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JP7525355B2 - combine - Google Patents

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JP7525355B2
JP7525355B2 JP2020162314A JP2020162314A JP7525355B2 JP 7525355 B2 JP7525355 B2 JP 7525355B2 JP 2020162314 A JP2020162314 A JP 2020162314A JP 2020162314 A JP2020162314 A JP 2020162314A JP 7525355 B2 JP7525355 B2 JP 7525355B2
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quality
measurement
grain
grains
unit
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JP2022054988A (en
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俊之 石橋
敦 木村
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Mitsubishi Mahindra Agricultural Machinery Co Ltd
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Mitsubishi Mahindra Agricultural Machinery Co Ltd
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Description

本発明は、収穫した穀粒の品質を計測するコンバインに関する。 The present invention relates to a combine that measures the quality of harvested grain.

収穫した穀粒の品質を計測する品質計測部を備えたコンバインが知られている。例えば、特許文献1、2に記載されるコンバインは、穀粒タンク内に水分率計測装置を備え、収穫した穀粒の水分率を計測可能に構成されている。 Combine harvesters equipped with a quality measuring unit that measures the quality of harvested grains are known. For example, the combine harvesters described in Patent Documents 1 and 2 are equipped with a moisture content measuring device in the grain tank and are configured to be able to measure the moisture content of harvested grains.

特開2016-67217号公報JP 2016-67217 A 特開2019-10075号公報JP 2019-10075 A

収穫した穀粒の品質は、通常、複数回の品質計測結果に基づいて評価されるが、品質計測部を備える従来のコンバインでは、一定周期で品質計測を行っているので、作業開始から穀粒の品質評価が可能になるまでに時間がかかり、その穀粒を収穫するか否かの判断が遅くなるという問題があった。 The quality of harvested grains is usually evaluated based on the results of multiple quality measurements, but in conventional combine harvesters equipped with a quality measurement unit, quality measurements are performed at regular intervals, which means that it takes time from the start of operation until the quality of the grains can be evaluated, resulting in a delayed decision on whether or not to harvest the grains.

本発明は、上記の如き実情に鑑みこれらの課題を解決することを目的として創作されたものであって、請求項1の発明は、穀稈を刈り取る刈取部と、刈り取った穀稈から穀粒を脱穀して選別する脱穀部と、選別された穀粒を貯留する穀粒タンクと、選別された穀粒の品質を計測する品質計測部と、前記品質計測部を制御する制御部と、を備えるコンバインであって、前記制御部は、所定の連続計測条件の成立に基づいて、前記品質計測部による穀粒の品質計測を連続実行させる連続計測モードと、前記品質計測部による穀粒の品質計測を間欠実行させる間欠計測モードとを備え、前記連続計測モードの終了後、前記間欠計測モードに切換えることを特徴とするコンバインである。
請求項2の発明は、前記制御部は、前記間欠計測モードのとき、所定の間欠計測条件の成立に基づいて、前記品質計測部による穀粒の品質計測を単発実行させることを特徴とする請求項1に記載のコンバインである。
請求項3の発明は、前記脱穀部から前記穀粒タンクに至る穀粒流路を備え、前記品質計測部は、前記穀粒タンクよりも上流側の穀粒流路で穀粒の品質計測を行うことを特徴とする請求項1または2に記載のコンバインである。
請求項4の発明は、前記品質計測部は、穀粒の水分率を計測する水分率計測装置と、穀粒を撮像する撮像装置と、を備えることを特徴とする請求項1~のいずれか1項に記載のコンバインである。
The present invention was created in consideration of the above-mentioned actual situation and with the aim of solving these problems.The invention of claim 1 is a combine harvester comprising a harvesting unit that harvests stalks, a threshing unit that threshes and sorts grains from the harvested stalks, a grain tank that stores the sorted grains, a quality measuring unit that measures the quality of the sorted grains, and a control unit that controls the quality measuring unit, wherein the control unit has a continuous measurement mode that causes the quality measuring unit to continuously measure the quality of the grains based on the establishment of predetermined continuous measurement conditions , and an intermittent measurement mode that causes the quality measuring unit to intermittently measure the quality of the grains, and is characterized in that the control unit switches to the intermittent measurement mode after the continuous measurement mode is ended .
The invention of claim 2 is a combine as described in the claim 1, characterized in that, when in the intermittent measurement mode, the control unit causes the quality measurement unit to execute a single-shot measurement of grain quality based on the establishment of a predetermined intermittent measurement condition .
The invention of claim 3 is a combine as described in claim 1 or 2, characterized in that it is provided with a grain flow path from the threshing section to the grain tank, and the quality measuring section measures the quality of the grain in the grain flow path upstream of the grain tank.
The invention of claim 4 is a combine described in any one of claims 1 to 3 , characterized in that the quality measuring unit is equipped with a moisture content measuring device that measures the moisture content of the grains, and an imaging device that images the grains.

請求項1の発明によれば、例えば、作業始めに連続計測モードを実行すると、短時間で複数の計測結果が得られるので、収穫するか否かの判断を速やかに行うことができる。
しかも過剰な品質計測を抑制し、品質計測部の寿命を延ばすことができる。
請求項の発明によれば、過剰な品質計測を抑制しつつ、良好な計測精度を確保できる。
請求項の発明によれば、穀粒タンク内で品質計測を行う従来に比べ、品質計測のタイミングを早めることができる。
請求項の発明によれば、水分率と画像データ(又は画像分析データ)によって穀粒の品質を容易に評価できる。
According to the invention of claim 1, for example, when the continuous measurement mode is executed at the start of work, a plurality of measurement results can be obtained in a short time, so that a decision as to whether or not to harvest can be made quickly.
Moreover, excessive quality measurement can be suppressed, and the life of the quality measurement unit can be extended.
According to the invention of claim 2 , it is possible to ensure good measurement accuracy while suppressing excessive quality measurement.
According to the third aspect of the present invention, the timing of quality measurement can be made earlier than in the conventional method in which quality measurement is performed inside a grain tank.
According to the fourth aspect of the present invention, the quality of grains can be easily evaluated based on the moisture content and image data (or image analysis data).

本発明の一実施形態に係るコンバインの平面図である。FIG. 1 is a plan view of a combine harvester according to one embodiment of the present invention. 本発明の一実施形態に係るコンバインの左側面図である。FIG. 2 is a left side view of a combine harvester according to one embodiment of the present invention. 本発明の一実施形態に係るコンバインの脱穀部の内部を示す左側面図である。This is a left side view showing the inside of the threshing section of a combine harvester according to one embodiment of the present invention. 本発明の一実施形態に係るコンバインの脱穀部の内部を示す平面図である。This is a plan view showing the inside of the threshing section of a combine in one embodiment of the present invention. 本発明の一実施形態に係るコンバインの揚穀装置の内部を示す右側面図である。A right side view showing the inside of the grain lifting device of a combine harvester in one embodiment of the present invention. 本発明の一実施形態に係るコンバインの品質計測後の穀粒還元経路を示す脱穀部の正面断面図である。This is a front cross-sectional view of the threshing section of a combine harvester according to one embodiment of the present invention, showing the grain return path after quality measurement. 本発明の一実施形態に係るコンバインの品質計測部を示す背面図である。FIG. 2 is a rear view showing the quality measuring section of a combine harvester according to one embodiment of the present invention. 本発明の一実施形態に係るコンバインのモニタ画面を示す図であり、(a)は通常画面の図、(b)は計測画面の図である。1A and 1B are diagrams showing the monitor screen of a combine harvester according to one embodiment of the present invention, in which (a) is a diagram of a normal screen, and (b) is a diagram of a measurement screen. 本発明の一実施形態に係るコンバインの制御構成を示すブロック図である。2 is a block diagram showing a control configuration of a combine harvester according to one embodiment of the present invention. FIG. 本発明の一実施形態に係るコンバインの制御手順を示すフローチャートである。4 is a flowchart showing a control procedure of a combine harvester according to one embodiment of the present invention.

