in a closed trough and which transports the bulk material from the charging end of the conveyor to the conveyor outlet, may be formed as a single-strand chain or a double-strand chain.
Although drag chain conveyors are relatively safe transporting means, they are, however, not free from operational disturbances. Thus, for example, a breakage of the chain may occur. The repair of such a breakdown is very time consuming and expensive because, among others, first the bulk material has to be removed from the trough.
Many types of breakdowns which necessarily cause an interruption in the transportation of the bulk material could be avoided if their causes are recognized and elminated in time. For such measures much less time is required than for repairing the consequential damage.
Summary of the Invention
It is an object of the invention to provide a continuous monitoring of the operation of drag chain conveyors for the purpose of maintaining the inoperative periods of the drag chain conveyor as short as possible.
This object and others to become apparent as the specification progresses, is accomplished by the invention, according to which, briefly stated, with a drag chain conveyor there is associated a monitoring apparatus. The drag chain conveyor has a conveyor chain assembly which includes an endless conveyor chain trained about a drive sprocket and a return sprocket and a biasing mechanism for displacing the bearing support of the return sprocket to maintain the chain at a predetermined tension. The monitoring apparatus has at least one sensor connected to the chain assembly for monitoring the magnitude of at least one of the following chain parameters: chain tension, chain wear and chain slack. The sensor is coupled to a signal transmitter which emits a signal upon a non-permitted deviation from the parameter magnitudes. A signal-responsive device is connected to the signal transmitter for emitting, for example, a visual warning signal.
By virtue of the measures provided according to the invention, the source of trouble, for example an overcharging of the conveyor with the bulk material leading to an overloading of the chain, is spotted in time and, merely by decreasing the charging rate at the input end of the drag chain conveyor, this potential source of trouble may be eliminated without interrupting the feeding operation of the conveyor.
By virtue of sensing the chain height, an excessive wear of the chain is monitored, so that its replacement may be scheduled well in advance for a period when the plant is, in any event, not operating.
The monitoring device for the chain bias gives a signal if there occurs a drop, below a permissible value, of the chain tension. Such a drop may be the result of a chain stretch, caused, in turn, for example, by an overload of the conveyor and/or an excessive wear of the chain.
Even if, despite the above safety measures, the chain breaks, for example, because of failure of material, the monitoring device has the significant advantage that the drive of the chain conveyor is, immediately upon chain breakage, either automatically or manually switched off before the broken chain is jammed within the conveyor trough.
Caking of the bulk material in the zone of the chain-tensioning mechanism caused, for example, by an overloading of the trough with the bulk material, may result in the phenomenon that the energy storing devices (springs) that act upon the chain for maintaining a predetermined chain bias, may be still maintained at the bias by the wedged-in bulk material although the distance between the shafts of the drive sprocket and the return sprocket has decreased. In such an event the chain slack monitoring apparatus gives a timely signal so that serious consequential damages, such as chain breakage, can be avoided.
It is expedient to arrange the charge height monitoring device in the vicinity of, and preferably above, the discharge opening of the conveyor because with such an arrangement the caking of bulk material may be timely recognized in the outlet zone of the conveyor as well.
By virtue of arranging a chain wear monitoring device which preferably is of the mechanical contacting type, above the lower reach of the chain in contact therewith, the monitoring device may be of very simple structure, because, in case of an empty trough, the lower chain reach lies on the trough bottom and thus for monitoring the height of the chain, only the upper side of the chain can be contacted. If the upper reach of the conveyor chain is to be sensed, both the upper and the lower side of the chain reach should be associated with separate sensor devices.
Brief Description of the Drawings
FIG. 1 is a sectional side elevational view of a preferred embodiment of the invention taken along line I--I of FIG. 2.
FIG. 2 is a sectional top plan view taken along line II--II of FIG. 1.
FIG. 3 shows details, partly in section, of monitoring circuits incorporated in the preferred embodiment.
Description of the Preferred Embodiment
Turning now to FIGS. 1 and 2, there is shown a drag chain conveyor which has a trough 1 closed at all sides and which at one end has an input chute arranged obliquely with respect to one of the side walls of the trough and which serves as a material charger 2. At the other end of the chain conveyor there is provided, in the bottom 3 of the trough 1, a material discharge opening 4. As traction means there is provided a two-strand endless forked link chain 5 having material dragging members 5'. The endless chain 5 is trained about a drive sprocket 7 rotated by a motor 6 and about a return sprocket 8.
The return sprocket 8 is constituted as a chain tensioning means. For this purpose the bearing 9, 10 supporting the shaft of the return sprocket 8 is secured to bearing supports 11, 12, respectively, which are displaceable in the length dimension of the conveyor. Each support 11, 12 is in engagement with spring elements 13 which maintain the return sprocket 8 and thus the endless chain 5 at a constant bias.
Above the discharge opening 4 and above the lower reach of the endless chain 5 there is disposed a lever 14 which is pivotally supported on a shaft 16 that extends horizontally and perpendicularly to the feed direction 15 of the bulk material. At that end of the lever 14 which is directed obliquely downwardly in the direction of feed there is affixed a plate-shaped follower 17 adapted to engage the lower reach of the chain 5. The pivot shaft 16 of the lever 14 journals in bearings 18 affixed to the lateral walls of the conveyor trough.
