WO2012173848A1 - Systems and methods for scale-up of continuous flow reactors - Google Patents

Systems and methods for scale-up of continuous flow reactors Download PDF

Info

Publication number
WO2012173848A1
WO2012173848A1 PCT/US2012/041192 US2012041192W WO2012173848A1 WO 2012173848 A1 WO2012173848 A1 WO 2012173848A1 US 2012041192 W US2012041192 W US 2012041192W WO 2012173848 A1 WO2012173848 A1 WO 2012173848A1
Authority
WO
WIPO (PCT)
Prior art keywords
pilot
production
heat transfer
channel
reactor
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/US2012/041192
Other languages
French (fr)
Inventor
Roland Guidat
Olivier Lobet
Pierre Woehl
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Corning Inc
Original Assignee
Corning Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Corning Inc filed Critical Corning Inc
Priority to US14/125,720 priority Critical patent/US10046295B2/en
Priority to CN201280029238.6A priority patent/CN103596676A/en
Publication of WO2012173848A1 publication Critical patent/WO2012173848A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J19/00Chemical, physical or physico-chemical processes in general; Their relevant apparatus
    • B01J19/0053Details of the reactor
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J19/00Chemical, physical or physico-chemical processes in general; Their relevant apparatus
    • B01J19/0093Microreactors, e.g. miniaturised or microfabricated reactors
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J2219/00Chemical, physical or physico-chemical processes in general; Their relevant apparatus
    • B01J2219/00002Chemical plants
    • B01J2219/00004Scale aspects
    • B01J2219/00015Scale-up
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J2219/00Chemical, physical or physico-chemical processes in general; Their relevant apparatus
    • B01J2219/00781Aspects relating to microreactors
    • B01J2219/00819Materials of construction
    • B01J2219/00824Ceramic
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J2219/00Chemical, physical or physico-chemical processes in general; Their relevant apparatus
    • B01J2219/00781Aspects relating to microreactors
    • B01J2219/00819Materials of construction
    • B01J2219/00831Glass
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J2219/00Chemical, physical or physico-chemical processes in general; Their relevant apparatus
    • B01J2219/00781Aspects relating to microreactors
    • B01J2219/00851Additional features
    • B01J2219/00858Aspects relating to the size of the reactor
    • B01J2219/0086Dimensions of the flow channels
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J2219/00Chemical, physical or physico-chemical processes in general; Their relevant apparatus
    • B01J2219/00781Aspects relating to microreactors
    • B01J2219/00873Heat exchange
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J2219/00Chemical, physical or physico-chemical processes in general; Their relevant apparatus
    • B01J2219/00781Aspects relating to microreactors
    • B01J2219/00993Design aspects
    • B01J2219/00995Mathematical modeling
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture

