JP2010155090A - 加力アセンブリを用いるポンピング流体送達システムおよび方法 - Google Patents
加力アセンブリを用いるポンピング流体送達システムおよび方法 Download PDFInfo
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- JP2010155090A JP2010155090A JP2010026008A JP2010026008A JP2010155090A JP 2010155090 A JP2010155090 A JP 2010155090A JP 2010026008 A JP2010026008 A JP 2010026008A JP 2010026008 A JP2010026008 A JP 2010026008A JP 2010155090 A JP2010155090 A JP 2010155090A
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- fluid
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- ADBPZMMONAPEBG-UHFFFAOYSA-N CCCCCC(C)(CC)CNC Chemical compound CCCCCC(C)(CC)CNC ADBPZMMONAPEBG-UHFFFAOYSA-N 0.000 description 1
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Abstract
【解決手段】ラインから治療流体を分注する方法は、上流流体源16と接続可能な注入口ラインを提供するステップを含む。注入口ラインは、ポンピングチャンバ122と下流で流体連通する。ポンピングチャンバは、ポンプ吐出口17を有する。また、本方法は、加力アセンブリを作動し、注入口への流体の逆流を制限する一方、ポンピングチャンバに加圧し、ポンプ吐出口へ流動を付勢するステップも含む。対応するシステムが、本方法を採用する。上記加力アセンブリを作動するステップは、作業ストロークの間の前記加力アセンブリの移動を用いて、逆流を制限し、単一機械的作用中の前記ポンピングチャンバに加圧するステップを含む。
【選択図】図5
Description
例えば、本発明は以下の項目を提供する。
(項目1)
ラインから治療流体を分注する方法であって、
上流流体源に接続可能な注入口ラインを提供するステップであって、上記注入口ラインは、ポンピングチャンバと下流で流体連通し、上記ポンピングチャンバは、ポンプ吐出口を有する、ステップと、
上記注入口を通る流体の逆流を制限するために加力アセンブリを作動しながら、上記ポンピングチャンバに加圧し、上記ポンプ吐出口へ流動を付勢するステップと
を含む、方法。
(項目2)
上記加力アセンブリを作動するステップは、作業ストロークの間の上記加力アセンブリの移動を用いて、逆流を制限し、単一機械的作用中の上記ポンピングチャンバに加圧するステップを含む、項目1に記載の方法。
(項目3)
上記加力アセンブリの所与の移動度が、逆流を制限し、より大きい移動度は、上記ポンピングチャンバを加圧する、項目2に記載の方法。
(項目4)
上記加力アセンブリを作動するステップは、上記注入口ラインを閉塞することによって、上記流体源への逆流を制限するステップを含む、項目1に記載の方法。
(項目5)
分注チャンバと上記ポンピングチャンバとの間に載置された受動弁を使用することによって、上記分注チャンバから上記ポンピングチャンバへの流体の反転流を防止するステップをさらに含む、項目1に記載の方法。
(項目6)
上記加力アセンブリを作動するステップは、形状記憶アクチュエータを使用するステップを含む、項目1に記載の方法。
(項目7)
上記形状記憶アクチュエータを使用するステップは、滑車の周囲の力を上記加力アセンブリに伝達するための形状記憶ワイヤの相変化を含む、項目6に記載の方法。
(項目8)
上記ラインを介する流れに関するパラメータを測定するステップと、
上記測定されたパラメータに基づいて、上記ポンプの動作を調節するステップと
をさらに含む、項目1に記載の方法。
(項目9)