[コンバイン]
以下、本発明の実施の形態について、図面に基づいて説明する。図1及び図2において、1はコンバインであって、該コンバイン1は、汎用コンバインであり、左右一対のクローラ式走行装置である走行装置2に支持された機体3を有している。機体3の前方には、圃場の穀稈を刈取る刈取部5が昇降自在に設けられており、機体3の前方一側には、オペレータが着座してコンバイン1を操縦する運転操作部6が設けられている。機体3の他側方には、刈取部5で刈取り・搬送された穀稈を脱穀処理及び選別処理する脱穀部7が設けられている。運転操作部6の後方には、脱穀部7で脱穀・選別された穀粒を貯留する穀粒タンク10が配置されており、穀粒タンク10の後方には、穀粒タンク10内に貯留された穀粒を機外に排出するための排出オーガ11が設けられている。
[combine]
Hereinafter, an embodiment of the present invention will be described with reference to the drawings. In Fig. 1 and Fig. 2, a combine harvester 1 is a general-purpose combine harvester, and has a machine body 3 supported by a pair of left and right crawler-type traveling devices 2. A reaping unit 5 for reaping stalks in a field is provided in front of the machine body 3 so as to be able to move up and down, and a driving operation unit 6 for an operator to sit and operate the combine harvester 1 is provided on one front side of the machine body 3. A threshing unit 7 for threshing and sorting the stalks reaped and transported by the reaping unit 5 is provided on the other side of the machine body 3. A grain tank 10 for storing grains threshed and sorted by the threshing unit 7 is provided behind the driving operation unit 6, and a discharge auger 11 for discharging the grains stored in the grain tank 10 to the outside of the machine is provided behind the grain tank 10.

刈取部5は、圃場の穀稈を分草するデバイダ12と、デバイダ12によって分草された穀稈を刈取るレシプロ式の刈刃13と、刈刃13の後方側に配設されたバケット状のプラットホーム14と、これらデバイダ12及び刈刃13の上方に配設され、穀稈を後方に掻き込むリール15と、を備えており、リール15によってプラットホーム14に掻き込まれた穀稈を、刈刃13が刈取るように構成されている。刈刃13によって刈り取られた穀稈は、プラットホーム14内のプラットホームオーガ16によって横送りされ、収穫した穀物をフィーダ17によって脱穀部7の扱室19内へ穀稈ごと投入するように構成されている。 The reaping section 5 is equipped with a divider 12 that divides the culms in the field, a reciprocating blade 13 that cuts the culms divided by the divider 12, a bucket-shaped platform 14 arranged behind the blade 13, and a reel 15 arranged above the divider 12 and the blade 13 that rakes the culms rearward. The blade 13 is configured to cut the culms rake into the platform 14 by the reel 15. The culms cut by the blade 13 are fed laterally by a platform auger 16 inside the platform 14, and the harvested grain is fed into the handling chamber 19 of the threshing section 7 by a feeder 17.

図2~図4に示すように、脱穀部7は、刈取部5によって刈り取られた穀稈が投入される扱室19と、扱室19の下方に配置される選別室9と、を有し、扱室19において穀稈の脱穀処理を行なうと共に、選別室9において脱穀された処理物の選別処理を行なう。扱室19内には、その外周面にらせん状に案内板20aが取付けられた扱胴20が回転自在に収納されており、案内板20aには、穀稈を引っ掛けて扱胴20と共に回転させる突起状の扱歯20bが複数設けられている。また、扱室19は、その下方側(扱胴20の下方部分)が扱胴20の外周に沿った半円筒状の受網21によって形成されており、扱室19に投入された穀稈は、扱歯20bによって扱胴20と一緒に回転させられ、案内板20aによって機体後方側に搬送されながら、受網21によって擦り付けられて脱穀される。 As shown in Figures 2 to 4, the threshing section 7 has a handling chamber 19 into which the stalks harvested by the harvesting section 5 are fed, and a sorting chamber 9 located below the handling chamber 19. The stalks are threshed in the handling chamber 19, and the threshed material is sorted in the sorting chamber 9. A threshing drum 20 having a spiral guide plate 20a attached to its outer periphery is housed in the handling chamber 19 so as to be freely rotatable. The guide plate 20a is provided with a number of protruding threshing teeth 20b that hook the stalks and rotate them together with the threshing drum 20. In addition, the lower side of the threshing chamber 19 (the lower part of the threshing drum 20) is formed by a semi-cylindrical receiving net 21 that follows the outer circumference of the threshing drum 20, and the stalks fed into the threshing chamber 19 are rotated together with the threshing drum 20 by the threshing teeth 20b, and are threshed by being rubbed against the receiving net 21 while being transported to the rear side of the machine by the guide plate 20a.

選別室9は、受網21の下方側に配設された揺動選別体22と、揺動選別体22の前部下方側から後部上方側に向かって選別風を送風する唐箕ファン23及び送風ファン24と、を有している。揺動選別体22は、上下二段構造となっており、上段のフィードパン25、チャフシーブ26及びストローラック27と、下段のグレンシーブ29、チャフシーブ30及びストローラック31と、からなり、これらが上段及び下段にて連続して設けられ、前後に揺動されることで処理物が比重選別される。 The sorting chamber 9 has a oscillating sorting body 22 arranged below the receiving net 21, and a winnowing fan 23 and a blower fan 24 that blow sorting air from the lower front side to the upper rear side of the oscillating sorting body 22. The oscillating sorting body 22 has a two-tiered structure, with an upper tier of feed pan 25, chaff sieve 26, and straw rack 27, and a lower tier of grain sieve 29, chaff sieve 30, and straw rack 31, which are arranged consecutively on the upper and lower tiers and are oscillated back and forth to separate the material by gravity.

フィードパン25は、波板状の移送板であって、受網21から漏下する処理物及び後述する二番物を受け止めて後方移送する。チャフシーブ26、30は、前後方向に所定間隔を存して並設される複数のフィンによって構成され、後方移送されたこれら処理物を唐箕ファン23及び送風ファン24の選別風によって風選別すると共に篩選別し、更に所定の目合の金網部材からなるグレンシーブ29を通過した穀粒は、一番物として一番ラセン32に落下する。 The feed pan 25 is a corrugated transfer plate that receives the processed material that drops through the receiving net 21 and the second grain, which will be described later, and transfers it to the rear. The chaff sieves 26, 30 are made up of multiple fins arranged side by side at a specified interval in the front-to-rear direction, and the processed material transferred to the rear is wind-sorted and sieved by the sorting wind of the winnowing fan 23 and the blower fan 24. The grains that pass through the grain sieve 29, which is made of a wire mesh member with a specified mesh size, fall into the first spiral 32 as the first grain.

