TW202009059A - 遞進射孔式粉碎細化結構 - Google Patents

遞進射孔式粉碎細化結構 Download PDF

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TW202009059A
TW202009059A TW108114169A TW108114169A TW202009059A TW 202009059 A TW202009059 A TW 202009059A TW 108114169 A TW108114169 A TW 108114169A TW 108114169 A TW108114169 A TW 108114169A TW 202009059 A TW202009059 A TW 202009059A
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許錚峯
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世引國際有限公司
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Abstract

本發明一種遞進射孔式粉碎細化結構,包括一薄壁狀的初級粉碎細化件和一次級粉碎細化件,該初級粉碎細化件和次級粉碎細化件均設置有若干用於將流體內氣泡粉碎細化的微孔道,該初級粉碎細化件和次級粉碎細化件配合形成一緩衝空間,該初級粉碎細化件和次級粉碎細化件的微孔道至少四分之一沿流體流動方向重疊或重合設置。透過本發明該遞進射孔式粉碎細化結構,不易堵塞,而且,可以穩定產生大量微納米級別的氣泡。

Description

遞進射孔式粉碎細化結構
本發明有關於一種氣泡細化結構,尤指一種遞進射孔式粉碎細化結構。
現有技術中,在水產養殖、廢水處理、化學反應、醫療衛生、植物栽培以及工業清洗與除垢等領域,常常需要將氣體混入水媒體中以獲得含氣泡的水工質,目的是增加空氣與水的接觸面積,來增進各種處理功效,最顯而易見的是提高了清洗除垢的能力。 近年來,含氣泡的水工質還被應用到日常生活領域, 可以用於浸泡或者沖洗蔬菜、水果、碗碟,也可以用於沐浴與淋洗。 為了使水中含有氣泡,可以借助外部動力將空氣壓入,如壓縮機和氣泵;也可以利用水流動產生的負壓將空氣吸入,如文丘裡管結構或渦旋結構的氣泡獲得裝置。 文丘裡管結構的氣泡獲得裝置主要利用了水流速度增加而水壓降低的原理。文丘裡管結構的氣泡獲得裝置通過設置漸縮的管路,使得水流增速並在管路的喉口處形成低於外部大氣的真空區,籍此真空區將外部空氣吸入到管路內。 渦旋結構的氣泡獲得裝置主要利用了離心運動的中心壓力低的原理。渦旋結構的氣泡獲得裝置使得水流旋轉並產生離心作用,進而在旋轉中心處形成低於外部大氣的真空區,真空區將外部空氣吸入到管路內。 文丘裡管結構具體可以參見臺灣專利TW20170212400U微氣泡產生器,渦旋結構具體可以參見中國專利CN102958589B微氣泡產生裝置和CN203916477U微氣泡產生裝置。微氣泡產生器、微氣泡產生裝置,可以統稱為微氣泡獲得裝置。 上述微氣泡獲得裝置可以使水中含有直徑數十微米乃至數微米以下的微氣泡,進而,使得延長氣泡在水中的滯留時間,同時,使得氣泡的表面積與體積的比值增大,使氣泡具有較高的吸附特性,因而,清潔去垢能力可以得到提升。 渦旋結構相對文丘裡管結構的優點是減少氣泡獲得裝置的長度,而且,對水流量的變化不敏感。因而,現有的微氣泡獲得裝置多採用渦旋結構。 然而,現有設計中,產生微氣泡通常是使用高目數的過濾網,或者,設置有複數個切孔的錐形網,但是,前者容易發生堵塞,後者產生的氣泡難以達到微納米級別。