上記ラインを介する流れに関連する上記パラメータを測定するステップは、上記ポンピングチャンバの下流に配置された弾性チャンバの容積変化を決定するステップを含む、項目8に記載の方法。
(項目10)
上記パラメータを測定するステップは、音響式容積測定を使用するステップを含む、項目9に記載の方法。
(項目11)
上記弾性チャンバの下流に位置付けられた蛇行流インピーダンスは、ポンピングに応じて、上記弾性チャンバを拡張させるために十分な流体インピーダンスを供給する、項目10に記載の方法。
(項目12)
上記ポンプ吐出口から蛇行流遮断導管へ下流方向に流体を流すステップをさらに含む、項目8に記載の方法。
(項目13)
上記導管は、少なくとも2つの転換点を有する、項目12に記載の方法。
(項目14)
上記導管は、コイル状である、項目12に記載の方法。
(項目15)
上記導管は、蛇行形状を有する、項目12に記載の方法。
(項目16)
上記導管は、上記流体の粘度および密度のうちの少なくとも1つに基づいて、所定のインピーダンスを提供するように選択される長さおよび内径を有する、項目12に記載の方法。
(項目17)
上記導管の上記内径は、上記導管を流れる上記流体の流れによる閉塞を防止するため、十分に大きい、項目16に記載の方法。
(項目18)
上記注入口ライン、上記ポンピングチャンバ、上記ポンプ吐出口、および上記加力アセンブリは、パッチサイズの筐体内に封入され、上記加力アセンブリを作動するステップは、上記筐体内のプロセッサを使用し、上記加力アセンブリを作動させるステップを含む、項目1に記載の方法。
(項目19)
上記筐体は、最大寸法を有し、上記導管は、上記最大寸法を上回る長さを有する、項目12に記載の方法。
(項目20)
上記加力アセンブリを作動するステップは、形状記憶アクチュエータを使用することを誘起するステップを含む、項目1に記載の方法。
(項目21)
形状記憶アクチュエータを使用するステップは、上記形状記憶アクチュエータを通る異なる長さの複数の電気経路のうちの1つを使用するステップを含む、項目20に記載の方法。
(項目22)
上記加力アセンブリは、上記ポンプ吐出口への流動に付勢する際の通常動作のための通常モードと、上記ポンピングチャンバにプライミングするためのプライミングモードとを有し、上記形状記憶アクチュエータを使用するステップは、上記加力アセンブリの上記通常モードの間、上記形状記憶アクチュエータの短い方の電気経路を使用し、上記加力アセンブリの上記プライミングモードの間、上記形状記憶アクチュエータの長い方の電気経路を使用するステップを含む、項目21に記載の方法。
(項目23)
上記加力アセンブリを作動するステップは、複数の形状記憶アクチュエータを使用するステップを含む、項目20に記載の方法。
(項目24)
複数の形状記憶アクチュエータを使用するステップは、冗長的な動作を提供するためにそれらを使用するステップを含む、項目23に記載の方法。
(項目25)
複数の形状記憶アクチュエータを使用するステップは、異なる数の形状記憶アクチュエータを使用して、異なる作動力またはストローク長を提供するステップを含む、項目23に記載の方法。
(項目26)
複数の形状記憶アクチュエータを使用するステップは、少なくとも2つの異なる長さの形状記憶アクチュエータを使用するステップを含む、項目23に記載の方法。
(項目27)
上記加力アセンブリは、上記ポンプ吐出口への流動に付勢する際の通常動作のための通常モードと、上記ポンピングチャンバにプライミングするためのプライミングモードとを有し、上記複数の形状記憶アクチュエータを使用するステップは、上記加力アセンブリの
上記通常モードの間、短い方の形状記憶アクチュエータを使用し、上記加力アセンブリの上記プライミングモードの間、長い方の形状記憶アクチュエータを使用するステップを含む、項目23に記載の方法。
(項目28)
複数の形状記憶アクチュエータを使用するステップは、少なくとも2つの異なる口径の形状記憶アクチュエータを使用するステップを含む、項目23に記載の方法。
(項目29)
ラインを通して流体をポンピングするためのシステムであって、
流体源との流体連通を提供するように接続可能な注入口と、ポンプ吐出口とを有するポンピングチャンバと、