Definitions

  • the present invention relates to methods to easily scale up from microreactor lab scale testing and reaction development to industrial production.
  • Continuous flow micro reaction technology is very promising technology, as it offers, as compared to the traditional batch system, a very uniform residence time, much better thermal control, and a lower hold-up, leading to a significant step change in terms of chemical yield and selectivity, and safety.
  • the typical throughput of these devices ranges from less than one milliliter per minute to a few dozens of milliliters per minute.
  • the present disclosure includes a method of a reactor design and use which allows the increase of production rates of continuous micro reactors by adjusting the physical properties of the material the micro-reactor is made of, as well as certain specific dimensions, allowing a higher throughput while keeping the same performance, particularly in heat transfer capacity.
  • a method for the seamless scale-up of a micro reactor process to transfer lab test to a pilot or production unit, the process comprising the steps of using a wall material for the lab reactor with a thermal conductivity lower than 3 W/m-K, and using a wall material for the production reactor with a thermal conductivity higher than 5W/m-K.
  • the velocity is kept constant, and the height of the channel is determined, in order to keep the volumetric heat transfer properti constant, according to the formula:
  • the pressure drop and the volumetric heat transfer properties are kept constant, while the channel height and the velocity are selected calculated according to the simultaneous solution of the following two formulas:
  • Figure 1 is a typical scheme of a rectangular channel with a length 1, a width w, and a height h.
  • Figure 2 represents the variation of the height of the module h, according to the present disclosure, to beep the same thermal performance while the thermal conductivity of the material of the wall is changed.
  • a micro reactor can be seen as a combination of channels that may have different shape and width.
  • a rectangular channel wilt a length 1, a width w, a height h, as depicted in Figure 1. Any other shape of channel could be used without affecting the invention.
  • the hydraulic diameter of the channel will be:
  • a given residence time is required, and accordingly is set constant for the following discussion.
  • the desired residence time is maintained by a corresponding change in the volume of the reactor.
  • the overall heat transfer coefficient of the micro reactor is the resulting combination of thee partial heat transfer coefficients: (1 ) the utility heat transfer coefficient U HE (Watt/m 2 -K), (2) the wall heat transfer coefficient Uw (Watt/m 2 -K), and (3) the process heat transfer coefficient Up (Watt/m 2 -K).
  • the overall surface heat transfer coefficient UQ is a non linear relationship between these three partial coefficients:
  • U HE is generally already optimized in microfluidic channel or module designs, and an increase of the value of this coefficient would lead to an consequent increase of pressure drop that could either lead to an operating pressure in excess of the design pressure, or to a pressure higher than the operating pressure of the utilities of the end user. Therefore, this factor will be kept constant.
  • Ve is the velocity of the process fluid
  • p is the process fluid density
  • is the process fluid viscosity
  • is the process fluid thermal conductivity
  • Cp is the process fluid heat capacity
  • Up can be written as a product of terms linked to the process fluid thermal properties, and terms linked to parameters that can be adjusted (such as height of the channel and fluid velocity).
  • the objective as discussed above is to keep H G constant, while increasing the height h of the channel of a micro reactor.
  • the parameters that could potentially be changed are the wall thickness e, the fluid velocity Ve and the wall thermal conductivity w .
  • the thickness of the wall e could be reduced; such reduction would generally have an adverse impact on the mechanical properties of the micro reactor.
  • the increase of the height of the channel h is should be fully compensated, in terms of maintaining a constant volumetric heat transfer coefficient, by changing the wall material to a material of a higher thermal conductivity.
