李 粵,郭超凡,姚德宇,賀寧波,張喜瑞,吳紫晗,李 媛
定甩刀防纏式香蕉秸稈粉碎還田機(jī)設(shè)計(jì)與試驗(yàn)
李 粵1,郭超凡1,姚德宇1,賀寧波1,張喜瑞1※,吳紫晗1,李 媛2
(1. 海南大學(xué)機(jī)電工程學(xué)院,???570228;2. 中國熱帶農(nóng)業(yè)科學(xué)院科技信息研究所,???570228)
針對(duì)香蕉秸稈粉碎機(jī)具纏繞造成秸稈粉碎率不達(dá)標(biāo)等問題,該研究設(shè)計(jì)了一種定甩刀防纏式香蕉秸稈粉碎還田機(jī)。在粉碎過程中,粉碎定刀與高速運(yùn)轉(zhuǎn)中的Y型甩刀對(duì)香蕉秸稈形成三點(diǎn)支撐,進(jìn)而實(shí)現(xiàn)秸稈粉碎與避免秸稈纏繞。其中,Y型甩刀由2個(gè)L型刀片組合的Y型粉碎刀與甩刀構(gòu)成。確定了各關(guān)鍵部件的結(jié)構(gòu)參數(shù)、動(dòng)定刀排列組合方式及香蕉秸稈粉碎過程受力分析,明確了影響粉碎效果的主要因素為機(jī)具前進(jìn)速度、粉碎刀輥轉(zhuǎn)速以及Y型甩刀折彎角。以前進(jìn)速度、刀輥轉(zhuǎn)速和甩刀折彎角為試驗(yàn)因素,以香蕉秸稈粉碎合格率和拋撒不均勻度為評(píng)價(jià)指標(biāo),進(jìn)行三水平三因素正交田間試驗(yàn),確定優(yōu)化參數(shù)組合為前進(jìn)速度1.85 m/s,刀輥轉(zhuǎn)速1 500 r/min,Y型甩刀片折彎角140°,此時(shí)香蕉秸稈粉碎合格率為95.1%,拋撒不均勻度為14.6%,滿足香蕉秸稈粉碎作業(yè)性能要求。與已有秸稈粉碎機(jī)進(jìn)行性能對(duì)比試驗(yàn),結(jié)果表明,該研究研制的定甩刀防纏式香蕉秸稈粉碎還田機(jī)秸稈粉碎合格率提高了1.7個(gè)百分點(diǎn),防纏性能更優(yōu)。該機(jī)具的研制對(duì)解決蕉區(qū)秸稈粉碎還田關(guān)鍵技術(shù)問題具有重要意義和應(yīng)用價(jià)值。
農(nóng)業(yè)機(jī)械;試驗(yàn);香蕉秸稈;定刀;甩刀;防纏;粉碎還田機(jī)
海南省是香蕉種植的主要種植區(qū)[1],香蕉具有生長周期短和產(chǎn)量高等特點(diǎn),但同樣伴隨著大量的香蕉秸稈等農(nóng)業(yè)廢棄物[2]。每到香蕉收獲季節(jié)地里都會(huì)留下大量的秸稈,對(duì)香蕉秸稈的有效處理一直都存在很大問題,香蕉秸稈處理的效果會(huì)直接影響下一次香蕉產(chǎn)量,進(jìn)而影響蕉農(nóng)收入。
目前對(duì)香蕉秸稈的處理方式主要有以下3種:機(jī)械化粉碎還田、香蕉秸稈纖維提取、香蕉秸稈回收做成青飼料[3-5]。其中,機(jī)械化粉碎還田是綠色還田的一種有效方式,秸稈粉碎拋撒覆蓋地表,以減少土壤水蝕和風(fēng)蝕,進(jìn)而提高土壤抗旱能力和增強(qiáng)土壤肥力[6]。并且長期的秸稈還田對(duì)土壤細(xì)菌群落豐富度與多樣性具有積極影響[7],進(jìn)一步促進(jìn)香蕉的再次種植與發(fā)育,形成良好循環(huán)。
