This application claims the benefit of EP Patent Application No. 19151009.8, filed on Jan. 9, 2019, the disclosure of which is hereby incorporated by reference.
The disclosure generally relates to a round baler. More particularly, the present disclosure relates a variable chamber round baler for providing an operator of the round baler with information on at least one parameter of a bale.
A round baler includes a baling chamber wherein cut crop material is collected, formed into cylindrical layers to define a round bale, and then bound together. The baler includes one or more press means, such as but not limited to a pressing belt, which is transversely positioned within the baler. Typically, the bales are bound inside the baling chamber before being discharged on the ground. In a variable chamber baler, the press means is formed by one or more endless flexible belts. The width of the bale chamber is covered by the endless flexible belts and the sides of the bale chamber are covered by walls. The endless flexible belts are routed about rolls. In a variable chamber baler, the bale is formed by the endless flexible belts. The variable chamber baler includes a tensioning arm for maintaining tension in the endless flexible belts during baling. As the round bale increases in size, the endless flexible belts move to accommodate the increasing size of the bale, with the tensioning arm also moving to maintain a constant pressure between the endless flexible belts and the crop material.
To form bales of desired density, it is required to optimize the baling process. Currently, to optimize the baling process, the operator may be required to adjust the speed of a towing vehicle which tows and powers the baler. However, it might be difficult or not possible for the operator to determine the density of the bales, particularly the change in density of each layer of the crop material as the bale is being formed. This results in inefficient operation of the baler and causes dissatisfaction to the operator.
Hence, there is a need for a round baler with an arrangement to provide information to the operator of a variable chamber round baler about the change of density of each layer of the bale as the bale is being formed.
The problem addressed by the present disclosure is that of an inability of the operator to identify or determine a density of a bale as the bale is being formed, and increasing the efficiency of the baling process.
The present disclosure is defined by the claims, wherein in one embodiment a round baler includes a drive shaft, a pick-up unit operated by the drive shaft, a baling chamber with at least one rotating press means. The press means may include a flexible endless belt. The press means is routed through a plurality of rolling members.
The pick-up unit is configured to supply a crop material to the baling chamber. The rotating press means is configured to press crop material into a cylindrical bale formed by pressed layers of the crop material. The round baler includes a first sensor and a second sensor. The first sensor is configured to determine a diameter change of the bale within the baling chamber. The second sensor is configured to determine a speed of the press means while the bale is being formed in the baling chamber. For example, the second sensor may detect a speed of the drive shaft, and use the speed of the drive shaft to determine the speed of the press means. Alternatively, the speed of the drive shaft may be known from other parameters of the round baler, and used to determine the speed of the press means.
The round baler includes a controller, a processor and a display unit. The controller may be configured to receive sensed signals of the diameter change from the first sensor and also to receive information related to the speed of the press means from the second sensor.
The processor may be configured to process the speed and the diameter change to determine a thickness of a layer of the crop material. The processor is configured to determine the thickness of the layer corresponding to the rotation of the bale. The processor may calculate a time interval required for one rotation of the bale. The time interval may be determined as a function of the diameter change and the speed.
The first sensor may be at least one of a proximity sensor, an angle sensor and a potentiometer. The first sensor may be linked to a tensioning arm of the press means, wherein the tensioning arm pivots, moves or changes position according to the change in diameter of the bale. Alternatively, the first sensor may be mounted on any other portion which moves with the change in diameter of the bale. In a further embodiment, the first sensor may also be mounted on outer side of the press means. The second sensor may be a speed sensor. The speed sensor may be a hall-effect based sensor, accelerometer based sensor, variable reluctance speed sensors, eddy current speed sensor, etc.
The display unit may be configured to indicate thickness of the layer of the crop material for the bale. The display unit may indicate the thickness of the layer of crop material as a graphical representation or a numerical value.
The above features and advantages and other features and advantages of the present teachings are readily apparent from the following detailed description of the best modes for carrying out the teachings when taken in connection with the accompanying drawings.