The lever 14 is provided with a radially projecting switching arm 19 which cooperates with switch members 20 of an electrical signal transmitter 21 which, when the switching arm 19 is in engagement with the one or the other switching member 20, closes an electric circuit of a signalling device including, for example, a signalling lamp 21'. This occurrence takes place when the follower 17 is either lifted by the bulk material which has accumulated in the trough 1 or in the discharge opening 4, or it drops below a predetermined extent as a result of a predetermined amount of chain wear.
Spaced from the bearings of the lever shaft 16 there are affixed, at both side walls of the trough 1, electric contacts 22 and 23 which are adjustable in their height and which are electrically insulated from the trough 1. The contacts 22 and 23 form part of an electric circuit (signal transmitter) containing a further signalling lamp 24. These contacts 22 and 23 may be interconnected, and thus closed directly by the chain 5 in case of an excessive slack thereof, causing the circuit to be closed. To this circuit there is applied a 24-volt a.c. voltage which is sufficiently low (less than 40V) to be harmless to humans. the use of an alternating voltage is advantageous because in this manner there can be no anode or cathode deposits that may occur if d.c. voltage is applied. Such deposits may adversely affect the operation of the electric switches. It is expedient to arrange this slack monitoring device in the vicinity of the drive sprocket 7 so as not to be affected by the bulk material that may adhere to the trough. It is further advantageous to arrange the slack sensors below the upper chain reach to cooperate therewith.
The contacts 22 and 23 have a cylindrical shape and are attached to the trough 1 by screws 26 with the interposition of insulating discs 25. Each screw 26 is threaded into a threaded bore 27 which, in turn, is arranged eccentrically in the contacts. Each screw 26 further supports a separate contact leaf 28 to which there are connected electric conductors 29.
Referring now in FIGS. 2 and 3, to each support which carries the bearings 9, 10 of the return sprocket 8, there are secured piston rods 30 of hydraulic cylinders 31, 31' which may be pressurized with hydraulic liquid on both sides of a piston disposed in each cylinder and which are supported on the trough 1. The pressure chambers 32 of the cylinders 31, 31' at the side of the piston rod and the pressure chambers 33 that are remote from the piston rods 30 are interconnected by conduits 34, 34'.
To the conduits 34, 34' there are connected switches 35, 36 which respond to sudden pressure increases. The switches 35, 36 actuate electrical switches 37, 38 which are part of electric circuits also containing signalling lamps 39, 40. Each hydraulic switch 35, 36 essentially comprises a cylinder, the piston of which is displaced against the force of a spring element in case of an increase in pressure. The piston rod acts directly on the associated switch component of the electric switch 35 or 36.
Instead of an axially displaceable piston, the hydraulic switches 35, 36 each may have a diaphragm for defining the above-described pressure chambers.
The above-described hydraulic and electric control system becomes effective when the chain tension, for example, caused by a rupture in the chain 5, abruptly drops, because in such a case the spring elements 13 shift the return sprocket 8 towards the drive sprocket 7. At the same time, the pistons connected with the piston rods 30 are also displaced relative to the cylinders. The result of this occurrence is that the pressure medium is, through the conduits 34, 34' driven from the pressure chamber 32 of the cylinder 31 into the pressure chamber 32 of the cylinder 31' in an impact-like manner and similarly, the pressure medium is suddenly driven from the pressure chamber 33 of the cylinder 31' into the pressure chamber 33 of the cylinder 31. The dynamic pressure generated in the conduits in this manner exerts a force on the pistons of the hydraulic switches 35, 36 and, as a result, the piston rods of these pistons actuate the electric switches 37, 38. This arrangement operates in a reliable manner even if, in case of a two-strand conveyor chain 5, a sudden change in length of only one strand occurs.
If, on the other hand, there occurs only a slow, gradual change of the axial distance between the return sprocket 8 and the drive sprocket 7, for example, because of a stretch of chain 5 caused by temperature changes (such stretch may be significant if, for example, the conveyor is over 10 m long and the bulk material has a temperature of 400.degree.C), the pressure medium, such as oil, flows slowly without pressure increase through the conduits 34, 34' so that in such a case the hydraulic switches 35, 36 do not respond, whereby a false alarm is avoided.
It is to be understood that instead of a hydraulic system, a similarly operating pneumatic arrangement may be used.
Instead of two cylinders 31, 31' it is feasible to use only a single cylinder, in which case the two cylinder chambers on either side of the piston are interconnected with a conduit which, in turn, is coupled to a dynamic pressure-responsive device, such as switch 35 or 36.
Instead of the visual warning devices, such as lamps 21', 24, 39 and 40, audible warning devices, such as buzzers, bells or horns may be used. Or, the warning devices may be replaced (or supplemented) by a switch contained in the energizing circuit of the conveyor drive mechanism. In this manner, when the magnitude of chain parameters (such as height, or slack, or tension) deviates from a permissible, predetermined value, the conveyor is automatically stopped.
It will be understood that the above description of the present invention is susceptible to various modifications, changes and adaptations, and the same are intended to be comprehended within the meaning and range of equivalents of the appended claims.