由于香蕉秸稈的主要生物特性不同于與玉米、水稻、小麥等農(nóng)作物秸稈,香蕉秸稈直徑粗大,一般秸稈直徑范圍為100~200 mm;含水率高,纖維含量豐富[8-9]。因此秸稈還田機(jī)具必須能夠?qū)Υ执蟮南憬督斩捰蟹鬯樾Ч?。目前,市場上的秸稈粉碎還田機(jī)分為臥式與立式兩種類型。立式作為一種新型粉碎方式,還處于研發(fā)階段,吳學(xué)尚基于粉碎原理設(shè)計(jì)了甩刀式立式香蕉秸稈粉碎機(jī),通過調(diào)整刀軸高度,甩刀在粉碎刀軸高速轉(zhuǎn)動(dòng)下對(duì)香蕉秸稈實(shí)施不同效果的粉碎[10]。立式粉碎方式雖能降低功耗但不利于秸稈喂入,立軸處纏繞較為嚴(yán)重。相對(duì)于立式粉碎,臥式粉碎方式趨于成熟,張喜瑞等基于滑切原理,粉碎刀采用刀刃擬合曲線并設(shè)計(jì)秸稈粉碎機(jī)[11];王自強(qiáng)等設(shè)計(jì)溝齒式香蕉假莖粉碎還田機(jī),提高了假莖粉碎率適用性不強(qiáng)[12];魏思林等通過分析秸稈粉碎特點(diǎn),設(shè)計(jì)了一種砍切喂入雙輥式秸稈粉碎還田機(jī),提高粉碎效率[13];鄭智旗等設(shè)計(jì)的動(dòng)定刀支撐滑切式秸稈粉碎裝置,利用等滑切角式粉碎定刀和隨粉碎刀輥高速旋轉(zhuǎn)的粉碎動(dòng)刀形成的支撐滑切作用對(duì)秸稈進(jìn)行粉碎[14]。以上粉碎方式雖使秸稈粉碎效果更加顯著,但均存在刀輥纏繞嚴(yán)重、刀片易損耗、部分裝置動(dòng)定刀無法有效配合的問題,尤其在秸稈老化后韌性較高的情況下,導(dǎo)致粉碎還田機(jī)無法長時(shí)間運(yùn)作,進(jìn)而影響粉碎效率。
針對(duì)香蕉秸稈韌性強(qiáng)、易纏繞刀軸、動(dòng)定刀無法有效配合,影響后期香蕉秸稈粉碎效果的問題,在綜合分析香蕉秸稈物理特性以及秸稈粉碎還田機(jī)的優(yōu)劣勢的基礎(chǔ)上,提出了定甩刀相互支撐實(shí)現(xiàn)粉碎防纏的方法。基于此設(shè)計(jì)思路,本文通過理論分析確定了關(guān)鍵粉碎部件的主要結(jié)構(gòu)參數(shù);設(shè)計(jì)動(dòng)定刀相互配合參數(shù);通過三水平三因素正交試驗(yàn),選取優(yōu)化組合,并進(jìn)行田間試驗(yàn),以期為南方香蕉種植區(qū)秸稈粉碎還田機(jī)的研究提供參考。
定甩刀防纏式香蕉秸稈粉碎還田機(jī)主要包括三點(diǎn)懸掛裝置、機(jī)架、傳動(dòng)裝置、粉碎裝置和防纏裝置。傳動(dòng)裝置由變速箱、主帶輪、從帶輪、V型皮帶、張緊輪組成。防纏裝置主要由4排定刀排列構(gòu)成。粉碎裝置包括粉碎刀輥、Y型甩刀。整機(jī)結(jié)構(gòu)如圖1所示。
機(jī)具在拖拉機(jī)的三點(diǎn)懸掛裝置的牽引下進(jìn)行作業(yè),先將動(dòng)力傳遞給傳動(dòng)裝置的變速箱輸入軸,動(dòng)力經(jīng)皮帶輪傳遞給粉碎刀輥,刀輥高速轉(zhuǎn)動(dòng),Y型甩刀與定刀共同對(duì)香蕉秸稈作用,兩者相對(duì)運(yùn)動(dòng)增加了對(duì)秸稈的切削力,香蕉秸稈粉碎后經(jīng)鎮(zhèn)壓輥壓實(shí)進(jìn)行還田,整機(jī)的主要性能指標(biāo)與技術(shù)參數(shù)如表1所示。
表1 香蕉秸稈粉碎還田機(jī)主要技術(shù)參數(shù)
已有香蕉秸稈粉碎還田機(jī)采用雙側(cè)傳動(dòng),整機(jī)的動(dòng)不平衡大;采用L型粉碎刀,雖然粉碎效果顯著,但出現(xiàn)香蕉秸稈纏繞刀具、刀輥的現(xiàn)象;傳動(dòng)軸與刀輥通過齒輪傳動(dòng),不利于遠(yuǎn)距離傳動(dòng)且精度不高,存在振動(dòng)、沖擊大等問題。因此,本文研制的定甩刀防纏式香蕉秸稈粉碎還田機(jī)從以下幾個(gè)方面進(jìn)行改進(jìn):