一方、揺動選別体22の終端部まで移送された処理物は、ストローラック27、チャフシーブ30及びストローラック31を介して二番ラセン33に落下する。また、ストローラック31にて落下規制された長藁は、その終端まで移送され、機外に排出される。なお、扱室19及び選別室9は、機体3に開閉自在に支持されたサイドカバー36を上方に開くことで、作業者はアクセスすることができる。 Meanwhile, the processed material transported to the end of the oscillating sorting body 22 falls into the second helix 33 via the straw rack 27, chaff sieve 30, and straw rack 31. Long straw, which is prevented from falling by the straw rack 31, is transported to the end and discharged outside the machine. The handling chamber 19 and sorting chamber 9 can be accessed by the operator by opening upward the side cover 36, which is supported on the machine body 3 so that it can be opened and closed freely.

図3~図5に示すように、一番ラセン32には、穀粒タンク10に一番物である穀粒を揚送するための揚穀装置37が連動連結され、二番ラセン33には、二番物を扱室19の一側方に配置した還元室39に揚送還元する還元装置40が連動連結されている。還元室39内には、扱胴20と平行な還元横ラセン41が軸装されており、還元横ラセン41によって、還元装置40から還元室39の後端部に還元された二番物が扱胴20の搬送方向とは逆方向、即ち後方から前方に向けて搬送される。 As shown in Figures 3 to 5, the first helix 32 is linked to a lifting device 37 for lifting the first grains to the grain tank 10, and the second helix 33 is linked to a reduction device 40 for lifting and reducing the second grains to a reduction chamber 39 located on one side of the handling chamber 19. A reduction horizontal helix 41 parallel to the handling drum 20 is mounted within the reduction chamber 39, and the second grains reduced from the reduction device 40 to the rear end of the reduction chamber 39 are transported by the reduction horizontal helix 41 in the opposite direction to the transport direction of the handling drum 20, that is, from rear to front.

還元室39は、その前端部に扱室19の脱穀始端部に臨む扱室還元口42を有し、還元横ラセン41によって還元室39の前端部まで搬送された二番物は、還元横ラセン41の前端に固定された跳出板43によって跳ね出されて、扱室還元口42を通って扱室19に還元される。 The reduction chamber 39 has a handling chamber reduction port 42 at its front end facing the threshing start end of the handling chamber 19, and the second grain transported to the front end of the reduction chamber 39 by the reduction horizontal screw 41 is ejected by a spring plate 43 fixed to the front end of the reduction horizontal screw 41 and returned to the handling chamber 19 through the handling chamber reduction port 42.

図3~図5に示すように、揚穀装置37の上端部前方には、貯留横ラセン45及び品質計測部50が配置されている。貯留横ラセン45は、左右方向に沿って配置されており、揚穀装置37の上端部から前方に跳ね出される穀粒を受け止めて右側方へ搬送し、穀粒タンク10内に落下させる。また、品質計測部50は、貯留横ラセン45の前方に配置され、揚穀装置37の上端部から前方に跳ね出される穀粒を選択的に受け入れ、その品質を計測する。つまり、品質計測部50は、穀粒タンク10よりも上流側の穀粒流路で穀粒の品質計測を行う。これにより、穀粒タンク10内で品質計測を行う従来に比べ、品質計測のタイミングを早めることができる。以下、品質計測部50について、図4~図8を参照して説明する。 As shown in Figures 3 to 5, a horizontal storage screw 45 and a quality measuring unit 50 are arranged in front of the upper end of the grain lifting device 37. The horizontal storage screw 45 is arranged along the left-right direction, and receives grains that are thrown forward from the upper end of the grain lifting device 37, transports them to the right, and drops them into the grain tank 10. The quality measuring unit 50 is also arranged in front of the horizontal storage screw 45, and selectively receives grains that are thrown forward from the upper end of the grain lifting device 37 and measures their quality. In other words, the quality measuring unit 50 measures the quality of the grains in the grain flow path upstream of the grain tank 10. This makes it possible to advance the timing of quality measurement compared to the conventional method in which quality measurement is performed inside the grain tank 10. The quality measuring unit 50 will be described below with reference to Figures 4 to 8.

[品質計測部]
品質計測部50は、選別された穀粒を貯留部61に貯留し、貯留した多数の穀粒を対象として品質計測を行う貯留計測式穀粒計測装置60(撮像装置)と、選別された1又は数個の穀粒を対象として品質計測を行う単粒計測式穀粒計測装置70(水分率計測装置)と、を備える。本実施形態のコンバイン1では、貯留計測式穀粒計測装置60による穀粒の品質計測と、単粒計測式穀粒計測装置70による品質計測を並行して行わせることが可能であり、同条件の穀粒を対象として異なる計測方式で品質計測を行うことができる。
[Quality Measurement Department]
The quality measuring section 50 includes a storage measurement type grain measuring device 60 (imaging device) that stores the sorted grains in a storage section 61 and performs quality measurement on the stored large number of grains, and a single grain measurement type grain measuring device 70 (moisture content measuring device) that performs quality measurement on one or several selected grains. In the combine harvester 1 of this embodiment, it is possible to perform grain quality measurement by the storage measurement type grain measuring device 60 and quality measurement by the single grain measurement type grain measuring device 70 in parallel, and quality measurements can be performed on grains under the same conditions using different measurement methods.

[貯留計測式穀粒計測装置]
貯留計測式穀粒計測装置60は、揚穀装置37の上端部から前方に跳ね出される穀粒を受け入れる穀粒入口62と、穀粒入口62を開閉する入口シャッタ63と、穀粒入口62から受け入れた穀粒を貯留する貯留部61と、貯留部61の下部に形成され、貯留部61内の穀粒を揺動選別体22上に還元する穀粒出口64と、穀粒出口64を開閉する底シャッタ65と、貯留部61の一側部に設けられ、透明部材66を介して貯留部61内の穀粒を視認可能な撮像室67と、撮像室67内に配置され、透明部材66を介して貯留部61内の穀粒を照らすLEDなどの発光素子68と、撮像室67内に配置され、発光素子68で照らされた貯留部61内の穀粒を撮像するカメラ69と、を備える。なお、本実施形態の貯留計測式穀粒計測装置60は、カメラ69(画像解析を含む)を用いて構成されるが、貯留した穀粒を対象として品質計測を行うものであれば、カメラ69に限らず、静電容量センサ、近赤外線センサなどであってもよい。
[Storage measurement type grain measuring device]
The storage measurement type grain measuring device 60 comprises a grain inlet 62 that receives grains that are ejected forward from the upper end of the grain lifting device 37, an inlet shutter 63 that opens and closes the grain inlet 62, a storage section 61 that receives the grains received from the grain inlet 62, a grain outlet 64 formed at the bottom of the storage section 61 and returning the grains in the storage section 61 onto the oscillating sorting body 22, a bottom shutter 65 that opens and closes the grain outlet 64, an imaging chamber 67 provided on one side of the storage section 61 and allowing the grains in the storage section 61 to be viewed through a transparent member 66, a light-emitting element 68 such as an LED that is arranged in the imaging chamber 67 and illuminates the grains in the storage section 61 through the transparent member 66, and a camera 69 that is arranged in the imaging chamber 67 and images the grains in the storage section 61 illuminated by the light-emitting element 68. It should be noted that the storage measurement type grain measuring device 60 of this embodiment is configured using a camera 69 (including image analysis), however, as long as it performs quality measurement on the stored grains, it is not limited to the camera 69 and may also be a capacitance sensor, a near-infrared sensor, etc.