圧縮ストロークを上記ポンピングチャンバに提供するように適合された加力アセンブリと
を含み、上記圧縮ストロークによって、上記ポンピングチャンバから上記注入口への流体の逆流を制限する一方、上記ポンピングチャンバから上記ポンプ吐出口へ流体を付勢する、システム。
(項目30)
上記加力アセンブリが、注入口弁アクチュエータと、ポンプアクチュエータとに連結されることによって、上記ポンプアクチュエータが上記ポンピングチャンバから上記ポンプ吐出口へ流体を付勢する場合、上記圧縮ストロークが、上記注入口と上記流体源との間に連結された注入口弁を作動し、上記弁を閉鎖する、項目29に記載のシステム。
(項目31)
上記加力アセンブリは、上記弁アクチュエータと、上記ポンプアクチュエータと、上記弁アクチュエータおよび上記ポンプアクチュエータの協調動作のためのモータとに連結されたプレートを含む、項目30に記載のシステム。
(項目32)
上記モータは、形状記憶アクチュエータを含む、項目31に記載のシステム。
(項目33)
上記モータは、再利用可能な部分内に嵌入するために、上記形状記憶アクチュエータを折り曲げるための少なくとも1つの滑車を含む、項目32に記載のシステム。
(項目34)
上記加力アセンブリは、モータを含む、項目29に記載のシステム。
(項目35)
上記モータは、形状記憶アクチュエータを含む、項目34に記載のシステム。
(項目36)
上記形状記憶アクチュエータは、上記形状記憶アクチュエータを通る異なる長さの複数の電気経路を提供するように電気的に連結される、項目35に記載のシステム。
(項目37)
上記加力アセンブリは、通常ポンピング条件下で上記ポンピングチャンバを動作させるための通常モードと、上記ポンピングチャンバにプライミングするためのプライミングモードとを有し、上記形状記憶アクチュエータの短い方の電気経路は、上記加力アセンブリの上記通常モードの間に使用され、上記加力アセンブリの上記プライミングモードの間、長い方の電気経路が使用される、項目36に記載のシステム。
(項目38)
上記モータは、複数の形状記憶アクチュエータを含む項目34に記載のシステム。
(項目39)
上記複数の形状記憶アクチュエータは、上記加力アセンブリの冗長的な動作を提供する、項目38に記載のシステム。
(項目40)
異なる数の形状記憶アクチュエータを使用し、異なる作動力またはストローク長を提供する、項目38に記載のシステム。
(項目41)
上記複数の形状記憶アクチュエータは、少なくとも2つの異なる長さの形状記憶アクチュエータを含む、項目38に記載のシステム。
(項目42)
上記加力アセンブリは、通常ポンピング条件下で上記ポンピングチャンバを動作させるための通常モードと、上記ポンピングチャンバにプライミングするためのプライミングモードとを有し、上記加力アセンブリの上記通常モードの間に短い方の形状記憶アクチュエータを使用され、上記加力アセンブリの上記プライミングモードの間に長い方の形状記憶アクチュエータが使用される、項目41に記載のシステム。
(項目43)
上記加力アセンブリは、少なくとも基礎モードとボーラスモードとで動作し、上記ポンピングチャンバは、上記基礎モードの場合、基礎率で流体を出力し、上記ポンピングチャンバは、上記ボーラスモードの場合、ボーラス率で流体を出力し、上記ボーラスモード率は、上記基礎モード率を上回り、上記加力アセンブリの上記基礎モードの間、短い方の形状記憶アクチュエータが使用され、上記加力アセンブリの上記ボーラスモード間、長い方の形状記憶アクチュエータが使用される、項目41に記載のシステム。
(項目44)
上記複数の形状記憶アクチュエータは、少なくとも2つの異なる口径の形状記憶アクチュエータを含む、項目38に記載のシステム。
(項目45)
上記ポンプ吐出口と直列の下流分注アセンブリをさらに含み、上記分注アセンブリは、弾性分注チャンバを含む、項目29に記載のシステム。
(項目46)
上記ラインを流れる流動に関するパラメータを測定するためのセンサをさらに含む、項目45に記載のシステム。
(項目47)
上記ポンピングチャンバ、上記注入口、上記吐出口、および上記力作動アセンブリは、パッチとして装着されるサイズの流体送達装置の構成要素である、項目29に記載のシステム。
(項目48)