1)優(yōu)化傳動(dòng)系統(tǒng),增強(qiáng)粉碎穩(wěn)定性。將皮帶輪兩側(cè)傳動(dòng)改為單側(cè)傳動(dòng),減少了整機(jī)質(zhì)量,將三點(diǎn)懸掛裝置進(jìn)行適當(dāng)?shù)臋M向移動(dòng)以盡量使得兩側(cè)配重平衡。
2)定甩刀交錯(cuò)排布,提高防纏效果。結(jié)合香蕉秸稈纖維特點(diǎn),利用機(jī)架內(nèi)部空間,增加防纏裝置,防纏裝置主要由安裝于機(jī)架兩側(cè)的兩排定刀組成,每側(cè)定刀之間交錯(cuò)排列,各自與運(yùn)動(dòng)中的粉碎刀片相互配合,粉碎香蕉秸稈的同時(shí)進(jìn)行防纏。
3)兩級(jí)增速,粉碎更加徹底。為了保證機(jī)具在作業(yè)過程中運(yùn)行的穩(wěn)定,傳動(dòng)裝置中錐齒輪組(增速)將動(dòng)力傳遞給帶輪組(增速),帶輪輸出動(dòng)力至粉碎刀輥,通過帶傳動(dòng),有利于機(jī)具傳動(dòng)平穩(wěn)、緩沖吸振。此時(shí)的粉碎刀軸高速轉(zhuǎn)動(dòng),對(duì)于粗大的香蕉秸稈,兩級(jí)增速可以確保能夠粉碎香蕉秸稈。
2.1.1 粉碎甩刀組合設(shè)計(jì)
目前,秸稈粉碎還田刀片主要有3種類型:直刀型、甩刀型(Y型、L型、T型)、錘爪型[15]。甩刀的類型對(duì)秸稈粉碎質(zhì)量有很大影響[16]。直刀型粉碎刀粉碎效率高但撿拾效果差,錘爪式雖能將秸稈大面積卷入粉碎裝置但對(duì)于纖維含量豐富的香蕉秸稈粉碎效果較差。甩刀型粉碎刀在田間作業(yè)時(shí)隨秸稈粉碎軸高速旋轉(zhuǎn),沖擊并切斷秸稈,粉碎效率高,且具備滿足秸稈粉碎裝置粉碎和收集秸稈的要求,因此選用甩刀型粉碎刀[17]。
在甩刀型粉碎刀片中,由于Y型和L型刀片具有較好的剛度和耐磨性,適用香蕉秸稈的粉碎還田作業(yè)[18]。本文對(duì)Y型刀片與L型刀片在相同的條件進(jìn)行秸稈切割試驗(yàn),對(duì)L型和Y型刀片在試驗(yàn)秸稈上的相同部位以相同的角速度對(duì)秸稈進(jìn)行切割和受力分析,如圖2所示。
粉碎刀對(duì)香蕉秸稈的支持力大小直接影響秸稈粉碎效率[19]。以平行莖稈纖維為軸,垂直其方向?yàn)檩S,建立直角坐標(biāo)系。秸稈受力方程可表示為
當(dāng)以相同的作用力切割秸稈時(shí),Y型刀刃和L型刀刃以相同角度切割秸稈,因此有:
綜上可得:
本文采用的Y型甩刀分別由2個(gè)L型刀片組合的Y型粉碎刀與甩刀結(jié)合構(gòu)成,如圖3所示。粉碎機(jī)工作時(shí)的工況復(fù)雜,需提高粉碎刀具的耐磨性以及耐腐蝕性,故Y型甩刀采用的材料為Cr12MoV,具有較強(qiáng)的耐磨性和淬透性[21]。刀片兩側(cè)開刃,便于通過傳動(dòng)系統(tǒng)實(shí)現(xiàn)刀軸正反轉(zhuǎn)。
螺柱直徑小于孔直徑可以使刀片在運(yùn)動(dòng)過程中相對(duì)于圓柱銷轉(zhuǎn)動(dòng),在遇到硬質(zhì)物體時(shí)刀刃部分被動(dòng)避開來自異物的作用力,更好地適應(yīng)田地的復(fù)雜環(huán)境。國內(nèi)香蕉秸稈粉碎還田機(jī)的粉碎刀折彎角在120°~160°范圍內(nèi)[19],考慮刀身長度大于刀片折彎部分長度保證刀身部分安裝在刀盤上的穩(wěn)定性,本文選取120°、140°、150°的粉碎甩刀折彎角進(jìn)行對(duì)比試驗(yàn)。
2.1.2 粉碎刀輥的設(shè)計(jì)