貯留計測式穀粒計測装置60による品質計測を行う場合は、底シャッタ65を閉じた状態で入口シャッタ63を開き、穀粒入口62から穀粒を受け入れ、受け入れた穀粒を貯留部61に貯留する。貯留部61内の穀粒が所定量に達したら、透明部材66を介して貯留部61内の穀粒を発光素子68で照らしつつ、発光素子68で照らされた貯留部61内の穀粒をカメラ69で撮像する。撮像後は、底シャッタ65を開いて貯留部61内の穀粒を揺動選別体22上に還元するとともに、入口シャッタ63を閉じる。 When performing quality measurement using the storage measurement type grain measuring device 60, the entrance shutter 63 is opened with the bottom shutter 65 closed, grains are received through the grain entrance 62, and the received grains are stored in the storage section 61. When the grains in the storage section 61 reach a predetermined amount, the grains in the storage section 61 are illuminated by the light emitting element 68 through the transparent member 66, and an image of the grains in the storage section 61 illuminated by the light emitting element 68 is taken by the camera 69. After the image is taken, the bottom shutter 65 is opened to return the grains in the storage section 61 onto the oscillating sorting body 22, and the entrance shutter 63 is closed.

図8に示すように、カメラ69が撮像した穀粒画像は、運転操作部6に設けられる液晶モニタ81(タッチパネル付き液晶パネル)に表示される。液晶モニタ81は、少なくとも、エンジン回転数、走行速度、燃料残量、穀粒タンク10内の穀粒量などを表示する通常画面81a(図8の(a)参照)と、品質計測部50の計測結果を表示する計測画面81b(図8の(b)参照)と、を表示可能であり、通常画面81aの左端部に表示される計測ボタン81cをタップ操作すると、計測画面81bに切り換えられる。 As shown in FIG. 8, the grain image captured by the camera 69 is displayed on a liquid crystal monitor 81 (a liquid crystal panel with a touch panel) provided on the driving operation unit 6. The liquid crystal monitor 81 can display at least a normal screen 81a (see FIG. 8(a)) that displays the engine speed, driving speed, remaining fuel, amount of grain in the grain tank 10, etc., and a measurement screen 81b (see FIG. 8(b)) that displays the measurement results of the quality measurement unit 50. When a measurement button 81c displayed on the left end of the normal screen 81a is tapped, the screen is switched to the measurement screen 81b.

計測画面81bには、圃場の複数箇所で実施された品質計測結果81dが表示される。本実施形態では、1画面に4箇所の品質計測結果81dを表示可能であり、次ページボタン81eのタップ操作により、それ以外の箇所で計測した品質計測結果81dを順次表示させることができる。 The measurement screen 81b displays quality measurement results 81d performed at multiple locations in the field. In this embodiment, quality measurement results 81d at four locations can be displayed on one screen, and quality measurement results 81d measured at other locations can be displayed in sequence by tapping the next page button 81e.

計測画面81bに表示される各品質計測結果81dには、カメラ69が撮像した穀粒画像と、穀粒画像の解析データ(例えば、穀粒の平均サイズ、サイズの均一性、汚れ具合など)と、単粒計測式穀粒計測装置70が計測した穀粒水分率と、計測した位置情報(圃場内の計測位置情報(GNSS情報))と、計測した日時情報と、が含まれる。各品質計測結果81dは、対応して表示される削除ボタン81fのタップ操作により削除することができる。また、計測画面81bの右下位置には、全計測箇所の平均水分率が表示される。 Each quality measurement result 81d displayed on the measurement screen 81b includes a grain image captured by the camera 69, analysis data of the grain image (e.g., average grain size, size uniformity, degree of dirt, etc.), grain moisture content measured by the single-grain measurement type grain measuring device 70, measurement location information (measurement location information in the field (GNSS information)), and measurement date and time information. Each quality measurement result 81d can be deleted by tapping the corresponding delete button 81f. In addition, the average moisture content of all measurement points is displayed in the lower right position of the measurement screen 81b.

[単粒計測式穀粒計測装置]
単粒計測式穀粒計測装置70は、貯留部61の他側部に設けられている。単粒計測式穀粒計測装置70の穀粒取込部71は、穀粒入口62から貯留部61至る穀粒貯留経路に配置されており、穀粒貯留経路を通る穀粒の一部を分岐させて単粒計測式穀粒計測装置70の計測部72に取り込み、取り込んだ穀粒の水分率計測を行う。また、計測後の穀粒は、排出口73から排出され、揺動選別体22上に還元される。このような構成によれば、貯留計測式穀粒計測装置60の穀粒貯留経路を通る穀粒の一部を分岐させて単粒計測式穀粒計測装置70に取り込むので、品質計測部50の大型化を抑制しつつ、単粒計測式穀粒計測装置70及び貯留計測式穀粒計測装置60を配置することが可能になる。
[Single grain measurement type grain measuring device]
The single grain measurement type grain measuring device 70 is provided on the other side of the storage section 61. The grain intake section 71 of the single grain measurement type grain measuring device 70 is disposed in the grain storage path from the grain inlet 62 to the storage section 61, and some of the grains passing through the grain storage path are branched and taken into the measurement section 72 of the single grain measurement type grain measuring device 70, and the moisture content of the taken-in grains is measured. In addition, the grains after measurement are discharged from the discharge port 73 and returned onto the oscillating sorting body 22. According to this configuration, some of the grains passing through the grain storage path of the storage measurement type grain measuring device 60 are branched and taken into the single grain measurement type grain measuring device 70, so that it is possible to arrange the single grain measurement type grain measuring device 70 and the storage measurement type grain measuring device 60 while suppressing an increase in size of the quality measurement section 50.

具体的に説明すると、本実施形態の単粒計測式穀粒計測装置70は、一対のサンプリングスクリュー74で構成される穀粒取込部71と、水分計75(図9参照)などを内装した計測部72と、を備える。穀粒取込部71は、一対のサンプリングスクリュー74に乗った穀粒を一対のサンプリングスクリュー74の所定方向の回転駆動に基づいて一粒ずつ計測部72内に送り込む。計測部72は、送り込まれた穀粒を破砕する破砕部(図示せず)と、破砕した穀粒を挟むように配置された一対の電極間(図示せず)で穀粒の水分を計測する水分計75と、を備える。水分計75は、一対の電極間の電気抵抗や静電容量の変化に基づいて穀粒の水分率を計測する。そして、水分計75の計測結果は、液晶モニタ81の計測画面81bに表示される。 Specifically, the single-grain measuring type grain measuring device 70 of this embodiment includes a grain intake section 71 composed of a pair of sampling screws 74, and a measuring section 72 incorporating a moisture meter 75 (see FIG. 9). The grain intake section 71 feeds the grains on the pair of sampling screws 74 into the measuring section 72 one by one based on the rotational drive of the pair of sampling screws 74 in a predetermined direction. The measuring section 72 includes a crushing section (not shown) that crushes the fed grains, and a moisture meter 75 that measures the moisture of the grains between a pair of electrodes (not shown) arranged to sandwich the crushed grains. The moisture meter 75 measures the moisture content of the grains based on the change in electrical resistance or capacitance between the pair of electrodes. The measurement results of the moisture meter 75 are displayed on the measurement screen 81b of the liquid crystal monitor 81.