上記分注アセンブリの下流に位置する蛇行性の高インピーダンス導管をさらに含む、項目45に記載のシステム。
(項目49)
上記導管は、少なくとも2つの転換点を有する、項目48に記載のシステム。
(項目50)
上記導管は、コイル状である、項目48に記載のシステム。
(項目51)
上記導管は、蛇行形状を有する、項目48に記載のシステム。
(項目52)
上記導管は、上記流体の粘度および密度のうちの少なくとも1つに基づいて、所定のインピーダンスを提供するように選択される長さおよび内径を有する、項目48に記載のシステム。
(項目53)
上記導管の上記内径は、上記導管を流れる治療用液体の流動による閉塞を防止するため、十分に大きい、項目48に記載のシステム。
(項目54)
上記出力への一方向流を強制するための受動弁をさらに含む、項目29に記載のシステム。
(項目55)
上記受動弁は、上記ポンピングチャンバの下流に位置付けられる、項目54に記載の
システム。
(項目56)
上記受動弁は、上記分注アセンブリの上流に位置付けられる、項目55に記載のシステム。
(項目57)
上記ラインの少なくとも一部は、使い捨て可能な構成要素に統合され、上記加力アセンブリは、着脱可能で再利用可能な構成要素に統合され、上記使い捨て可能な構成要素上の膜材料は、上記再利用可能な構成要素に隣接している、項目29に記載のシステム。
(項目58)
上記膜材料は、上記ポンピングチャンバと、注入口弁と、上記出力への一方向流を強制するための受動弁とを画定する上記ライン内の領域に重なる、項目57に記載のシステム。
(項目59)
上記加力アセンブリによって、上記弁を画定する上記領域のそれぞれを覆う上記膜材料に変形力が加えられ、上記弁の閉鎖をもたらす、項目58に記載のシステム。
(項目60)
上記加力アセンブリによって、上記ポンピングチャンバを画定する上記領域を覆う上記膜材料に変形力が加えられ、上記ポンピングチャンバからの流体への付勢をもたらす、項目58に記載のシステム。
(項目61)
上記加力アセンブリは、上記吐出口へ流動を付勢するために、上記ポンピングチャンバの圧縮前に、上記注入口の密閉をもたらす、項目29に記載のシステム。
(項目62)
上記加力アセンブリは、注入口密閉部材とポンプ圧縮部材とを含む、項目61に記載のシステム。
(項目63)
上記加力アセンブリは、上記ポンプ圧縮部材が上記ポンピングチャンバにポンピング力を加えている間でも、上記密閉スプリングに次第に負荷をかけるために、上記ポンプ圧縮部材を作動し、また、密閉スプリングを介して上記注入口密閉部材を作動する駆動部材を含む、項目62に記載のシステム。
(項目64)
上記注入口密閉部材と上記ポンプ圧縮部材の両方を作動させる駆動部材をさらに含み、上記注入口密閉部材は、上記駆動部材と上記密閉部材の一体型支持部との間に位置付けられた密閉スプリングを含み、上記注入口密閉部材は、上記駆動部材の開口部内に摺動可能に据え付けられ、
上記ポンプ圧縮部材は、遠位圧縮部材支持部と上記駆動部材との間に位置付けられた戻しスプリングを含み、
作業ストロークの間、上記駆動部材は、上記密閉スプリングを圧縮し、上記一体型支持部を介して、上記密閉部材に駆動力を伝達する一方、上記ポンプ圧縮部材を上記ポンピングチャンバへ駆動する間でも、上記駆動部材が、上記密閉部材のシャフトに沿って摺動する、項目62に記載のシステム。
(項目65)
上記密閉スプリングは、上記ポンプ圧縮部材が上記ポンピングチャンバにポンピング力を加えている間でも、圧縮される、項目64に記載のシステム。
(項目66)
上記圧縮部材は、上記支持部との接触を介して、戻りストロークを制限する遠位停止部をさらに含む、項目65に記載のシステム。
(項目67)
上記密閉部材は、上記駆動部材の開口部を越えて延在することによって、上記戻りストロークの間、上記駆動部材が、近位拡張部を係合し、変位させて、上記注入口への流動を
可能にする、近位拡張部を含む、項目65に記載のシステム。
(項目68)
上記加力アセンブリは、形状記憶アクチュエータによって作動される、項目29に記載のシステム。
(項目69)
上記受動弁は、ポペットバイアススプリングによって、据え付けられた膜に対しバイアスされるポペットを含む、項目54に記載のシステム。
(項目70)