粉碎刀輥是香蕉秸稈粉碎還田機(jī)粉碎裝置的關(guān)鍵部件。粉碎刀輥材料為20CrMnTi,淬透性較高,經(jīng)滲碳淬火后具有硬而耐磨的表面與堅(jiān)韌的心部,具有較高的低溫沖擊韌性[22]。為減輕軸的質(zhì)量,降低功耗,刀輥選用空心軸,且內(nèi)、外徑比值控制在0.5~0.6的范圍內(nèi),以保證刀輥的剛度和扭轉(zhuǎn)穩(wěn)定性[23]。當(dāng)內(nèi)、外徑比值大時(shí),其壁過薄,易造成刀輥彎曲變形影響粉碎效果;當(dāng)內(nèi)、外徑比值小時(shí),其壁過厚,功耗增大,結(jié)合已有的裝置,刀輥外徑為90 mm,內(nèi)徑為40 mm。
刀輥轉(zhuǎn)速影響香蕉秸稈粉碎效果,是香蕉秸稈粉碎合格率的主要因素之一。影響粉碎秸稈的切割線速度約為30~48 m/s,國內(nèi)已知的秸稈粉碎還田機(jī)的粉碎甩刀回轉(zhuǎn)半徑在240~300 mm[14],考慮刀輥動(dòng)平衡等因素,選取粉碎甩刀的回轉(zhuǎn)半徑為290 mm。
刀輥轉(zhuǎn)速可由下式計(jì)算:
求解可得=988~1 581 r/min。
防纏裝置主要由安裝在機(jī)架兩側(cè)的定刀構(gòu)成,定刀結(jié)構(gòu)對(duì)于防纏效果起關(guān)鍵作用,定刀材料為65 Mn彈簧鋼,錳提高淬透性,經(jīng)熱處理后的綜合力學(xué)性能優(yōu)于碳鋼,當(dāng)定刀受到來自香蕉秸稈的沖擊時(shí),可保持一定的抗沖擊性,有較強(qiáng)的回復(fù)力。
定刀主要由刀柄、連接孔、刀身、刀刃和折彎角5個(gè)部分組成。定刀結(jié)構(gòu)及參數(shù)如圖4所示。刀柄與機(jī)架通過螺釘固定,刀柄與刀身連接處的折彎角=90°,刀柄上部與機(jī)架上表面貼合,此時(shí)刀身正好垂直于機(jī)架,此時(shí)刀刃對(duì)秸稈單位面積產(chǎn)生的壓強(qiáng)最大,能夠保證有效切斷香蕉秸稈。
為保持粉碎刀輥兩端的軸承負(fù)載均勻,動(dòng)刀排列時(shí)應(yīng)盡量平衡[24]。根據(jù)《農(nóng)業(yè)機(jī)械設(shè)計(jì)手冊(cè)》[25]考慮香蕉樹株高的影響,確定Y型甩刀的刀片數(shù)量為18把。為充分利用機(jī)架上部空間,排列方式采用交錯(cuò)排列,徑向夾角分別為90°或180°。
1.刀柄 2.連接孔 3.折彎角 4.刀身 5.刀刃
1.Y型甩刀 2.第1排定刀 3.第2排定刀
1.Y-type flailing blade 2.The first row of fixed blade 3.The second row of fixed blade
注:1為甩刀與刀輥端面的距離,mm;2為甩刀與第1排定刀的水平距離,mm;3為定刀的水平間距,mm;4為甩刀與第2排定刀的垂直距離,mm;5為定刀的垂直間距,mm。
Note:1is the distance between the flail blade and the end face of the blade roller, mm;2is the horizontal distance between the flailing blade and the first row of fixed blade, mm;3is the horizontal distance of fixed blade, mm;4is the vertical distance between the flailing blade and the second row of fixed blade, mm;5is the vertical distance of fixed blade, mm.