Those having ordinary skill in the art will recognize that terms such as “above,” “below,” “upward,” “downward,” “top,” “bottom,” etc., are used descriptively for the figures, and do not represent limitations on the scope of the disclosure, as defined by the appended claims. Furthermore, the teachings may be described herein in terms of functional and/or logical block components and/or various processing steps. It should be realized that such block components may be comprised of any number of hardware, software, and/or firmware components configured to perform the specified functions.
Terms of degree, such as “substantially” or “approximately” are understood by those of ordinary skill to refer to reasonable ranges outside of the given value, for example, general tolerances associated with manufacturing, assembly, and use of the described embodiments.
Referring to
The flexible endless belt (26) is disposed within the baling chamber (18) and routed around the rolls (24). The drive shaft (14) is coupled to and rotates the flexible endless belt (26) in response to the rotational input. The flexible endless belt (26) continuously rotates and presses the crop material into pressed layers to form a bale (28). The round baler (12) includes a tensioning arm (30) to ensure appropriate tension is maintained in the flexible endless belt (26). As the size of the bale (28) increases, the tensioning arm (30) moves upwards in response to a growing loop (L) of the belt (26) around the growing bale (28) but maintains an optimum tension in the flexible endless belt (26). The tensioning arm (30) may be moved by a hydraulic cylinder (32) and a spring arrangement (34), as schematically illustrated in
Referring to
The speed of rotation of the plurality of rolls (24) and hence the operational speed of the flexible endless belt (26) is dependent on the speed of rotation (Vp) of the drive shaft (14), or the PTO respectively. Data related to the operational speed of the flexible endless belt while forming the bale (24) is sensed or detected by a second sensor (S2). In one example embodiment, the speed of rotation (Vp) of the drive shaft (14) is detected by the second sensor (S2). In other embodiments, the second sensor (S2) may be positioned to sense data related to the speed of the flexible endless belt (26) at some other location, such that the data is derived by other sensing means within the drive train of the tractor (10) or the baler (12), which indicates the rotation speed of the PTO.
Referring to
The processor (44) processes the signals received from the first sensor (S1) and the second sensor (S2) to derive a time interval (tb) for completing one rotation of the bale (28). Thus, for example, as illustrated in
After one rotation of the bale (28), one layer (A) of the crop material is added over the bale (28), thereby changing the first diameter (D1) of the bale (28) to a second diameter (D2) at the end of the preceding rotation. Thus, by adding the time interval (tb), derived from equation (1), to the first instant of time (T1), the processor (44) calculates the second instant of time (T2) when the subsequent rotation will be completed, derived from equation (2) and (3).
A second diameter (D2) of the bale (28), is detected by the first sensor (S1) at the second instant of time (T2) and considered by the processor (44) for further calculation of a layer thickness (Th) of the layer (A) derived from equation (4).
As the processor (44) computes the first diameter (D1) and the second diameter (D2) for determining the thickness (Th) of the layer (A) of crop material added to the bale (28) between the first instant of time (T1) and the second instant of time (T2), the thickness (Th) of the layer (A) is indicated or displayed in the display unit (38).
In accordance with an alternate embodiment, shown in
Thus, in accordance with the present invention, the operator of the round baler (12) is updated about the thickness (Th) of each layer (A) of the bale (28). Using the information about the thickness (Th) of each layer (A) of the bale (28), the operator may be able to optimize the density of the bale (28). The information may be also used by the controller (42) to automatically adjust several parameters of the baler (12) to optimize the density of the bale (28). These parameters may include PTO speed, tractor speed, pick-up unit speed and tension of the endless belt (26) adjusted and maintained by the tensioning arm (30).
The detailed description and the drawings or figures are supportive and descriptive of the disclosure, but the scope of the disclosure is defined solely by the claims. While some of the best modes and other embodiments for carrying out the claimed teachings have been described in detail, various alternative designs and embodiments exist for practicing the disclosure defined in the appended claims.
Number | Date | Country | Kind |
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19151009.8 | Jan 2019 | EP | regional |