機械的利点が、上記ポペットを持ち上げるステップに有利に働く、項目69に記載のシステム。
(項目71)
一方向流用の弁であって、
注入口と吐出口とを有する第1の部分であって、上記吐出口は、円周方向に配置された弁座を有する、第1の部分と、
加力部材を有する第2の部分と、
上記第1と第2の部分とを分離する膜と
を含み、上記加力部材は、上記吐出口への流動または上記吐出口からの流動を制限するために、上記膜を上記弁座に対し密閉して保持するためのバイアス力を加え、上記注入口または上記吐出口のいずれかにおける流体圧が、上記バイアス力を克服するために十分でない限り、それによって、上記弁座から上記膜を取り外し、上記弁を介する流動を確立し、
上記膜が上記弁座に対し密閉して保持される場合、上記注入口の上流の流体は、上記吐出口の下流の流体よりも広い上記膜の領域と接触し、それによって、上記上流の流体により大きな機械的利点を与え、上記注入口の低い圧力および上記吐出口の高い圧力に応答して上記弁を開放させ、上記注入口からの、そして上記吐出口への一方向流を促進する、弁。
(項目72)
上記第1の部分は、使い捨て可能な部分であり、上記第2の部分は、再利用可能な部分である、項目71に記載の弁。
(項目73)
上記加力部材は、スプリングとポペットとをさらに含む、項目71に記載の弁。
(項目74)
上記スプリング力を調節するための機構をさらに含む、項目73に記載の弁。
本説明および付随の特許請求の範囲で使用されるように、以下の用語は、文脈によって別途要求されない限り、示される意味を有するものとする。
、および/または所望の基礎あるいはボーラス蓄積投与量を送達可能である。ポンピングのタイミングまたは範囲を決定する際、制御装置501は、センサ(図示せず)の出力を使用して、(とりわけ)流体流速、蓄積流体流量、または両方を推定し、次いで、推定に基づいて、適切な補償作用を決定してもよい。種々の実施形態では、ポンピングは、1パルス当たり10−9リットル〜1パルス当たりマイクロリットルの間で送達可能であるパルスで生じ得る。定常またはボーラス量は、多重パルスを送達することによって達成されてもよい(基礎およびボーラス量の実施例は、以下に提示および記載)。
流入すると、分注チャンバ122は、拡張し、加圧される。分注チャンバ122の拡張により変形される分注ダイヤフラム125は、流量制限器340を通過して出口アセンブリ17へ、計測された容積を送達するために必要とされる力を提供する。上述のように、センサ550は、変位等のパラメータ、あるいは弾性分注チャンバ122の容積に関連し得る熱力学変数または静電容量を繰り返し測定する。センサ550によって生成される容積測定値を使用して、ポンピングアセンブリが、分注チャンバ122に流体をポンピングすることによって、流体の適切な流量が、出口アセンブリ17および後続ラインに、さらにそこから、例えば、患者に送達されるタイミングおよび速度を、フィードバックループを通して制御してもよい。センサ550は、容積または容積関連パラメータを決定するために、例えば、音響式容積感知器(以下に詳述)、または他の方法(他の実施例では、光学、または静電容量)を採用してもよい。音響式容積測定技術は、DEKA Products Limited Partnershipによる米国特許第5,575,310号および第5,755,683号、ならびに2006年4月5日出願の同時係属中の暫定米国特許出願第60/789,243号「METHOD OF VOLUME MEASUREMENT FOR FLOW CONTROL」の主題である(すべて、参照することによって本明細書に援用される)。ナノリットル範囲の流体容積感知器は、本実施形態によって可能であり、したがって、高度に正確かつ精密な監視および送達に貢献する。また、流体流量を測定するための他の代替技術を使用してもよい。例えば、ドップラ法、羽根またはフラッパ弁との組み合わせによるホール効果センサの使用、二重梁の使用(例えば、可撓性部材の歪曲を感知するための流体チャンバ上の可撓性部材に関連)、プレートを備えた静電容量感知器の使用、または熱飛行時間法。
ル1212内に含まれてもよい。しかしながら、基準容積1220は、典型的には、本発明の実践では採用されない。