圖5 刀片排布示意圖
Fig.5 Schematic diagram of blade arrangement
地表的香蕉秸稈被粉碎刀輥卷入粉碎裝置,同時(shí)隨著Y型甩刀進(jìn)行轉(zhuǎn)動(dòng)。當(dāng)甩刀與機(jī)架上的定刀同時(shí)與香蕉秸稈發(fā)生接觸時(shí),秸稈受力發(fā)生變形、剪切、粉碎。在秸稈受力過程中,由于秸稈直徑相對(duì)于甩刀和定刀的回轉(zhuǎn)半徑較小,因此在接觸香蕉秸稈表皮時(shí)甩刀和定刀可視為處于平行位置[26]。秸稈粉碎過程的受力如圖6所示。
鎘是一種有害的微量物質(zhì),在一定的濃度水平,對(duì)人類和其他生命體具有直接的損害作用。土壤中的鎘,不但對(duì)植物的正常生長無效,而且比其他元素(Cu、Pb、Zn等)更低濃度對(duì)植物產(chǎn)生毒害作用。一般情況下,土壤鎘污染對(duì)動(dòng)物影響,主要通過食用鎘污染植物或飲水引起;人體中的鎘都是出生后由外界環(huán)境攝取而積累于體內(nèi)的,因?yàn)樾律鷥后w幾乎沒有鎘的存在;重金屬鎘可導(dǎo)致腎虧損,從而引發(fā)骨痛病、高血壓、貧血等疾病[19]。
甩刀與定刀對(duì)香蕉秸稈進(jìn)行切斷的瞬時(shí)處于力矩平衡狀態(tài)。甩刀刀柄的通孔與秸稈的接觸距離1和定刀的固定通孔與秸稈的接觸距離2均會(huì)影響秸稈的受力。接觸距離過大會(huì)導(dǎo)致刀具受壓變形,影響粉碎效果;接觸距離過小會(huì)導(dǎo)致粉碎不徹底。
1.Y型甩刀 2.香蕉秸稈 3.定刀
1.Y-type flailing blade 2.Banana straw 3.Fixed blade注:F1為甩刀對(duì)香蕉秸稈的支持力,N;?1為甩刀與秸稈間的摩擦力,N;為秸稈質(zhì)量,kg;為重力加速度,9.8 m·s-2;F為離心力,N;F2為定刀對(duì)香蕉秸稈的支持力,N;?2為定刀與秸稈間的摩擦力,N;ω為甩刀角速度,rad·s-1;為秸稈的回轉(zhuǎn)半徑,mm;1為甩刀柄的通孔與秸稈的接觸距離,mm;2為定刀的固定通孔與秸稈的接觸距離,mm。為秸稈粉碎時(shí)甩刀與定刀相互作用力的夾角,(°);為甩刀的折彎角,(°)。
Note:F1is the support force of the flailing blade on the straw, N;1is the friction between the flailing blade and the straw;is the mass of stalk, kg;is gravitational acceleration, 9.8 m·s-2;Fis the centrifugal force, N;F2is the support force of the fixed blade on the straw, N;2is the friction between the fixed blade and the straw;ωis the angular velocity of blade, rad·s-1;is the radius of gyration of the straw, mm;1is the contact distance between the through hole of the flailing blade handle and the straw, mm;2is the contact distance between the fixed through-hole of the fixed blade and the straw, mm;is the included angle of the interaction force between the flailing blade and the fixed blade when straw is crushed, (°);is the bending angle of the flailing blade, (°).