[制御部]
図9に示すように、コンバイン1には、貯留計測式穀粒計測装置60及び単粒計測式穀粒計測装置70による穀粒の品質計測を制御する制御部100が設けられている。制御部100の入力側には、前述したカメラ69及び単粒計測式穀粒計測装置70に加え、品質計測部50による品質計測をON/OFFさせる計測実行スイッチ101と、コンバイン1の走行状態を検出する走行検出手段102(車速センサ、主変速レバー位置センサなど)と、刈取・脱穀駆動検出手段103(パワークラッチスイッチ、クラッチ入切検出センサなど)と、搬送穀稈を検出する搬送穀稈検出手段104(収穫作物検出手段)と、選別室9内の処理物を検出する処理物検出手段105(収穫作物検出手段)と、穀粒タンク10内の穀粒量を検出する複数のタンクレベルセンサ106と、入口シャッタ63の開位置を調節操作するシャッタ開口面積調節手段107と、入口シャッタ63の開閉位置を検出する入口シャッタ位置検出手段108と、底シャッタ65の開閉位置を検出する底シャッタ位置検出手段109と、貯留部61内の穀粒量を検出するサンプリング穀粒量検出手段110と、コンバイン1の位置を検出する機体位置検出手段111(GNSSなど)と、が接続されている。
[Control unit]
As shown in Figure 9, the combine harvester 1 is provided with a control unit 100 that controls the quality measurement of grains by the storage measurement type grain measuring device 60 and the single grain measurement type grain measuring device 70. In addition to the camera 69 and the single grain measurement type grain measuring device 70, the input side of the control unit 100 is provided with a measurement execution switch 101 that switches ON/OFF the quality measurement by the quality measuring unit 50, travel detection means 102 (vehicle speed sensor, main shift lever position sensor, etc.) that detects the travel state of the combine harvester 1, reaping/threshing drive detection means 103 (power clutch switch, clutch on/off detection sensor, etc.), transported culm detection means 104 (harvested crop detection means) that detects transported culms, and processed material detection means 105 ( The grain tank 10 is connected to a harvested crop detection means 104, a plurality of tank level sensors 106 that detect the amount of grain in the grain tank 10, a shutter opening area adjustment means 107 that adjusts the open position of the entrance shutter 63, an entrance shutter position detection means 108 that detects the open/closed position of the entrance shutter 63, a bottom shutter position detection means 109 that detects the open/closed position of the bottom shutter 65, a sampling grain amount detection means 110 that detects the amount of grain in the storage section 61, and a machine position detection means 111 (such as GNSS) that detects the position of the combine 1.

また、制御部100の出力側には、前述したカメラ69、単粒計測式穀粒計測装置及び液晶モニタ81の他に、入口シャッタ63を開閉させる入口シャッタ駆動手段112と、底シャッタ65を開閉させる底シャッタ駆動手段113と、警報音を出力するブザー114と、が接続されている。また、制御部100は、品質計測部50の計測データを記憶するデータ記憶部115と、圃場の位置情報を記憶するマップ情報116と、外部サーバー117と通信する通信部118と、を備えており、品質計測部50の計測データは、液晶モニタ81に表示したり、データ記憶部114に記憶したりするだけでなく、外部サーバー117にも送信される。 In addition to the camera 69, single-grain measuring type grain measuring device, and liquid crystal monitor 81, the output side of the control unit 100 is connected to an entrance shutter driving means 112 for opening and closing the entrance shutter 63, a bottom shutter driving means 113 for opening and closing the bottom shutter 65, and a buzzer 114 for outputting an alarm sound. The control unit 100 also includes a data storage unit 115 for storing the measurement data of the quality measuring unit 50, map information 116 for storing the position information of the field, and a communication unit 118 for communicating with an external server 117. The measurement data of the quality measuring unit 50 is not only displayed on the liquid crystal monitor 81 and stored in the data storage unit 114, but is also transmitted to the external server 117.

[機能構成]
制御部100は、ハードウェアとソフトウェアとの協働により実現される機能的な構成として、品質計測部50を制御する計測制御手段を備える。本実施形態の計測制御手段は、貯留計測式穀粒計測装置60による穀粒の品質計測と、単粒計測式穀粒計測装置70による品質計測を並行して行わせる。また、計測制御手段は、品質計測部50による穀粒の品質計測を連続実行させる連続計測モードと、品質計測部50による穀粒の品質計測を間欠実行させる間欠計測モードと、を備える。
[Functional configuration]
The control unit 100, as a functional configuration realized by cooperation between hardware and software, includes a measurement control means for controlling the quality measuring unit 50. The measurement control means of this embodiment causes grain quality measurement by the storage measurement type grain measuring device 60 and quality measurement by the single grain measurement type grain measuring device 70 to be performed in parallel. The measurement control means also includes a continuous measurement mode for continuously measuring grain quality by the quality measuring unit 50, and an intermittent measurement mode for intermittently measuring grain quality by the quality measuring unit 50.

連続計測モードでは、所定の連続計測条件の成立に基づいて、品質計測部50による穀粒の品質計測を連続実行させる。連続計測条件には、圃場における刈り始め検出、又は刈り始めにおける所定のオペレータ操作が含まれる。例えば、刈り始めスイッチを設け、刈り始めにオペレータが刈り始めスイッチを操作すると、連続計測モードとなり、品質計測部50による穀粒の品質計測が連続実行される。また、刈り始め検出に基づいて連続計測モードに移行させる場合は、機体位置検出手段111の検出位置とマップ情報116に基づいて刈り始め位置を検出する方法、エンジン始動後、初めて刈取クラッチなどの作業クラッチが入り操作されたことに基づいて刈り始めを検出する方法、エンジン始動後、初めて搬送穀稈や処理物を検出したことに基づいて刈り始めを検出する方法などを用いて刈り始めを検出することができる。 In the continuous measurement mode, the quality measurement unit 50 continuously measures the quality of grains based on the establishment of a predetermined continuous measurement condition. The continuous measurement condition includes detection of the start of cutting in the field or a predetermined operator operation at the start of cutting. For example, if a start of cutting switch is provided and the operator operates the start of cutting switch at the start of cutting, the continuous measurement mode is entered and the quality measurement unit 50 continuously measures the quality of grains. In addition, when transitioning to the continuous measurement mode based on detection of the start of cutting, the start of cutting can be detected using a method of detecting the start of cutting position based on the detection position of the machine position detection means 111 and the map information 116, a method of detecting the start of cutting based on the first operation of a work clutch such as a cutting clutch being engaged after the engine has started, or a method of detecting the start of cutting based on the first detection of transported stalks or processed materials after the engine has started.