同様に、同一原理を使用して、伝達関数が容易に求められ、ポート128を介して連結される可変容積チャンバ121内の圧力を用いて、固定容積チャンバ129内の圧力を表す。特に、伝達関数は、次のように求められる。
このポンピング配列は、可動部品と接液ライン構成要素とを、可撓性障壁膜2356の対側に分割する利点を有する。その結果、可動部品は、再利用可能な構成要素内に位置し、接液部品(流体ライン310)は、使い捨て可能な構成要素内に位置され得る。
同時に、ポンピング作動部材54は、ポンピングチャンバ2350へのその経路を開始する。本プロセスの間、注入口ポペットスプリング8002が圧縮されると(この時点で、注入口ポペット端部8018は、流体ライン310にしっかりと圧接している)、ポンププレート8000およびポンピング作動部材54は、流体ライン310へ移動を続ける。注入口ポペットスプリング8002によって、注入口ポペット9221がさらに移動できない場合でも、ポンププレート8000は、ポンピング作動部材54とともに流体ライン310へ動き続けることが可能になる。
図86Aは、カニューレまたは針5010であり得る注入装置と、センサプローブ5025およびセンサ基部5023を含む検体センサの両方を含む、注入およびセンサアセンブリ5040の典型的実施形態を図式的に示す。ブリッジ5070は、注入カニューレ5010と検体センサ基部5023とを強固に接合する。注入装置5010は、源から流体を流動させ、注入装置5010を通して患者に投与させる隔膜5060によって、上側に境界される。センサ基部5023は、患者に挿入されない検体センサの区画である。一実施形態では、基部5023は、血液グルコースの電気化学分析用の電子接触を有する。プローブ5025は、検体センサ5020の基部5023から突出する。
次に、図95を参照すると、流体送達装置10等を患者(図示せず)の皮膚に固定するための、接着パッチ3100の一実施形態の上部斜視図が示される。接着パッチ3100は、提示の形状で示されるが、他の形状も使用可能である。流体送達装置を固持可能な任意の接着パッチ3100が、使用可能である。
図102A〜102Cは、流体送達装置の上部および基部をともに咬持または掛止するための1つの機構を図式的に示す。最初に図102Aを参照すると、クランプ6410の立面図が示される。図102Bは、2つのクランプのための鍵穴6440を備える基部Yを示す。また、対応する鍵穴を、上部(図示せず)に含めてもよい。次に、図102Cを参照すると、上部Xおよび基部Yが整合され、クランプ6410が鍵穴(図示せず、図102Bに6440として図示)に貫入されてもよい。クランプ6410を90°回転することによって、スタッドバー6430を係止位置に移動させる。カムレバー6400を押し下げることによって、クランプピン6420に螺着されたカム6415を係合させ、上部Xを押動する。その結果、上部Xおよび基部Yは、カム6415とスタッドバー6430との間の咬持力によって保持される。カムレバー6400を押し上げることによって、咬持力を解放し、クランプ6410は、90°回転され、引き戻され、上部Xおよび基部Yを分解させてもよい。一部の実施形態では、レバーは、上部Xの保護用カバーとして作用してもよい。
流体を保持するための折り畳み式リザーバの例示的実施形態が、図104〜106Cに示される。折り畳み式リザーバは、流体が引き寄せられるとともに折り畳まれ、それによって、その内部の周囲圧力を維持する、少なくとも1つの区画または壁を有する。
次に、図107を参照すると、リザーバ20を流体で充填するためのリザーバ充填スタンド7000が示される。流体は、注射器7040でその元の容器から引き出され、充填スタンド7000を使用してリザーバ20内に導入されてもよい。充填スタンド7000は、蝶番7030を介して略剛性充填スタンドカバー7020に螺着された、略剛性充填スタンド基部7010を含んでもよい。故に、スタンド7000は、リザーバ20を受容し、保持するために開閉され得る。次いで、注射器7040に付設された針7050は、カバー7020内の充填開口7060、およびリザーバ隔膜6270に貫入されてもよい。充填スタンドカバー7020が剛性であるため、注射器7040による移動制限を設定し、したがって、リザーバ20への針7050の穿刺深度を制御し、リザーバ20底面への穿刺を阻止する。