圖6 秸稈粉碎過程受力分析
Fig.6 Stress analysis of straw crushing process
香蕉秸稈切斷瞬間的受力方程為
對(duì)式(7)求解可得:
定甩刀防纏式香蕉秸稈粉碎還田機(jī)設(shè)計(jì)加工完成后,根據(jù)GB/T 24675.6—2009《保護(hù)性耕作機(jī)械秸稈粉碎還田機(jī)》標(biāo)準(zhǔn)的要求[27],于2021年3月23日在海南大學(xué)的農(nóng)機(jī)試驗(yàn)基地進(jìn)行田間試驗(yàn)。試驗(yàn)田長40 m,寬50 m,試驗(yàn)選用的香蕉樹品種為“巴西蕉”,香蕉樹高度為2 000~2 600 mm,香蕉莖稈直徑范圍為38~52 mm,香蕉莖稈平均纖維含量3.8%。為表明秸稈粉碎效果[28],采用測定秸稈還田后秸稈粉碎合格率和秸稈拋撒不均勻度作為秸稈粉碎效果的評(píng)價(jià)指標(biāo)。
根據(jù)《農(nóng)業(yè)機(jī)械試驗(yàn)條件測定方法的一般規(guī)定》(GB/T5262—2008)[29],香蕉秸稈粉碎合格率采用五點(diǎn)法進(jìn)行測定。在機(jī)具作業(yè)行程中,隨機(jī)選取3個(gè)試驗(yàn)區(qū)(1 m×1 m),每個(gè)試驗(yàn)區(qū)取2條對(duì)角線的交點(diǎn)作為一個(gè)取樣點(diǎn),在2條對(duì)角線上,距4個(gè)頂點(diǎn)距離約為對(duì)角線長度1/4處取另外4個(gè)點(diǎn)作為取樣點(diǎn),每個(gè)試驗(yàn)區(qū)共5個(gè)取樣點(diǎn)。收集所有取樣點(diǎn)的秸稈,并稱質(zhì)量、計(jì)算秸稈粉碎合格率,對(duì)15個(gè)取樣點(diǎn)的秸稈粉碎合格率求平均值。
香蕉地實(shí)際作業(yè)環(huán)境復(fù)雜,對(duì)行駛、機(jī)具運(yùn)行等因素有直接影響。由于香蕉根莖對(duì)拖拉機(jī)的行駛產(chǎn)生阻礙,在實(shí)際作業(yè)中機(jī)具的前進(jìn)速度在1~2 m/s范圍內(nèi)[11,13],本文前進(jìn)速度選取1.45、1.65 和1.85 m/s。基于減阻防纏原理,結(jié)合香蕉秸稈粉碎效果和前文參數(shù)分析,為確定參數(shù)最佳組合,本試驗(yàn)選取影響秸稈粉碎合格率的主要因素還田機(jī)前進(jìn)速度、粉碎刀輥轉(zhuǎn)速、Y型甩刀折彎角進(jìn)行三水平三因素試驗(yàn),試驗(yàn)因素水平編碼如表2所示。田間試驗(yàn)通過三水平三因素的正交試驗(yàn),選擇最佳9組因素組合進(jìn)行試驗(yàn),正交試驗(yàn)方案如表3所示。
表2 因素水平編碼表
表3 正交試驗(yàn)方案
表4 方差分析
Table 4 Variance analysis
注:<0.05為顯著,<0.01為極顯著,下同。 Note:<0.05 means significant,<0.01 means highly significant, the same below.