本發明旨在解決上述所提及的技術問題,提供一種遞進射孔式粉碎細化結構,不易堵塞,而且,可以穩定產生大量微納米級別的氣泡。 本發明是透過以下的技術方案實現的:一種遞進射孔式粉碎細化結構,包括薄壁狀的初級粉碎細化件和次級粉碎細化件,初級粉碎細化件和次級粉碎細化件均設置有若干用於將一流體內氣泡粉碎細化的微孔道,初級粉碎細化件和次級粉碎細化件配合形成緩衝空間,初級粉碎細化件和次級粉碎細化件的微孔道至少四分之一沿流體流動方向重疊或重合設置。 在一實施例中,該微孔道的等效直徑為0.2mm至0.8mm。 在一實施例中,該初級粉碎細化件呈錐形設置,錐形的尖部朝背向該次級粉碎細化件的方向設置。 在一實施例中,該次級粉碎細化件呈錐狀設置,錐形的尖部朝背向該初級粉碎細化件的方向設置。 在一實施例中,該初級粉碎細化件或該次級粉碎細化件呈棱錐形設置。 在一實施例中,該初級粉碎細化件的外邊緣形成一容置該次級粉碎細化件的第一環。 在一實施例中,該次級粉碎細化件的外邊緣設置有一定位邊。 在一實施例中,該遞進射孔式粉碎細化結構更包括一末級粉碎細化件,該末級粉碎細化件和該次級粉碎細化件之間形成一過渡空間。 在一實施例中,該初級粉碎細化件與末級粉碎細化件連接並夾緊固定該次級粉碎細化件。 與現有技術相比,本發明提供一種遞進射孔式粉碎細化結構透過設置薄壁的初級粉碎細化件,代替高目數的過濾網,一方面減少了孔的數量,可以使顆粒可以沉積,延緩堵塞,從而使得微氣泡獲得裝置的免維護時間得以延長;另一方面,在微孔道的節流和束流作用下,水流經過微孔道後呈噴射狀的紊流,存在碰撞、擾動和震盪激勵,可以將粗大的氣泡被擊碎,從而獲得較細小的氣泡,再透過設置次級粉碎細化件,進一步的將氣泡細化呈微納米級別,滿足需求。此外,還透過在初級粉碎細化件和次級粉碎細化件之間形成緩衝空間,使得氣泡在經過初級粉碎細化件後可以重複的碰撞、擾動和振動;另外,還透過使初級粉碎細化件和次級粉碎細化件的微孔道至少四分之一沿流體流動方向重疊或重合設置,使得氣泡能夠較為順利的經由初級粉碎細化件的微孔道流向次級粉碎細化件的微孔道,從而減少水流的流動阻力,避免遞進射孔式粉碎細化結構處產生較大的背壓阻力,不影響微氣泡獲得裝置的進氣量。
以下將結合實施例和附圖對本發明的構思、具體結構及產生的技術效果進行清楚、完整地描述,以充分地理解本發明的目的、特徵和效果。 顯然,所描述的實施例只是本發明的一部分實施例,而不是全部實施例,基於本發明的實施例,本領域的技術人員在不付出創造性勞動的前提下所獲得的其它實施例,均屬於本發明的保護範圍。 另外,文中所提到的所有連接關係,並非單指構件直接相接,而是指可根據具體實施情況,透過添加或減少連接輔件,來組成更優的連接結構。本發明中的各個技術特徵,在不互相矛盾衝突的前提下可以交互組合。 如第1圖、第4圖所示,本發明一種微氣泡獲得裝置,包括一第一本體1,該第一本體1設置有一進水道2、一出水道、一將該進水道2和出水道連通的渦旋腔3及一連通該渦旋腔3的進氣道11,出水道設置有產生微氣泡的結構。如圖1中,中心線分別為進水道2的軸線和渦旋腔3的軸線。 該進氣道11可以連接壓縮機和氣泵等,進而使用外部動力將空氣壓入渦旋腔3。當然,該進氣道11也可以利用水流動產生的負壓將空氣吸入。 其中對於該渦旋腔3來說,該第一本體1設置有一用於形成該渦旋腔3的第一側壁3b和一第一底壁3a,該第一側壁3b設置有一連通該渦旋腔3的進水孔12a,該進水孔12a位於朝向偏離該渦旋腔3的中心,以使得水流經進水孔12a後產生渦旋流動。 該進水道2設置在該第一底壁3a上,該進氣道11包括一沿該渦旋腔3軸線方向設置的第一氣道與一沿垂直於該渦旋腔3軸線方向設置的第二氣道,該第一氣道與該第二氣道連通,該第二氣道連通外界,該第一氣道連通該渦旋腔3,方便製造,而且,不影響微氣泡裝置的安裝使用。 對於該第一本體1來說,該第一本體1在靠近該進水道2的一端可以安裝有或一體成型的製造有一連接頭,使得微氣泡獲得裝置可以固定在水龍頭上。 當然,該第一本體1也可以安裝在一水管內,該第一本體1與水管通過密封圈密封,使得水流進入該進水道2,然後經由該渦旋腔3和出水道流出。