  • the velocity is kept constant.
  • the velocity is kept constant to keep as many as possible of the flow parameters (mixing, residence time distribution) at the same value.
  • the height of the channel h is adjusted to match a change or variation of wall thermal conductivity according to the following formula: with A, B, C being constant.
  • the process fluid is an organic solvent
  • the value of the Heat exchange partial heat transfer coefficient being equal to 8 000W/m 2 K
  • the wall material being glass with a thermal conductivity of 1 W/m-K
  • a thickness of 1,2 mm the height of the channel being 1,5 mm.
  • the overall volumetric heat transfer coefficient achieved is 400 kW/m3K.
  • An additional benefit is that, because the thermal performance can be predicted with a very good accuracy, there is no need to conduct further tests when changing the wall material, which can save a lot of development time and money.
  • Figure 2 is an example of such curve. Several cases are plotted, according to the fluid physical properties (water or organic fluid), and the process fluid velocity (1.2, 2.2, or 3.2 m/s), for an initial channel height with glass of 0.5 mm.
  • the velocity of the process fluid is increased rather than maintained at the same level, in order to provide a further increase of the partial process heat transfer coefficient UP, while keeping the pressure drop at the same level as in the lab or prototyping equipment.
  • the length of the channel has to be increased in the same proportion as the velocity increase.
  • the principle of optimization remains the same, however: the height of the channel is adjusted according to a variation of the wall thermal conductivity, but in addition, the velocity is determined in order to keep the pressure drop constant. In the case where the width of the channel is much larger than the height:
  • the methods disclosed herein allow seamless scale -up of a micro reactor processes from lab test or prototyping to production, while keeping the overall performance of the equipment, and particularly the volumetric heat transfer capacity, at the same level. This will lead to a significant reduction in the number of reactors required in parallel, reducing the installation and maintenance cost, and to a significant increase in reliability and predictability in implementing micro reaction technology, without requiring full-scale production equipment for reaction and process characterization.
  • the reduction of the number of reactors in parallel will even make feasible production operations that could not have been envisioned due to the high number of reactor requested without the use of the disclosed methods. Additionally, the disclosed methods provide a way to determine easily the height increase that can be made without making an additional pilot phase to validate the impact of the scale-up, which otherwise would take significant time and effort.
  • the seamless scale-up methods disclosed herein are generally useful in performing any process that involves mixing, separation, extraction, crystallization, precipitation, or otherwise processing fluids or mixtures of fluids, including multiphase mixtures of fluids— and including fluids or mixtures of fluids including multiphase mixtures of fluids that also contain solids— within a microstructure.
  • the processing may include a physical process, a chemical reaction defined as a process that results in the interconversion of organic, inorganic, or both organic and inorganic species, a biochemical process, or any other form of processing.
  • the following non-limiting list of reactions may be performed with the disclosed methods and/or devices: oxidation; reduction; substitution; elimination; addition; ligand exchange; metal exchange; and ion exchange.
  • reactions of any of the following non-limiting list may be performed with the disclosed methods and/or devices: polymerization; alkylation; dealkylation; nitration; peroxidation; sulfoxidation; epoxidation; ammoxidation; hydrogenation; dehydrogenation; organometallic reactions; precious metal chemistry/ homogeneous catalyst reactions; carbonylation; thiocarbonylation; alkoxylation; halogenation; dehydrohalogenation; dehalogenation; hydroformylation; carboxylation; decarboxylation; amination; arylation; peptide coupling; aldol condensation;