脚部7070は、ある面に支持される場合、スタンド7000を傾斜位置で保持する。スタンド7000が傾斜しているため、注射器7040からリザーバ20へ流体が注入されると、空気は、隔膜6270へ上方に上昇する傾向にある。注射器7040が所望の量の流体をリザーバ20内に注入後、注射器7040を使用して、リザーバ20内の残存空気を除去してもよい。充填スタンド基部7010およびカバー7020が剛性であるため、可撓性リザーバ20は、概して、固定容積を超えて膨張することは不可能であり、リザーバ20の過剰充填は阻止される。基部7010およびカバー7020は、留め金でともに係止されてもよく、または重厚なカバーを使用して、さらに、リザーバの過剰拡張および過剰充填を阻止してもよい。
次に、図111を参照すると、流体送達システム内の誘導電荷および無線通信のためにコイルを使用した、実施形態のレイアウトが示される。上述のように、ユーザインターフェースアセンブリ14は、流体送達装置10と無線通信する携帯型ユーザインターフェースアセンブリ14として具現化可能である。二次コイル(すなわち、ソレノイド)3560は、無線制御装置3580と連動する無線送受信器アンテナとして、流体送達装置10内で採用されてもよい。また、二次コイル3560は、少なくとも部分的に、バッテリ充電回路3540と連動する、装置バッテリ3150を充電するための二次変圧器としての役割を果たしてもよい。本実施形態では、ユーザインターフェースアセンブリ14は、エネルギを二次コイル3560に誘導結合するための一次コイル3490を含む。ユーザインターフェースアセンブリ14が流体送達装置10に近接すると、一次コイル3490は、二次コイル3560を励起する。励起された二次コイル3560は、流体送達装置10内でバッテリ3150を充電するためのバッテリ充電回路3540に電力を供給する。また、一部の実施形態では、一次コイル3490は、アンテナと機能し、無線制御装置3470と連動して、流体送達装置10へ情報を送信し、またそこから情報を受信する。
ポンプ作動のタイミングおよび容積測定に関するデータ、ならびに分注アセンブリからの他のデータは、中間送受信器6600へ送信され、それによって、ユーザインターフェースアセンブリ14に送信されてもよい。
アラーム信号は、流体送達装置10へ送信され、またそこから送信されてもよい。
データの受信を確認するための信号は、ユーザインターフェース14から中間送受信器6600へ、そして中間送受信器6600から流体送達装置10へ送信されてもよい。
装置10の動作パラメータを変更するための制御信号は、中間送受信器6600を使用して、ユーザインターフェースアセンブリ14から流体送達装置10へ送信されてもよい。
設定制限を超える時間内の受信データの欠如。
装置またはユーザインターフェースアセンブリからのデータ受信確認信号の欠如。
機器内メモリ6620のオーバーフローまたはオーバーフローに近い状態。
低電力。
流体送達装置10から受信した、過度に高い、低い、または不適切に時間設定された容積測定値。
次に、図115および116を参照すると、バッテリ7100を充電するための器具の一実施形態が示される。図15では、流体送達装置2620の上部使い捨て不可能な部分は、流体送達装置の基部使い捨て可能な部分から切断されて示される。充電器7100は、上部2620のバッテリ(図示せず)を充電するために使用される。図116では、上部2620は、充電器7100上に示される。ラッチ6530は、閉鎖されており、上部2620を充電器7100に接続して示される。したがって、上部2620を基部(図示せず)に接続するために使用されるラッチ6530もまた、上部2620を充電器7100に接続するために使用される。ドッキングによって、直接電力接続が確立されてもよく、または電力は、誘導結合によって伝送されてもよい。また、本システムの一部の実施形態では、患者は、複数の使い捨て不可能な部分2620を、交代で採用する。すなわち、1つの使い捨て不可能な部分2620を充電しながら、第2の使い捨て不可能な部分(図示せず)を使用する。
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