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    • 61. 发明授权
    • Method and apparatus for aerating a surface layer in a stratified liquid body
    • 用于对层状液体中的表面层进行曝气的方法和装置
    • US07267766B2
    • 2007-09-11
    • US10941666
    • 2004-09-15
    • William R. CampionWilliam J. Donohue
    • William R. CampionWilliam J. Donohue
    • B01F3/04
    • C02F3/30B01F3/04113B01F2003/04148B01F2003/04212C02F3/00C02F2103/20C02F2305/06Y02W30/47
    • A method and apparatus for aerating a surface layer in a stratified liquid body using a depth-adjustable, fine bubble, surface layer aeration unit comprising: a body comprising at least one hollow internal structure; an air inlet communicating with the at least one hollow internal structure, whereby air from an external air source may be introduced into the at least one hollow internal structure; at least one fine bubble aerator communicating with the at least one hollow internal structure, whereby air from the at least one hollow internal structure may be released through the fine bubble aerator into an adjacent fluid; and at least one weight pod attached to the body, wherein the at least one weight pod comprises structure for adjusting the weight of the at least one weight pod, whereby the buoyancy of the aeration unit may be adjusted so as to permit the at least one fine bubble aerator to be positioned at a desired depth in a fluid body.
    • 一种使用深度可调的,细小的气泡表面曝气单元对分层液体中的表面层进行曝气的方法和装置,包括:主体,其包括至少一个中空内部结构; 与所述至少一个中空内部结构连通的空气入口,由此来自外部空气源的空气可以被引入至少一个中空内部结构中; 至少一个细气泡曝气器与所述至少一个中空内部结构连通,由此来自所述至少一个中空内部结构的空气可以通过所述细小气泡曝气器释放到相邻的流体中; 以及至少一个重量荚,其附接到所述主体,其中所述至少一个重量荚包括用于调节所述至少一个砝码荚的重量的结构,由此可以调节曝气单元的浮力以允许所述至少一个 细气泡曝气器被定位在流体体内所需的深度处。
    • 66. 发明申请
    • Microbial manure treatment system
    • US20060027496A1
    • 2006-02-09
    • US11149782
    • 2005-06-10
    • William CampionWilliam DonohueChuzhao Lin
    • William CampionWilliam DonohueChuzhao Lin
    • C02F3/30
    • C02F3/30B01F3/04113B01F2003/04148B01F2003/04212C02F3/00C02F2103/20C02F2305/06Y02W30/47
    • In another form of the invention, there is provided a system for treating a manure slurry, comprising: a manure lagoon comprising: a lower anaerobic stratum comprising anaerobic microbes; an upper aerobic stratum comprising aerobic microbes; and an intermediate facultative stratum comprising facultative microbes. In another form of the invention, there is provided a system for treating a manure slurry, comprising: a manure lagoon comprising: a lower anaerobic stratum comprising anaerobic microbes; and an upper aerobic stratum comprising aerobic microbes. In another form of the invention, there is provided a system for treating a manure slurry, comprising: a manure lagoon comprising: an aerator for creating an aerobic stratum within only a portion of the manure slurry. In another form of the invention, there is provided a method for treating a manure slurry, comprising: creating a manure lagoon comprising: a lower anaerobic stratum comprising anaerobic microbes; an upper aerobic stratum comprising aerobic microbes; and an intermediate facultative stratum comprising facultative microbes. In another form of the invention, there is provided a method for treating a manure slurry, comprising: creating a manure lagoon comprising: a lower anaerobic stratum comprising anaerobic microbes; and an upper aerobic stratum comprising aerobic microbes. In another form of the invention, there is provided a method for treating a manure slurry, comprising: creating a manure lagoon comprising: an aerator for creating an aerobic stratum within only a portion of the manure slurry. In another form of the invention, there is provided a method for fertilizing crops, comprising: creating a manure lagoon comprising: a lower anaerobic stratum comprising anaerobic microbes; and an upper aerobic stratum comprising aerobic microbes; withdrawing from the manure lagoon at least a portion of the upper aerobic stratum; and distributing the withdrawn portion of the upper aerobic stratum on the area containing the crops. In another form of the invention, there is provided a depth-adjustable, fine bubble, surface layer aeration unit for aerating a selected portion of a fluid body, comprising: a body comprising at least one hollow internal structure; an air inlet communicating with the at least one hollow internal structure, whereby air from an external air source may be introduced into the at least one hollow internal structure; at least one fine bubble aerator communicating with the at least one hollow internal structure, whereby air from the at least one hollow internal structure may be released through the at least one fine bubble aerator into an adjacent fluid; and at least one weight pod attached to the body, wherein the at least one weight pod comprises structure for adjusting the weight of the at least one weight pod, whereby the buoyancy of the aeration unit may be adjusted so as to permit the at least one fine bubble aerator to be positioned at a desired depth in a fluid body. In another form of the invention, there is provided a method for aerating a surface layer in a stratified liquid body, comprising: providing a depth-adjustable, fine bubble, surface layer aeration unit comprising: body comprising at least one hollow internal structure; an air inlet communicating with the at least one hollow internal structure, whereby air from an external air source may be introduced into the at least one hollow internal structure; at least one fine bubble aerator communicating with the at least one hollow internal structure, whereby air from the at least one hollow internal structure may be released through the at least one fine bubble aerator into an adjacent fluid; and at least one weight pod attached to the body, wherein the at least one weight pod comprises structure for adjusting the weight of the at least one weight pod, whereby the buoyancy of the aeration unit may be adjusted so as to permit the at least one fine bubble aerator to be positioned at a desired depth in a fluid body; connecting an air source to the air inlet, and positioning the unit in a fluid body; and adjusting the weight of the at least one weight pod, so as to position the at least one fine bubble aerator within the surface layer of the stratified liquid body.