このように刈り始めに連続計測モードを実行すれば、刈り始めに短時間で複数の計測結果が得られるので、その圃場の作物が収穫すべきものか否かの判断を速やかに行うことができる。また、制御部100は、連続計測モードの終了後、間欠計測モードに切換える。これにより、過剰な品質計測を抑制し、品質計測部50の寿命を延ばすことができる。 By executing the continuous measurement mode at the start of mowing in this way, multiple measurement results can be obtained in a short period of time at the start of mowing, allowing a quick decision to be made as to whether or not the crop in the field should be harvested. In addition, after the continuous measurement mode ends, the control unit 100 switches to the intermittent measurement mode. This makes it possible to prevent excessive quality measurements and extend the life of the quality measurement unit 50.

間欠計測モードでは、所定の間欠計測条件の成立に基づいて、品質計測部50による穀粒の品質計測を単発実行させる。間欠計測条件には、収穫した作物を検出する収穫作物検出手段(本実施形態では搬送穀稈検出手段104又は処理物検出手段105)が作物非検出状態から作物検出状態に切り換わるという条件が含まれる。このような構成によれば、刈始めや刈取り再開時に品質計測を単発実行することで、圃場の全域で収穫した穀粒の品質を万遍なく計測できる。なお、本実施形態のコンバイン1は、収穫作物検出手段として搬送穀稈検出手段104及び処理物検出手段105を備えるが、収穫作物検出手段は、穀粒流量を検出するインパクトセンサなどであってもよい。また、間欠計測条件には、穀粒タンク10内の穀粒量、コンバイン1の位置情報などを含めることができる。 In the intermittent measurement mode, the quality measurement unit 50 performs a single grain quality measurement based on the establishment of a predetermined intermittent measurement condition. The intermittent measurement condition includes a condition that the harvested crop detection means (in this embodiment, the transported stalk detection means 104 or the processed material detection means 105) that detects the harvested crop switches from a crop non-detection state to a crop detection state. With this configuration, the quality measurement is performed single-time when the harvesting starts or when harvesting resumes, so that the quality of the harvested grains can be measured evenly throughout the entire field. The combine harvester 1 of this embodiment is equipped with the transported stalk detection means 104 and the processed material detection means 105 as the harvested crop detection means, but the harvested crop detection means may be an impact sensor that detects the grain flow rate. The intermittent measurement condition may also include the amount of grain in the grain tank 10, position information of the combine harvester 1, etc.

[制御手順]
つぎに、上記のような機能構成を実現する制御部100の制御手順について、図10に示すフローチャートを参照して説明する。なお、上記の連続計測モードは、ステップS108~S119により実現され、上記の間欠計測モードは、ステップS123~S135により実現される。
[Control Procedure]
Next, the control procedure of the control unit 100 for realizing the above-mentioned functional configuration will be described with reference to the flowchart shown in Fig. 10. The above-mentioned continuous measurement mode is realized by steps S108 to S119, and the above-mentioned intermittent measurement mode is realized by steps S123 to S135.

図10に示すように、制御部100は、まず、計測実行スイッチ101のON/OFFを判断し(S101)、この判断結果がOFFの場合は、底シャッタ65の開き駆動処理(S102)及び入口シャッタ63の閉じ駆動処理(S103)を実行するとともに、連続計測フラグを「0」として上位ルーチンに復帰する(S104)。 As shown in FIG. 10, the control unit 100 first determines whether the measurement execution switch 101 is ON/OFF (S101). If the result of this determination is OFF, the control unit 100 executes the opening drive process for the bottom shutter 65 (S102) and the closing drive process for the entrance shutter 63 (S103), and returns to the upper routine with the continuous measurement flag set to "0" (S104).

一方、制御部100は、計測実行スイッチ101がONであると判断した場合、コンバイン1が収穫中であるか否かを判断する(S105)。例えば、走行検出手段102、刈取・脱穀駆動検出手段103及び搬送穀稈検出手段104の検出結果に基づいて収穫中であるか否かを判断することができる。制御部100は、収穫中でないと判断した場合、ステップS102~S104を実行して上位ルーチンに復帰する一方、収穫中であると判断した場合は、刈り始めであるか否かを判断し(S106)、刈り始めの場合は、連続計測フラグを「1」とする(S107)。 On the other hand, when the control unit 100 determines that the measurement execution switch 101 is ON, it determines whether the combine harvester 1 is in harvesting or not (S105). For example, it can determine whether harvesting is in progress based on the detection results of the travel detection means 102, the reaping/threshing drive detection means 103, and the transported stalk detection means 104. When the control unit 100 determines that harvesting is not in progress, it executes steps S102 to S104 and returns to the upper routine, whereas when it determines that harvesting is in progress, it determines whether harvesting has started (S106), and if so, sets the continuous measurement flag to "1" (S107).

つぎに、制御部100は、連続計測フラグが「1」、「0」のいずれであるかを判断し(S108)、この判断結果が「1」の場合は、底シャッタ65が閉じているかを判断し(S109)、この判断結果がNOの場合は、底シャッタ65を閉じ駆動させ(S110)、また、入口シャッタ63が開いているかを判断し(S111)、この判断結果がNOの場合は、入口シャッタ63を開き駆動させる(S112)。 Next, the control unit 100 determines whether the continuous measurement flag is "1" or "0" (S108), and if the result of this determination is "1", it determines whether the bottom shutter 65 is closed (S109), and if the result of this determination is NO, it drives the bottom shutter 65 to close (S110), and also determines whether the entrance shutter 63 is open (S111), and if the result of this determination is NO, it drives the entrance shutter 63 to open (S112).

続いて、制御部100は、単粒計測式穀粒計測装置70による水分計測を開始した後(S113)、貯留部61のサンプリング穀粒量が所定以上であるか否かを判断するとともに(S114)、所定個数の穀粒水分計測が終了したか否かを判断する(S115)。制御部100は、ステップS114及びS115の判断結果がいずれもYESとなったら、カメラ69による貯留穀粒の撮影を実行するとともに、所定個数の穀粒平均水分率を算出して最新データとして保存し、さらには、カメラ69の静止画像データと水分率データを紐付けして保存する(S116)。また、制御部100は、蓄積した最新データを平均化して圃場全体の穀粒平均水分率を算出して保存する(S117)。なお、データの保存先には、機体上の記憶部だけでなく、外部サーバ117の記憶部が含まれる。また、紐付けて保存するデータには、カメラ69の静止画像データや水分率データだけでなく、圃場内の計測位置情報(GNSS情報)などを含めることができる。 Next, the control unit 100 starts moisture measurement by the single-grain measuring type grain measuring device 70 (S113), and then judges whether the amount of sampled grains in the storage unit 61 is equal to or greater than a predetermined amount (S114), and judges whether moisture measurement of a predetermined number of grains has been completed (S115). If the judgment results of steps S114 and S115 are both YES, the control unit 100 executes photography of the stored grains by the camera 69, calculates the average moisture content of a predetermined number of grains, and stores it as the latest data, and further links the still image data of the camera 69 to the moisture content data and stores it (S116). In addition, the control unit 100 averages the latest accumulated data to calculate the average moisture content of grains for the entire field and stores it (S117). Note that the data storage destination includes not only the memory unit on the machine but also the memory unit of the external server 117. In addition, the data that is linked and stored can include not only still image data and moisture content data from the camera 69, but also measurement position information (GNSS information) within the field.