香蕉秸稈纖維的纏繞程度會(huì)直接影響秸稈粉碎果。為驗(yàn)證優(yōu)化設(shè)計(jì)后機(jī)具的粉碎效果與防纏效果,與已有臥式秸稈粉碎還田機(jī)進(jìn)行對(duì)比試驗(yàn),還田機(jī)前進(jìn)速度均為1.85 m/s,刀輥轉(zhuǎn)速為1 500 r/min,刀片折彎角為140°,在海南大學(xué)的農(nóng)機(jī)試驗(yàn)基地進(jìn)行5次對(duì)比試驗(yàn),粉碎合格率取平均值,且對(duì)比香蕉秸稈纏繞情況,試驗(yàn)結(jié)果如表5所示。
表5 作業(yè)性能對(duì)比
試驗(yàn)結(jié)果表明,定甩刀防纏式香蕉秸稈粉碎還田機(jī)的秸稈粉碎合格率為94.9%,相對(duì)于已有臥式香蕉秸稈粉碎還田機(jī)提高了1.7個(gè)百分點(diǎn),防纏效果有較大改善,香蕉莖稈纖維只對(duì)粉碎刀輥有小部分的局部纏繞,纏繞情況如圖8所示。
1)基于香蕉秸稈粉碎合格率及秸稈拋撒不均勻度的作業(yè)要求,本文設(shè)計(jì)了一種定甩刀防纏式香蕉秸稈粉碎還田機(jī),甩刀與定刀配合,達(dá)到支撐粉碎的效果,解決了粉碎刀輥的纏繞問題。
2)通過對(duì)各關(guān)鍵部件結(jié)構(gòu)參數(shù)的研究、動(dòng)定刀的排列組合以及香蕉秸稈粉碎過程受力分析,確定了Y型甩刀和定刀的結(jié)構(gòu)參數(shù)、定甩刀組合參數(shù)。
根據(jù)實(shí)際田間作業(yè)條件,通過三水平三因素的正交試驗(yàn),確定較優(yōu)參數(shù)組合為前進(jìn)速度1.85 m/s,刀輥轉(zhuǎn)速為1 500 r/min,Y型甩刀刀片折彎角為140°,此時(shí)香蕉秸稈粉碎合格率為95.1%,拋撒不均勻度為14.6%,優(yōu)化參數(shù)可以滿足香蕉秸稈粉碎的實(shí)際要求。通過對(duì)比試驗(yàn),驗(yàn)證防纏裝置作業(yè)效果更優(yōu)。
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Design and experiment of banana straw crushing and returning machine with anti-wrapping device supported by flailing blade
Li Yue1, Guo Chaofan1, Yao Deyu1, He Ningbo1, Zhang Xirui1※, Wu Zihan1, Li Yuan2
(1.,,570228,; 2.,,570228,)
Banana straw is usually broken into pieces to degrade naturally in the farmland. However, severe entanglement of knife roller easily causes the wear of blades, leading to a short service life and low crushing efficiency in the conventional banana straw-crushing and returning machine. A great challenge has also been posed on the effective coordination of fixed knives during operation, especially in the case of high toughness after the aging of banana straw. Therefore, this study aims to improve the smashing rate of banana straw up to the standard requirement, thereby avoiding the winding of banana straw in pulverizers. An anti-wrapping device with a fixed flailing knife was also designed to reduce the entanglement for the banana straw-crushing and returning machine. Specifically, the movable and fixed knife was effectively coordinated in the machine. Three-point support was also formed using the crushing fixed knife and the Y-shaped flailing knife in high-speed crushing operation for the banana straw. As such, the highly efficient straw-crushing was realized to avoid straw entanglement. Among them, the Y-shaped flailing knife was composed of two L-shaped blades combined with a Y-shaped flailing knife and a flail. A systematic investigation was made on the optimization of structural parameters for the key components of crushing, the arrangement and combination of fixed knives, as well as the force analysis of banana straw during crushing. Correspondingly, the main test factors