Abstract:
A bale composition determination system comprising a baler configured to pick up crop material cut and lying on the ground in the form of a windrow and to form bales of the crop material. The system additionally includes one or more sensors configured to obtain electromagnetic reflectance information for the crop material. The system further includes a control system configured to receive the electromagnetic reflectance information for the crop material and to generate vegetation index values for the bales of crop material based on the electromagnetic reflectance information.
Abstract:
An agricultural material baling system comprises, in one example, a bale forming component configured to form a bale of agricultural material from a terrain, and a control system configured to determine that the bale is to be released from the baling system onto the terrain, determine that a current location of the baling system has a slope above a threshold, determine a different location, that is spaced apart from the current location, for releasing the bale onto the terrain, and provide an output indicative of the different location. In one example, the control system is configured to receive yield data indicative of a volume of agricultural material in a path of the baler and to control the baling system based on the yield data. In one example, the yield data is obtained from a raking operation that rakes the agricultural material into a windrow.
Abstract:
An agricultural baler including a compression chamber housing, a support axle, springs provided at both sides of the compression chamber housing for supporting the housing on the support axle with a possibility of vertical displacement relative to the support axle, and sensors for determining a distance between the compression chamber housing and the support axle and for generating signals representing in response to sensing the distance a measure of a bale weight.
Abstract:
A method is provided for determining the weight of an agricultural bale that compensates for un-level terrain such as hillsides. The method uses an empty baler tare weight and a full baler weight to determine a raw bale weight. The cosine of the slope upon which the baler sits is then calculated based upon the empty baler weight as it sits and the empty baler tare weight. The cosine of the angle of slope and raw bale weight are then used to determine an actual bale weight. Further steps are provided for compensating in the tare weight of the baler for the weight of wrapping material and/or preservative consumed in the formation of each bale.
Abstract:
A method is provided for determining the weight of a agricultural bale that compensates for un-level terrain such as hillsides. The method uses an empty baler tare weight and a full baler weight to determine a raw bale weight. The cosine of the slope upon which the baler sits is then calculated based upon the empty baler weight as it sits and the empty baler tare weight. The cosine of the angle of slope and raw bale weight are then used to determine a actual bale weight. Further steps are provided for compensating in the tare weight of the baler for the weight of wrapping material consumed in the formation of each bale.
Abstract:
A method is provided for determining the weight of an agricultural bale that compensates for un-level terrain such as hillsides. The method uses an empty baler tare weight and a full baler weight to determine a raw bale weight. The cosine of the slope upon which the baler sits is then calculated based upon the empty baler weight as it sits and the empty baler tare weight. The cosine of the angle of slope and raw bale weight are then used to determine an actual bale weight. Further steps are provided for compensating in the tare weight of the baler for the weight of wrapping material consumed in the formation of each bale.
Abstract:
The invention relates to a round baler (1) for agricultural stalk material, which is arranged, in combination with a wrapper (3) for wrapping a round bale (42a) in film, on at least one running gear, a sloping plane in the form of a chute device (20) for the finished round bale (42a) being provided between the round baler (1) and the wrapper (3). To ensure that the round bale (42a) is transferred reliably and as quickly as possible to the wrapper (3) by simple means and without the expenditure of a large amount of force, it is proposed according to the invention that the chute device (20) be adjustable. Due to a steeper position of the chute device (20), the round bale (42a) rolls quickly out of the swivel zone (43) of the round baler (1), such that the rear housing (10) may be closed just as quickly as with round balers (1) operating alone.
Abstract:
An agricultural material baling system comprises, in one example, a bale forming component configured to form a bale of agricultural material from a terrain, and a control system configured to determine that the bale is to be released from the baling system onto the terrain, determine that a current location of the baling system has a slope above a threshold, determine a different location, that is spaced apart from the current location, for releasing the bale onto the terrain, and provide an output indicative of the different location. In one example, the control system is configured to receive yield data indicative of a volume of agricultural material in a path of the baler and to control the baling system based on the yield data. In one example, the yield data is obtained from a raking operation that rakes the agricultural material into a windrow.
Abstract:
Embodiments relate to weighing a bale formed by a round baler. One or more load cells, but not including load cells at each support of the baler, are used to obtain a measurement of the baler containing the bale and a measurement of the baler empty. Factors related to the slope of the surface on which the baler is located, the size of the bale, and the shape of the bale are used to adjust the measured weight of the bale.
Abstract:
A weighing apparatus for bales as they are released from the bale chute of an agricultural baler has a weighting table supported on a first side of a support frame by a single load beam and supported on a second side by a support element. The weighing apparatus has a mechanism for measuring the inclination of the weighing table relative to the horizontal as well as a load beam and processor. The processor receives the signal from the load beam and based upon the sensed inclination provide an indication of a weight supported by the weighing table.