The present invention relates to systems and methods of designing and manufacturing engineered objects and, more specifically, to design and manufacturing systems and methods for manufacturing engineered objects based on a customer-approved design.
The term “object” is used herein to refer to a mechanical, electrical, or chemical component or any combination of such components. The term “engineered” as used herein refers to an object at least some aspect of which is specifically engineered to suit the requirements of a particular customer.
The present invention is of particular significance in the context of the design and manufacturing of bulk material handling systems such as the type typically used in a manufacturing environment to carry material from one location to another. The present invention will thus be described herein using the example of a system or method of designing and manufacturing an engineered object taking the form a bulk material handling system. However, the example presented herein is described for illustrative purposes only, and the present invention may take forms than the illustrative example described below.
A bulk material handling system typically requires the combination of mechanical and electrical components and material properties into an overall system that fits the particular working environment of a specific customer. Although many of the components used in a bulk material handling system are standardized, each particular design requires custom engineering. A bulk material handling system thus meets the definition of an engineered object as set forth above.
Conventionally, the design and manufacturing of a bulk material handling system involves the services of a salesman and an engineering department. The conventional process of designing and manufacturing a bulk material handling system may be described as follows.
Initially, the customer sends to the salesman a Request For Quotation (RFQ) containing the requirements of a proposed new bulk material handling system. The salesman works with the engineering department to generate a proposal based on the RFQ. The proposal contains engineering specifications defining the proposed new bulk material handling system and a quote of the price. The proposal typically may take up to several days to generate. The customer places an order when the proposal is accepted.
After the order is placed, the engineering department generates approval layout drawings based on the approved engineering specifications. The customer confirms that the approval layout drawings are accurate, and, if not, the approval layout drawings may be revised. The approval layout drawings are commonly produced based on finished job drawings for similar bulk material handling systems that have been hand-modified based on the specifications defined by the order.
Once the approval layout drawings are finalized, the engineering staff will generate detail manufacturing drawings and associated documents. From the detail manufacturing drawings, CNC-ready files are created for the cutting of sheet metal. The sheet metal and other components such as motors or the like are then combined with the sheet metal components based on the detail manufacturing drawings. The finished bulk material handling system is then installed at the customer's site.
The Applicant has identified at least the follow problems with conventional systems and methods for designing and manufacturing bulk material handling systems.
First, the step of generating the proposal requires the involvement of highly experienced engineering staff for at least several hours and often several days. The use of experienced engineering staff is expensive, and the fact that the proposal may take several days to prepare may place the manufacturer at a competitive disadvantage. Second, even with involvement of engineers for many hours, the preliminary specifications, without the approval drawings, do not include the detail drawings required for manufacture. The use of preliminary specifications to create the proposal creates the potential for costly design mistakes and inaccuracies in the quote. Third, the step of generating approval drawings can take several iterations over the period of one to two weeks. Fourth, the step of generating the detail manufacturing drawings based on prior finished job drawings for other projects often resulted in components that did not fit together or match the approval drawings.
The conventional process of designing and manufacturing a bulk material handling system is thus time consuming, requires significant highly technical labor simply to prepare a proposal, and is susceptible to design errors that are difficult and costly to fix. The need thus exists for improved systems and methods of designing and manufacturing engineered objects such as bulk material handling systems.
The invention may be embodied as a method of generating an engineered object comprising the following steps. A request for proposal defining the engineered object is received. Components of the engineered object are defined. A cost estimate is generated based on at least one of the request for proposal, the components, and engineering rules and knowledge. An engineered product layout is generated based on at least one of the request for proposal and the engineering rules and knowledge. A proposal is generated based on the cost estimate and the engineered product layout. An order is generated based on the proposal. An object design is generated based on the proposal and the order. The engineered object is generated based on the object design.
The present invention may also be embodied as a method of producing an engineered object comprising the following steps. Cost estimates are generated at least in part based on a request for proposal defining the engineered object and engineering rules and knowledge. Layout drawings are generated at least in part based on the request for proposal and engineering rules and knowledge. Object designs are generated at least in part based on the request for proposal, engineering rules and knowledge, and an engineering review. A request for proposal defining the engineered object is accepted. The request for proposal is entered to generate a cost estimate. The request for proposal is entered to generate a layout drawing. A proposal is generated based on the cost estimate and the layout drawing. An order is received based on the proposal. Based on the order and the proposal, an assembly specification, a detail specification, and machine control files comprising the object design are generated. The engineered object is produced based on the assembly specification, the detail specification, and the machine control files.
The present invention may also be embodied as a method of producing a bulk material handling system comprising the following steps. Cost estimates are generated for bulk material handling systems based on requests for proposal. Layout drawings are generated. Object designs are generated at least in part based on at least one of parameters associated with components of bulk material handling systems, engineering rules and knowledge related to bulk material handling systems, and an engineering review. A request for proposal defining a bulk material handling system design is generated. A cost estimate is generated based on the request for proposal. A layout drawing is generated based on the request for proposal. A proposal is generated based on the cost estimate and the layout drawing. An order is received based on the proposal. Based on the order and the proposal, an assembly specification, a detail specification, and machine control files comprising the bulk material handling system design are generated. The bulk material handling system is produced based on the assembly specification, the detail specification, and the machine control files.