這時候,前述進水道2可以是水管靠近該第一本體1的水道部分,且該第一本體1上可以省略該進水道2。 而常規的渦旋腔的軸線與進水道的軸線是重合的,後續簡稱為正置的渦旋腔或正置的渦旋結構,這就導致微氣泡獲得裝置具有了的狹窄的環狀進水口,阻礙水的流動,導致吸氣困難,然而加大環狀進水口的尺寸還使得微氣泡獲得裝置的直徑增大,但難以適用於常規的水管規格。 當然,這裡有關正置和偏置的渦旋結構的有益效果和缺點的論述,並不影響正置或偏置的渦旋結構與後下文本發明的遞進射孔式粉碎細化結構的結合,也就是說,正置或偏置的渦旋結構是均能夠與下文本發明的遞進射孔式粉碎細化結構組合形成前述微氣泡獲得裝置。 為解決上述正置的渦旋腔3所帶來的問題,如圖1、圖2所示,可以使該渦旋腔3的軸線與進水道2的軸線係偏置設置,該渦旋腔3設置有一連通該進水道2的進水口12,該進水口12設置於進水道2軸線背向渦旋腔3軸線一側,也即,採用偏置渦旋結構。 於本實施例的微氣泡獲得裝置透過使渦旋腔3的軸線與進水道2的軸線偏置設置,使進水口12設置於進水道2軸線背向渦旋腔3軸線一側,使得連通該渦旋腔3的進水口12係由狹窄的環狀變成月牙狀或柱狀,從而避免水流從狹窄縫隙中通過,因而可以增加水流的徑向尺寸,減少水流阻力,方便水流流入渦旋腔3內,這就使得微氣泡獲得裝置的直徑不增加,甚至可以減少,因此,微氣泡獲得裝置可以小型化,方便的連接在水管上或設置在水管內部,具有良好的通用性。 為進一步的說明本實施例所產生的良好有益效果,現進行詳細的論述。 目前家庭用水的管路主流管徑主要有外徑28mm和外徑22mm兩種型號,以外徑28mm的管路為例,如果氣泡發生裝置要做成內置式的話,那麼它的外徑就被要求不能超過24.5mm。這就是說,進水口12只能設置在一個寬度不超過2.5mm的環形區域內,這就使得進水口12的面積較小,或者與常規的圓孔狀的進水口12相比,進水口12的外輪廓長度增加,對水流流動產生阻礙,因此,導致背壓劇增而影響到渦旋的吸氣效果,甚至還會造成管路流量大幅下降。 因而,現有的正置式渦旋腔3結構很難內置進28mm管徑的管路之內。 與現有設計產生鮮明對比的是,本發明係採用偏置的渦旋腔3,且由於渦旋腔3偏置,該渦旋腔3的軸線與進水道2的軸線是偏置了一個距離,這個距離讓進水口12可以佈置在一個月牙狀的區域內,獲得3mm至4mm的半徑差,進水口12可以由狹窄的長條形向橢圓形或圓形靠近,縮小進水口12的外輪廓長度,方便水流通過進水口12,而不需要增加第一本體1的外直徑,換句話來說,偏置的渦旋腔3可以使得微氣泡獲得裝置的體積和佔用空間變小,以便於內置在家用水管內。 如圖3所示,作為圖1的微氣泡獲得裝置在一替代實施例,可以使該渦旋腔3為若干個,該進水口12的數量與渦旋腔3的數量是對應設置。也即,透過將大渦旋腔3變更成多個小渦旋腔3,進而,形成多個圓孔狀的進水口12,同樣可以改變進水口12狹窄的情況。 作為本發明微氣泡獲得裝置的進一步拓展,該第一本體1設置有一蓋合該渦旋腔3的束流件14,該束流件14設置有一將該渦旋腔3和出水道連通的出水孔13,該出水孔13的橫截面積沿水流方向減少,使得可以使空氣與水充分混合產生氣泡。另外,該出水孔13的橫截面積變化還可以對水流產生加速作用,壓縮氣泡和促進氣泡破碎。 為簡化製造,可以使該束流件14的外輪廓與出水道匹配設置,也即束流件14是單獨製造的,不增加渦流腔的製造難度。 當然,也可以使該束流件14與第一側壁3b一體製造,但製造上需要進行改進,該第一底壁3a與第一側壁3b需要分體製造。 為順利的使水產生渦旋流動,可以使該進水孔12a朝向沿渦旋腔3的切向設置。 為避免進水孔12a的孔徑受限進而導致水流流量減少,可以使進水孔12a的數量有兩個,也即設置一副進水孔12b,使得進水孔12a的總面積不減少或增大。 