were determined as the forward speed of the returning machine, the speed of the crushing knife roller, and the bending angle of the Y-shaped flailing knife. A three-level three-factor orthogonal field test was then carried out, where the evaluation indicators were set as the crushing qualification rate of banana straw, and the unevenness of throwing. An optimal parameter combination was achieved, where the forward speed was 1.85 m/s, the knife roller speed was 1 500 r/min, and the bending angle of the Y-shaped flailing knife was 140°. In this case, the crushing qualification rate of banana straw was 95.1%, and the unevenness of throwing was 14.6%, indicating suitable for the actual situation of banana straw crushing. A comparison test was also conducted to verify the performance of the improved pulverizer. It was found that the qualified rate of straw smashing increased by 1.7 percentage points in the fixed-blade anti-wrapping banana straw crushing and returning machine, where the anti-wrapping device performed better. Consequently, the anti-wrapped banana straw crushing and returning machine with a fixed flailing knife can be expected to realize the sliding cooperation of the flailing and fixed knife for a better crushing effect, thereby reducing the entanglement of crushing knife roller. As such, the higher squeezing force of the cutter on the straw greatly contributed to effectively improving the crushing performance under the optimal operation requirements in the southern banana areas. The finding can provide strong technical support to the straw crushing and returning to the field in the banana areas.
agricultural machinery; test; banana stalk; fixed blade; flailing blade; anti-wrapping; crushing and returning machine
10.11975/j.issn.1002-6819.2021.18.002
S147.2
A
1002-6819(2021)-18-0011-09
2021-05-11
2021-09-08
國家自然科學(xué)基金項(xiàng)目(51965015,52075137);海南省院士工作站專項(xiàng)(SQ2020ysgzz0009)
李粵,教授,研究方向?yàn)闊釒мr(nóng)業(yè)機(jī)械技術(shù)與裝備。Email:liyue_888888@163.com
張喜瑞,博士,教授,博士生導(dǎo)師,研究方向?yàn)闊釒е悄苻r(nóng)業(yè)機(jī)械性能設(shè)計(jì)與試驗(yàn)。Email:zhangxirui_999@sina.com
中國農(nóng)業(yè)工程學(xué)會(huì)會(huì)員:李粵(E041200562S);張喜瑞(E04230000M)
李粵,郭超凡,姚德宇,等. 定甩刀防纏式香蕉秸稈粉碎還田機(jī)設(shè)計(jì)與試驗(yàn)[J]. 農(nóng)業(yè)工程學(xué)報(bào),2021,37(18):11-19. doi:10.11975/j.issn.1002-6819.2021.18.002 http://www.tcsae.org
Li Yue, Guo Chaofan, Yao Deyu, et al. Design and experiment of banana straw crushing and returning machine with anti-wrapping device supported by flailing blade[J]. Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 2021, 37(18): 11-19. (in Chinese with English abstract) doi:10.11975/j.issn.1002-6819.2021.18.002 http://www.tcsae.org