Referring initially to
The design and manufacturing system 20 comprises a parametric design system 30; the parametric design system 30 comprises an estimate generator 32, a layout drawing generator 34, and a design drawing generator 36. The parametric design system 30 determines the parameters associated with components of an object based on: (a) the parameters associated with other components of the object; and (b) engineering rules and knowledge developed based on experience with objects similar to the engineered object 22.
The example system 20 further comprises factory automation machines 40, manufacturing facilities 42, and/or off-site assembly facilities 44. The factory automation machines 40, manufacturing facilities 42, and off-site assembly facilities 44 all are or may be conventional and will not be described herein beyond what is necessary for a complete understanding of the present invention.
Also depicted in
The customer 50, sales person 52, and engineer 54 are not per se part of the design and manufacturing system 20 of the present invention but are integral to the design and/or manufacturing of the engineered object 22 using the system 20. Further, the functions performed by any of the customer 50, sales person 52, and/or engineer 54 may be, and typically are, performed by more than one individual.
In the context of a bulk material handling system, the manufactured components 62 are typically two-dimensional sheet metal components cut to be folded into three-dimensional structures; in this context, the procured components 64 are motors, sensors, belts, controllers, and the like that are assembled with the three-dimensional structures formed by the manufactured components 62 into the subassemblies 60 and eventually into the engineered object 22 in the form of a bulk material handling system.
The entity that manufactures the engineered object 22 may own and operate the parametric design system 30, the factory automation machines 40, and the manufacturing facilities 42. The on-site assembly facilities 44 may be owned and operated by an entity associated with the customer 50. However, in the context of modern manufacturing practices, it should be clear that the parametric design system 30, factory automation machines 40, manufacturing facilities 42, and on-site assembly facilities 44 may be owned and/or operated by other entities and located at widely distributed physical locations.
During the operation of the design and manufacturing system 20, numerous documents are generated. In the context of the present invention, the term “document” broadly refers to all forms of communication such as paper documents and computer files that represent design data associated with the design and manufacture of the engineered object 22. This design data can take a wide variety of forms, including text, drawings, databases, lists, and computer code. The following table identifies and describes certain documents that are used as part of the design and manufacturing system 20 as described in
Referring now to
In some situations, the customer 50 may accept the initial proposal 76a. In many situations, the customer 50 may reject the initial proposal 76a at step 134 for any one of a number of reasons such as the cost estimate 72a exceeding the budget, location or clearance problems, and/or a change of performance requirements since the generation of the original RFQ 70. In any of these situations, the process may return to step 130, and the sales person 52 may generate subsequent cost estimates 72b and possibly 72c and approval specifications 74b and possibly 74c. Based on these subsequent cost estimates 72b, 72c and approval specifications 74b, 74c, the sales person 52 may repeat step 132 to generate additional proposals 76b and possibly 76c until one of the proposals 76 is accepted at step 134.
When the customer 50 accepts one of the proposals 76 at step 134, the customer 50 generates an order 78 at step 140. The order 78, which contains or identifies the approval specifications 74 defining the engineered object 22, is forwarded to the engineer 54. As shown at step 142, the engineer 54 uses the design specifications generator 36 to generate the Detail Specifications, the machine control files 82, and the assembly specifications 84.
The machine control files 82 are sent to the factory automation machines 40 to control these machines 40 to manufacture the manufactured components 62 at step 150. The Detail Specifications 82 are used to identify and procure the procured components 64 at step 152. Using the Detail Specifications 80, the manufactured components 62 and the procured components 64 are combined to form the subassemblies 60 using the manufacturing facilities 42 at step 160.
In the example shown in
With the foregoing general understanding of the principles of the present invention in mind, the details of construction and operation of the example design and manufacturing system 20 will now be described in detail.
Referring now to FIGS. 3 and 3A-D of the drawing and Exhibits A and B attached hereto, the step 130 of the method 120 of using the example design and manufacturing system 20 will now be described in further detail. At an initial step 210, the sales person 52 uses the parametric design system 30 to create a new proposal using the software panel depicted in
At step 212, the sales person 52 defines the properties of the proposed bulk material handling system using a software panel as shown in
Based on the properties entered at step 212, at step 214 the machine specifications are generated.
Based on the machine specifications, the parametric design system 30 generates the cost estimate 72 at step 220 and the layout specifications 74 at step 222. The cost estimate 72 is schematically depicted in
The parametric design system 30 further generates at step 222 the layout specifications 74 based on the machine specifications generated at step 214. The layout specifications 74 typically include a summary of the more important specifications and a layout drawing associated with the proposed bulk material handling system. A sample layout drawing is illustrated in
In particular, a sample proposal is attached hereto as Exhibit B. The proposal in Exhibit B takes the form of a multiple-page word processing document that has been automatically generated based on information entered into and generated by the parametric design system 30. The sample proposal attached hereto contains on pages 1 and 2 boilerplate legal language associated with terms of sale, shipment obligations, freight options, and the like. Page 3 contains a summary of the important specifications and layout drawing of the proposed bulk material handling system generated from the layout specifications 74 and a price generated from the cost estimate 72. Page 4 contains even more detailed specifications and price of the drive component of the proposed bulk material handling system.