為解決現有技術中過濾網易堵塞以及錐形網產生的微氣泡級別不夠的問題,如圖1、圖4、圖5所示,本發明之該微氣泡獲得裝置還採用了一種遞進射孔式粉碎細化結構,當然,本發明之該遞進射孔式粉碎細化結構不僅適用於正置渦旋結構的微氣泡獲得裝置,也可以適用於偏置渦旋結構的微氣泡獲得裝置。 具體的,本發明之該遞進射孔式粉碎細化結構包括一薄壁狀的初級粉碎細化件4和一次級粉碎細化件5,該初級粉碎細化件4和次級粉碎細化件5均設置有若干(或複數)用於將流體內氣泡粉碎細化的微孔道6,其中該初級粉碎細化件4和次級粉碎細化件5配合形成一緩衝空間8,該初級粉碎細化件4和次級粉碎細化件5的微孔道6至少四分之一沿流體流動方向重疊或重合設置,依據上述微氣泡獲得裝置,流體流動方向是流體所在通道的軸線方向。 本實施例係一種遞進射孔式粉碎細化結構透過設置前述薄壁的初級粉碎細化件4,代替高目數的過濾網,一方面減少了孔的數量,且還可以使顆粒可以沉積,延緩堵塞,從而使得微氣泡獲得裝置的免維護時間得以延長;另一方面,在微孔道6的節流和束流作用下,水流經過微孔道6後呈噴射狀的紊流,存在碰撞、擾動和震盪激勵,可以將粗大的氣泡被擊碎,從而獲得較細小的氣泡,再透過設置前述次級粉碎細化件5,進一步的將氣泡細化呈微納米級別,滿足需求。此外,還透過在初級粉碎細化件4和次級粉碎細化件5之間形成該緩衝空間8,使得氣泡在經過初級粉碎細化件4後可以重複的碰撞、擾動和振動;另外,還透過使初級粉碎細化件4和次級粉碎細化件5的微孔道6至少四分之一沿流體流動方向重疊或重合設置,使得氣泡能夠較為順利的經由初級粉碎細化件4的微孔道6流向次級粉碎細化件5的微孔道6,從而減少水流的流動阻力,避免遞進射孔式粉碎細化結構處產生較大的背壓阻力,不影響微氣泡獲得裝置的進氣量。 具體的,該遞進射孔式粉碎細化結構採用設置該初級粉碎細化件4和次級粉碎細化件5的方式,利用開設的微孔道6作為流體工質的出流通道,並以此構成具有兩級遞進射孔特點的粉碎細化結構。 其中,該初級粉碎細化件4上的微孔道6為一第一級射孔,該次級粉碎細化件5上的微孔道6構成為一第二級射孔,當混雜有氣泡的流體工質經由該第一級射孔時,由於微孔道6的節流效應和束流作用而使得其流動具有噴射流的特點,此時流體的流速加快並具備紊流流動的特徵。 在紊流流動的碰撞、擾動和震盪的激勵下,粗大的氣泡被擊碎,從而獲得較細小的氣泡水,然後,較細小的氣泡被該第二級射孔進一步粉碎細化,並最終成為微氣泡。 當然,為了使該微氣泡獲得裝置適用於安裝在水龍頭末端的情況,還可以設置有一末級粉碎細化件9,除了可以進一步細化氣泡,還可以是水穩定流出,不影響出水效果。 為了提高該微孔道6破碎氣泡的能力,可以使微孔道6直徑或/和它們的等效直徑為0.2mm至0.8mm,否則產生的氣泡過大或者造成水流量不足。等效直徑可以通過S=π d2 /4進行計算,S為微孔道6的橫截面積,也就是說,該微孔道6可以採用非圓結構,如三角形、橢圓形、多邊形和其它各種異形。 為了增強該初級粉碎細化件4的強度,同時,使水流能夠沿初級粉碎細化件4的表面流動,進而,使氣泡被微孔道6以切割的方式粉碎,可以使初級粉碎細化件4呈錐形設置,錐形的尖部朝背向次級粉碎細化件5的方向設置。 為了能夠形成該緩衝空間8同時不增加零件數量和增加微氣泡獲得裝置的長度,可以使次級粉碎細化件5呈錐狀設置,錐形的尖部朝背向初級粉碎細化件4的方向設置。 為了使得水流能夠平行的沿初級粉碎細化件4或次級粉碎細化件5的表面流動,可以初級粉碎細化件4或次級粉碎細化件5呈棱錐形設置。同時,初級粉碎細化件4或次級粉碎細化件5呈棱錐形設置,還便於兩者的微孔道6重合或重疊。 為了確保初級粉碎細化件4和次級粉碎細化件5上微孔道6的相對位置滿足需要,可以使初級粉碎細化件4的外邊緣形成一容置該初級粉碎細化件4的第一環41。 為避免次級粉碎細化件5在第一環41內偏轉,也即,為了次級粉碎細化件5能夠準確的安裝在第一環41內,可以使次級粉碎細化件5的外邊緣設置有一定位邊51。 對於末級粉碎細化件9來說,該末級粉碎細化件9和次級粉碎細化件5之間形成一過渡空間10,以使水流穩定。 為進一步降低成本和減少零部件數量,該初級粉碎細化件4與末級粉碎細化件9連接並夾緊固定該次級粉碎細化件5。 以上實施例不局限於該實施例自身的技術方案,實施例之間可以相互結合成新的實施例。以上實施例僅用以說明本實用發明的技術方案而並非對其進行限制,凡未脫離本實用發明精神和範圍的任何修改或者等同替換,其均應涵蓋在本實用發明技術方案的範圍內。