その後、制御部100は、底シャッタ65を開き駆動して貯留部61内の穀粒を揺動選別体22上に還元するとともに(S118)、計測結果を液晶モニタ81に出力し、1回の計測終了をブザー114で報知する(S119)。また、制御部100は、連続計測終了条件が成立したか否かを判断し(S120)、この判断結果がYESの場合は、連続計測フラグを「0」とし(S121)、入口シャッタ63を閉じ駆動した後(S122)、上位ルーチンに復帰する。連続計測終了条件は、例えば、連続計測の所定回数(例えば、5回)の実行完了、所定のオペレータ操作(例えば、連続計測の開始・終了を操作可能な手動スイッチの操作)、所定の走行距離、刈り終わり検出などであり、この条件が成立するまで、ステップS108~S119による品質計測が繰り返される。 Then, the control unit 100 opens and drives the bottom shutter 65 to return the grains in the storage unit 61 onto the oscillating sorting body 22 (S118), outputs the measurement result to the liquid crystal monitor 81, and notifies the completion of one measurement by the buzzer 114 (S119). The control unit 100 also determines whether the continuous measurement end condition is met (S120), and if the result of this determination is YES, sets the continuous measurement flag to "0" (S121), closes the entrance shutter 63 (S122), and then returns to the upper routine. The continuous measurement end condition is, for example, the completion of a predetermined number of continuous measurements (e.g., five times), a predetermined operator operation (e.g., operation of a manual switch that can start and end continuous measurements), a predetermined travel distance, detection of the end of reaping, etc., and the quality measurement in steps S108 to S119 is repeated until this condition is met.

一方、制御部100は、ステップS108において、連続計測フラグが「0」であると判断した場合、収穫作物検出手段がOFFからONに切り換わったか、それ以外であるかを判断し(S123)、ここで、それ以外と判断した場合は、底シャッタ65の開き駆動処理(S102)及び入口シャッタ63の閉じ駆動処理(S103)を実行するとともに、連続計測フラグを「0」として上位ルーチンに復帰するが(S104)、収穫作物検出手段がOFFからONに切り換わったと判断した場合は、ステップS124~S135によって品質計測を単発実行する。 On the other hand, if the control unit 100 determines in step S108 that the continuous measurement flag is "0", it determines whether the harvested crop detection means has switched from OFF to ON or otherwise (S123). If it determines otherwise, it executes the opening drive process for the bottom shutter 65 (S102) and the closing drive process for the entrance shutter 63 (S103), and returns to the upper routine with the continuous measurement flag set to "0" (S104). However, if it determines that the harvested crop detection means has switched from OFF to ON, it executes a single quality measurement in steps S124 to S135.

つまり、制御部100は、底シャッタ65が閉じているかを判断し(S124)、この判断結果がNOの場合は、底シャッタ65を閉じ駆動させ(S125)、また、入口シャッタ63が開いているかを判断し(S126)、この判断結果がNOの場合は、入口シャッタ63を開き駆動させる(S127)。続いて、制御部100は、単粒計測式穀粒計測装置70による水分計測を開始した後(S128)、貯留部61のサンプリング穀粒量が所定以上であるか否かを判断するとともに(S129)、所定個数の穀粒水分計測が終了したか否かを判断する(S130)。制御部100は、ステップS129及びS130の判断結果がいずれもYESとなったら、カメラ69による貯留穀粒の撮影を実行するとともに、所定個数の穀粒平均水分率を算出して最新データとして保存し、さらには、カメラ69の静止画像データと水分率データを紐付けして保存する(S131)。また、制御部100は、蓄積した最新データを平均化して圃場全体の穀粒平均水分率を算出して保存する(S132)。 That is, the control unit 100 judges whether the bottom shutter 65 is closed (S124), and if the judgment result is NO, drives the bottom shutter 65 to close (S125), and judges whether the entrance shutter 63 is open (S126), and if the judgment result is NO, drives the entrance shutter 63 to open (S127). Next, the control unit 100 starts moisture measurement by the single-grain measurement type grain measuring device 70 (S128), and then judges whether the amount of sampled grains in the storage unit 61 is equal to or greater than a predetermined amount (S129), and judges whether the moisture measurement of a predetermined number of grains has been completed (S130). If the judgment results of steps S129 and S130 are both YES, the control unit 100 executes the photographing of the stored grains by the camera 69, calculates the average moisture content of a predetermined number of grains, and stores it as the latest data, and further associates the still image data of the camera 69 with the moisture content data and stores them (S131). The control unit 100 also averages the latest accumulated data to calculate and store the average grain moisture content for the entire field (S132).

その後、制御部100は、底シャッタ65を開き駆動して貯留部61内の穀粒を揺動選別体22上に還元するとともに(S133)、計測結果を液晶モニタ81に出力し、1回の計測終了をブザー114で報知し(S134)、さらに、入口シャッタ63を閉じ駆動した後(S135)、上位ルーチンに復帰する。 Then, the control unit 100 drives the bottom shutter 65 to open and return the grains in the storage section 61 onto the oscillating sorting body 22 (S133), outputs the measurement result to the LCD monitor 81, and notifies the completion of one measurement with the buzzer 114 (S134), and then drives the entrance shutter 63 to close (S135), before returning to the upper routine.

[実施形態の効果]
叙述の如く構成された本実施形態によれば、穀稈を刈り取る刈取部5と、刈り取った穀稈から穀粒を脱穀して選別する脱穀部7と、選別された穀粒を貯留する穀粒タンク10と、選別された穀粒の品質を計測する品質計測部50と、品質計測部50を制御する制御部100と、を備えるコンバイン1であって、制御部100は、所定の連続計測条件の成立に基づいて、品質計測部50による穀粒の品質計測を連続実行させる連続計測モードを備えるので、例えば、作業始めに連続計測モードを実行すると、短時間で複数の計測結果が得られるので、その穀粒を収穫するか否かの判断を速やかに行うことができる。
[Effects of the embodiment]
According to the present embodiment configured as described above, the combine 1 comprises a harvesting unit 5 that harvests stumps, a threshing unit 7 that threshes and sorts grains from the harvested stumps, a grain tank 10 that stores the sorted grains, a quality measuring unit 50 that measures the quality of the sorted grains, and a control unit 100 that controls the quality measuring unit 50. The control unit 100 has a continuous measurement mode that causes the quality measuring unit 50 to continuously measure the quality of grains based on the establishment of specified continuous measurement conditions.Therefore, for example, when the continuous measurement mode is executed at the start of work, multiple measurement results can be obtained in a short period of time, so that a decision can be made quickly as to whether or not to harvest the grains.

また、制御部100は、品質計測部50による穀粒の品質計測を間欠実行させる間欠計測モードを備え、連続計測モードの終了後、間欠計測モードに切換えるので、過剰な品質計測を抑制し、品質計測部50の寿命を延ばすことができる。 The control unit 100 also has an intermittent measurement mode that causes the quality measurement unit 50 to intermittently measure the quality of the grains, and switches to the intermittent measurement mode after the continuous measurement mode ends, thereby suppressing excessive quality measurement and extending the life of the quality measurement unit 50.