    • 67. 发明授权
    • Supporting structure and supporting bracket of single tube drift generator receiving centrifugal force of internal fluid
    • 单管漂移发生器的支撑结构和支撑支架承受内部流体的离心力
    • US06860473B2
    • 2005-03-01
    • US10466780
    • 2001-02-05
    • Masataka Oshima
    • Masataka Oshima
    • B01F3/04B01F3/08B01F5/02
    • B01F3/04248B01F3/04099B01F3/04113B01F3/0412B01F3/04517B01F3/0876B01F5/0206B01F2003/0417B01F2003/04177
    • The present invention concerns a supporting structure of a single tube drift generator. Supporting brackets (9) are formed by integrating fixed plates (8) extending generally through the overall length of a tube body (2) of a single tube drift generator (1) with support leg members (7) extending in the axial direction of the single tube drift generator (1). The supporting brackets have right and left side frames (9a) and (9b) integrally forming the fixed plates (8) with the support leg members (7) and the cushioning material (9c) provided between the pair of right and left side frames (9a) and (9b). A plurality of support brackets (9) are disposed on the side surface of the tube body (2) of the drift generator (1), and the tube body (2) of the drift generator (1) is connected, through generally the overall length thereof, to the fixed plates (8) of the support brackets (9).
    • 本发明涉及单管漂移发生器的支撑结构。 支撑支架(9)通过将大致通过单个管漂移发生器(1)的管体(2)的整个长度延伸的固定板(8)与沿着轴向方向延伸的支撑腿构件(7) 单管漂移发生器(1)。 支撑托架具有与设置在一对右侧框架和左侧框架之间的支撑腿构件(7)和缓冲材料(9c)一体地形成固定板(8)的左右侧框架(9a)和(9b) 9a)和(9b)。 多个支撑支架(9)设置在漂移发生器(1)的管体(2)的侧表面上,并且漂移发生器(1)的管体(2)通过总体上整体 延伸到支撑托架(9)的固定板(8)。
    • 70. 发明授权
    • Method for compound movement of an aeration unit
    • 曝气机组合运动方法
    • US6086058A
    • 2000-07-11
    • US385926
    • 1999-08-30
    • Joseph Karl BrauchCharles Lonnie MeurerDouglas Lee Meurer
    • Joseph Karl BrauchCharles Lonnie MeurerDouglas Lee Meurer
    • B01F3/04
    • B01F3/04113B01F2003/04234Y10S261/70
    • Improvements are made to a system in which force is applied to aeration units from only one side of a basin. Part of such force is vector transferred from one end of a beam of the aeration unit to the other end of the beam to move both ends of the beam. The beam supports pipes of the aeration unit. A force transfer module includes one force transfer strand held in a force transfer path between fixed opposite ends of the strand. The force transfer path extends in part along the beam, which is placed in compression. Motion of the one end of the beam resulting from the force is transferred by the single force transfer strand to the opposite end of the beam so that both ends of the beam move relative to the basin under the action of the force. The improvements include guides on the beam for allowing the pipes of the aeration unit to move off the beam to a side of the basin for servicing, a levelling device for positioning ends of the pipes level with each other to enable the pipes to introduce uniform amounts of gas into the basin, and a plurality of vector force transfer modules provided across the basin to apply forces to the beam at many locations.
    • 对于仅从盆地一侧的曝气单元施加力的系统进行了改进。 这种力的一部分是从曝气单元的光束的一端传递到光束的另一端的矢量,以移动光束的两端。 梁支撑曝气单元的管道。 力传递模块包括保持在股线的固定相对端之间的力传递路径中的一个力传递线。 力传递路径部分地沿着被放置在压缩中的梁延伸。 由力产生的梁的一端的运动通过单个力传递股转移到梁的相对端,使得梁的两端在力的作用下相对于盆移动。 这些改进包括梁上的引导件,用于允许曝气单元的管道从梁的一侧移出到盆的一侧进行维护;平整装置,用于将管道的端部彼此定位,使得管道能够引入均匀的量 的气体进入盆地,以及多个向量力传递模块,其跨越盆地设置,以在许多位置向梁施加力。