1‧‧‧第一本體 2‧‧‧進水道 3‧‧‧渦旋腔 4‧‧‧初級粉碎細化件 41‧‧‧第一環 5‧‧‧次級粉碎細化件 51‧‧‧定位邊 6‧‧‧微孔道 7‧‧‧前置空間 8‧‧‧緩衝空間 9‧‧‧末級粉碎細化件 10‧‧‧過渡空間 11‧‧‧進氣道 12‧‧‧進水口 12a‧‧‧進水孔 12b‧‧‧副進氣孔 13‧‧‧出水孔 14‧‧‧束流件 3a‧‧‧第一底壁 3b‧‧‧第一側壁
為了更清楚地說明本實用發明實施例中的技術方案,下面將對實施例描述中所需要使用的附圖做簡單說明。 顯然,所描述的附圖只是本實用發明的一部分實施例,而不是全部實施例,本領域的技術人員在不付出創造性勞動的前提下,還可以根據這些附圖獲得其他設計方案和附圖。 第1圖為本發明之微氣泡獲得裝置的剖視示意圖; 第2圖為本發明之圖1微氣泡獲得裝置的渦旋腔的橫截面剖視示意圖; 第3圖為本發明之圖1微氣泡獲得裝置的另一實施例的結構示意圖; 第4圖為本發明之圖1微氣泡獲得裝置的分解示意圖; 第5圖為本發明之圖1微氣泡獲得裝置中遞進射孔式粉碎細化結構的示意圖。
4‧‧‧初級粉碎細化件
41‧‧‧第一環
5‧‧‧次級粉碎細化件
51‧‧‧定位邊
6‧‧‧微孔道
8‧‧‧緩衝空間

Claims (9)

  1. 一種遞進射孔式粉碎細化結構,包括一薄壁狀的初級粉碎細化件和一次級粉碎細化件,該初級粉碎細化件和該次級粉碎細化件均設置有若干用於將一流體內氣泡粉碎細化的微孔道,並該初級粉碎細化件和該次級粉碎細化件配合形成一緩衝空間,該初級粉碎細化件和該次級粉碎細化件的該等微孔道至少四分之一沿流體流動方向重疊或重合設置。
  2. 如請求項1所述之遞進射孔式粉碎細化結構,其中所述微孔道的等效直徑為0.2mm至0.8mm。
  3. 如請求項1所述之遞進射孔式粉碎細化結構,其中所述初級粉碎細化件呈錐形設置,錐形的尖部朝背向該次級粉碎細化件的方向設置。
  4. 如請求項1所述之遞進射孔式粉碎細化結構,其中所述次級粉碎細化件呈錐狀設置,錐形的尖部朝背向該初級粉碎細化件的方向設置。
  5. 如請求項1所述之遞進射孔式粉碎細化結構,其中所述初級粉碎細化件或該次級粉碎細化件呈棱錐形設置。
  6. 如請求項1至5其中任一項所述之遞進射孔式粉碎細化結構,其中所述初級粉碎細化件的外邊緣形成一容置該次級粉碎細化件的第一環。
  7. 如請求項6所述之遞進射孔式粉碎細化結構,其中所述次級粉碎細化件的外邊緣設置有一定位邊。
  8. 如請求項1至5其中任一項所述之遞進射孔式粉碎細化結構,更包括一末級粉碎細化件,該末級粉碎細化件和該次級粉碎細化件之間形成一過渡空間。
  9. 如請求項8所述之遞進射孔式粉碎細化結構,其中所述初級粉碎細化件與該末級粉碎細化件連接並夾緊固定該次級粉碎細化件。
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WO2020034634A1 (zh) 2020-02-20
GB202101030D0 (en) 2021-03-10
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US20210299620A1 (en) 2021-09-30

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