また、制御部100は、間欠計測モードのとき、所定の間欠計測条件の成立に基づいて、品質計測部50による穀粒の品質計測を単発実行させるので、過剰な品質計測を抑制しつつ、良好な計測精度を確保できる。 In addition, when in intermittent measurement mode, the control unit 100 causes the quality measurement unit 50 to perform a single grain quality measurement based on the establishment of a predetermined intermittent measurement condition, thereby ensuring good measurement accuracy while suppressing excessive quality measurement.

また、コンバイン1は、脱穀部7から穀粒タンク10に至る穀粒流路を備え、品質計測部50は、穀粒タンク10よりも上流側の穀粒流路で穀粒の品質計測を行うので、穀粒タンク10内で品質計測を行う従来に比べ、品質計測のタイミングを早めることができる。 The combine harvester 1 also has a grain flow path that runs from the threshing section 7 to the grain tank 10, and the quality measuring section 50 measures the quality of the grains in the grain flow path upstream of the grain tank 10, so the timing of quality measurement can be accelerated compared to the conventional method in which quality measurement is performed within the grain tank 10.

また、品質計測部50は、穀粒の水分率を計測する水分率計測装置からなる単粒計測式穀粒計測装置70と、穀粒を撮像するカメラ69からなる貯留計測式穀粒計測装置60と、を備えるので、水分率と画像データ(又は画像分析データ)によって穀粒の品質を容易に評価できる。 The quality measurement unit 50 also includes a single-grain measurement type grain measurement device 70 consisting of a moisture content measurement device that measures the moisture content of grains, and a storage measurement type grain measurement device 60 consisting of a camera 69 that captures images of grains, so that the quality of grains can be easily evaluated based on the moisture content and image data (or image analysis data).

1 コンバイン
5 刈取部
7 脱穀部
10 穀粒タンク
22 揺動選別体
50 品質計測部
60 貯留計測式穀粒計測装置
61 貯留部
62 穀粒入口
63 入口シャッタ
64 穀粒出口
65 底シャッタ
66 透明部材
67 撮像室
68 発光素子
69 カメラ
70 単粒計測式穀粒計測装置
71 穀粒取込部
72 計測部
73 排出口
74 サンプリングスクリュー
75 水分計
81 液晶モニタ
100 制御部
104 搬送穀稈検出手段
105 処理物検出手段
LIST OF SYMBOLS 1 Combine 5 Harvesting section 7 Threshing section 10 Grain tank 22 Swinging sorting body 50 Quality measuring section 60 Storage measurement type grain measuring device 61 Storage section 62 Grain inlet 63 Inlet shutter 64 Grain outlet 65 Bottom shutter 66 Transparent member 67 Imaging chamber 68 Light emitting element 69 Camera 70 Single grain measurement type grain measuring device 71 Grain intake section 72 Measuring section 73 Discharge outlet 74 Sampling screw 75 Moisture meter 81 Liquid crystal monitor 100 Control section 104 Transported stalk detection means 105 Processed material detection means

Claims (4)

穀稈を刈り取る刈取部と、
刈り取った穀稈から穀粒を脱穀して選別する脱穀部と、
選別された穀粒を貯留する穀粒タンクと、
選別された穀粒の品質を計測する品質計測部と、
前記品質計測部を制御する制御部と、を備えるコンバインであって、
前記制御部は、所定の連続計測条件の成立に基づいて、前記品質計測部による穀粒の品質計測を連続実行させる連続計測モードと、前記品質計測部による穀粒の品質計測を間欠実行させる間欠計測モードとを備え、前記連続計測モードの終了後、前記間欠計測モードに切換えることを特徴とするコンバイン。
A reaping unit that harvests culms;
a threshing section for threshing and sorting grains from the harvested stalks;
a grain tank for storing the sorted grain;
a quality measuring unit that measures the quality of the sorted grains;
A combine harvester comprising: a control unit that controls the quality measuring unit,
The control unit has a continuous measurement mode in which the quality measuring unit continuously measures the quality of grains based on the establishment of predetermined continuous measurement conditions , and an intermittent measurement mode in which the quality measuring unit intermittently measures the quality of grains, and is characterized in that it switches to the intermittent measurement mode after the continuous measurement mode is terminated .
前記制御部は、前記間欠計測モードのとき、所定の間欠計測条件の成立に基づいて、前記品質計測部による穀粒の品質計測を単発実行させることを特徴とする請求項1に記載のコンバイン。 The combine harvester according to claim 1 , wherein the control unit, in the intermittent measurement mode, causes the quality measurement unit to execute a single measurement of grain quality based on the establishment of a predetermined intermittent measurement condition. 前記脱穀部から前記穀粒タンクに至る穀粒流路を備え、
前記品質計測部は、前記穀粒タンクよりも上流側の穀粒流路で穀粒の品質計測を行うことを特徴とする請求項1または2に記載のコンバイン。
A grain flow path is provided from the threshing section to the grain tank,
The combine harvester according to claim 1 or 2 , wherein the quality measuring unit measures the quality of the grains in a grain flow path upstream of the grain tank.
前記品質計測部は、
穀粒の水分率を計測する水分率計測装置と、
穀粒を撮像する撮像装置と、を備えることを特徴とする請求項1~のいずれか1項に記載のコンバイン。
The quality measurement unit includes:
A moisture content measuring device for measuring the moisture content of grains;
The combine harvester according to any one of claims 1 to 3 , further comprising an imaging device for imaging grains.
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Publication number Priority date Publication date Assignee Title
JP2003000047A (en) 2001-06-22 2003-01-07 National Agricultural Research Organization Method and apparatus for measuring the amount of grain entering the combine tank
JP2016067217A (en) 2014-09-26 2016-05-09 井関農機株式会社 Combine
JP2018000009A (en) 2016-06-27 2018-01-11 株式会社クボタ Combine
JP2018102161A (en) 2016-12-22 2018-07-05 株式会社クボタ Harvesting device
JP2019010075A (en) 2017-06-30 2019-01-24 三菱マヒンドラ農機株式会社 Combine-harvester
JP2019195297A (en) 2018-05-10 2019-11-14 三菱マヒンドラ農機株式会社 Grain measurement device of combine

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Publication number Priority date Publication date Assignee Title
JPH10313668A (en) * 1997-05-20 1998-12-02 Kubota Corp Harvester

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2003000047A (en) 2001-06-22 2003-01-07 National Agricultural Research Organization Method and apparatus for measuring the amount of grain entering the combine tank
JP2016067217A (en) 2014-09-26 2016-05-09 井関農機株式会社 Combine
JP2018000009A (en) 2016-06-27 2018-01-11 株式会社クボタ Combine
JP2018102161A (en) 2016-12-22 2018-07-05 株式会社クボタ Harvesting device
JP2019010075A (en) 2017-06-30 2019-01-24 三菱マヒンドラ農機株式会社 Combine-harvester
JP2019195297A (en) 2018-05-10 2019-11-14 三菱マヒンドラ農機株式会社 Grain measurement device of combine

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