Based on a proposal such as the sample proposal in Exhibit B, the customer determines whether the proposed new bulk material handling system and price as defined in the proposal are acceptable. If not, the sales person can easily and quickly generate additional proposals 76.
When a proposal 76 is ultimately accepted, the customer 50 generates the order 78. The order 78 obligates the customer 50 to purchase the proposed new bulk material handling system at the agreed upon price and obligates the sales entity to manufacture the new proposed bulk material handling system according to the specifications of the proposal 76. The order 78 may contain or refer to the accepted proposal 76.
The order 78 is passed to the engineer 54. The engineer 54 performs the step 142 of the method 120 using the example design and manufacturing system 20, and this step 142 will now be described in further detail with reference to FIGS. 4 and 4A-J.
As discussed above, the layout specifications 74 define basic, important characteristics of the proposed new bulk material handling system, especially those relating to price. However, the layout specifications 74 do not define the details of construction and assembly of the proposed new bulk material handling system. As generally described above, at step 142 the engineer 54 uses the parametric design system 30 to generate the detailed specifications 80, machine control files 82, and assembly specifications 84.
Initially, in a step 250 shown in
When the values associated with the components of the tail subassembly are confirmed, the engineer 54 next directs the parametric design system 30 to generate component values associated with the tail subassembly design. In particular, the parametric design system 30 generates the component values based on the accumulated knowledge embodied in the engineering rules stored in the parametric design system 30 as will be described in further detail below.
The component values are then passed to a three-dimensional modeling system such as Solid Works. The three-dimensional modeling system generates a three-dimensional computer model representing the tail subassembly at step 254, and a sample two-dimensional view of the three-dimensional model of the tail subassembly is depicted in
The three-dimensional modeling system allows the tail assembly to be rendered in many different views and perspectives. The engineer 54 analyzes the three-dimensional model from different views and perspectives to determine, at step 256, whether a problem exists with the design of the tail subassembly.
Accordingly, if the engineer 54 determines at step 256 that a problem exists with the tail subassembly, the process proceeds to step 260 where the engineer revises rules contained in the engineering rules database of the parametric design system 30. After the rules have been properly revised, the method returns to step 254 where another three-dimensional model is generated based on the values selected or confirmed in step 252.
When the engineer 54 determines at step 256 that the three-dimensional model does not contain any problems, the parametric design system 30 passes values associated with the designed tail subassembly to a Computer Aided Drafting (CAD) program such as AutoCAD. As shown in
The parametric design system 30 further generates at step 270 a bill of materials such as depicted in
As shown at step 272, AutoCAD generates flat pattern drawings as depicted in
Step 274 illustrates that the parametric design system 30 generates the assembly specifications 84, a sample of which is depicted at
The fundamental principles of a parametric design system such as the parametric design system 30 used by the design and manufacturing system 20 are generally known and will not be described herein beyond what is required for a complete understanding of the present invention.
At step 324, the user enters sizing information defining a particular engineered object to be designed. Based on the engineering rules database created at step 322 and the sizing data entered at step 324, at step 326 a machine specification 328 is generated.
The machine specification 328 can take many different forms. In the context of the example parametric design system 30, the machine specification may take the form of cost estimate 72, the approval specifications 74, the design specifications 80, and/or the assembly specifications 82.
From the foregoing, it should be apparent that the present invention may be embodied in forms other than those described and depicted herein with departing from the scope of the present invention. The scope of the present invention should thus be determined based on the claims attached hereto and not the foregoing detailed description of the invention.
This application is a continuation of U.S. patent application Ser. No. 12/510,519 filed Jul. 28, 2009. U.S. patent application Ser. No. 12/510,519 is a continuation of U.S. Ser. No. 12/070,603 filed Feb. 19, 2008, now U.S. Pat. No. 7,567,849 issued Jul. 28, 2009. U.S. patent application Ser. No. 12/070,603 is a continuation of U.S. Ser. No. 11/430,798 filed May 9, 2006, now U.S. Pat. No. 7,333,868 issued Feb. 19, 2008. U.S. patent application Ser. No. 11/430,798 claims priority of U.S. Provisional Patent Application No. 60/679,447 filed on May 10, 2005. The contents of all related applications listed above are incorporated herein by reference.
Number | Date | Country | |
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60679447 | May 2005 | US |
Number | Date | Country | |
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Parent | 12510519 | Jul 2009 | US |
Child | 13246740 | US | |
Parent | 12070603 | Feb 2008 | US |
Child | 12510519 | US | |
Parent | 11430798 | May 2006 | US |
Child | 12070603 | US |