Landscapes

  • Chemical & Material Sciences (AREA)
  • Organic Chemistry (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Physical Or Chemical Processes And Apparatus (AREA)

Abstract

A method is disclosed for the seamless scale-up of a micro reactor process, to transfer lab test to a pilot or production unit, the process comprising the steps of using a wall material for the lab reactor with a thermal conductivity lower than 3 W/m-K, and using a wall material for the production reactor with a thermal conductivity higher than 5 W/m-K. According to one preferred embodiment, the velocity is kept constant, and the height of the channel is determined, in order to keep the volumetric heat transfer properties constant, according to the formula: wherein HG is the overall volumetric heat transfer coefficient in the pilot or production process; A B and C are constants; Dh is the hydraulic diameter of the channel in the pilot or production process; λw is the thermal conductivity of the wall in the pilot or production process; b is the empirically determined power to which the Reynolds number is raised in the equation for the Nusselt criteria (Nu = a-RebPrc) for the type of flow in the pilot or production process; h is the height of the channel in the pilot or production process; and HG0 is the overall volumetric heat transfer coefficient in the lab-scale process.

Description

SYSTEMS AND METHODS FOR
SCALE-UP OF CONTINUOUS FLOW REACTORS
[0001] This application claims the benefit of priority under 35 USC § 119 of European Patent Application Serial No. 11305743.4 filed on June 14, 201 1 the content of which is relied upon and incorporated herein by reference in its entirety.
Field
[0002] The present invention relates to methods to easily scale up from microreactor lab scale testing and reaction development to industrial production.
BACKGROUND
[0003] Continuous flow micro reaction technology is very promising technology, as it offers, as compared to the traditional batch system, a very uniform residence time, much better thermal control, and a lower hold-up, leading to a significant step change in terms of chemical yield and selectivity, and safety.
[0004] Continuous flow microreactors are now widely used in labs for testing and developing new routes of synthesis. For laboratory and development work, they offer a very small hold-up with a sufficient residence time, leading to a very small use of material for testing, which is of particular interest in the development phase, shortening the time required to make a requested quantity, and when the raw material is expensive. In addition, the small amount of material involved makes reduces safety and environmental risks significantly
[0005] The typical throughput of these devices ranges from less than one milliliter per minute to a few dozens of milliliters per minute.
[0006] These devices are usually formed in glass or in plastic (e.g. PDMS), which allows visually observation of the advancement of the reaction, and makes them cheap (in some cases even disposable), and easily reconfigurable.
[0007] Once a new process has been established, the challenge is to scale for mass production, with much larger throughput (up to several thousands of milliliters per minute). In addition, the properties of the reactor in terms of heat transfer, mixing, residence time distribution, and with a lower or at least the same pressure drop should be maintained.
[0008] Entering into mass production thus typically requires using several units in parallel to cope with the total quantity of product required. [0009] The complete duplication of one reactor line, with all its related equipment (feeding pumps, control loops, sensing, supervisory personnel, and so forth) would typically be the easiest way to place several units in parallel, and is often known as "numbering up."
[0010] However, "numbering up" can result in systems that are too complex, too maintenance-hungry, and/or too expensive to operate.
SUMMARY
[0011] The present disclosure includes a method of a reactor design and use which allows the increase of production rates of continuous micro reactors by adjusting the physical properties of the material the micro-reactor is made of, as well as certain specific dimensions, allowing a higher throughput while keeping the same performance, particularly in heat transfer capacity.
[0012] In particular, according to one aspect of the present disclosure, a method is disclosed for the seamless scale-up of a micro reactor process, to transfer lab test to a pilot or production unit, the process comprising the steps of using a wall material for the lab reactor with a thermal conductivity lower than 3 W/m-K, and using a wall material for the production reactor with a thermal conductivity higher than 5W/m-K. According to one embodiment, the velocity is kept constant, and the height of the channel is determined, in order to keep the volumetric heat transfer properti constant, according to the formula:
Figure imgf000003_0001
[0013] According to another embodiment, the pressure drop and the volumetric heat transfer properties are kept constant, while the channel height and the velocity are selected calculated according to the simultaneous solution of the following two formulas:
Figure imgf000003_0002
and
( . V ve i3++dd}) . V νe* 2
AP D x— + E x x = AP0 .
n v~d> n Ve0
[0014] Further embodiments and particular advantages of the present disclosure are described below in the detailed description. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 is a typical scheme of a rectangular channel with a length 1, a width w, and a height h.
[0016] Figure 2 represents the variation of the height of the module h, according to the present disclosure, to beep the same thermal performance while the thermal conductivity of the material of the wall is changed.
DETAILED DESCRIPTION
[0017] A micro reactor can be seen as a combination of channels that may have different shape and width. For the ease of the following discussion, we will take a rectangular channel wilt a length 1, a width w, a height h, as depicted in Figure 1. Any other shape of channel could be used without affecting the invention.
[0018] The volume of this reactor is V= w x h x 1. To make the demonstration easier, we will take the width of the channel as being high as compared to the height (w»h). The heat transfer area S is then equal to S ~ 2 x 1 x w, but the basic features of this disclosure will still be valid for any ratio between the width and the height of the channel.
[0019] Accordingly, the hydraulic diameter of the channel will be:
^ 4 x (w x h) . .
2 x (w + h)
[0020] To achieve a defined reaction yield, a given residence time is required, and accordingly is set constant for the following discussion. For a change in the desired flow rate, the desired residence time is maintained by a corresponding change in the volume of the reactor.
[0021] Let's assume that the objective is to double the production rate. Accordingly, the flow rate will be multiplied by 2. We could then simply double the volume of the channel by doubling one of the three dimensions.
[0022] Multiplying the length by 2 would keep the hydraulic diameter, and basically double the velocity, the Reynolds number (Re), and the length of the channel. This would lead to a pressure drop nearly 8 times higher than the base case (basically a factor nearly 4 effect for doubling the velocity, and a factor 2 effect for doubling the channel length), which is unacceptable.
[0023] Increasing the width could be nice because it would keep the velocity constant, the Re constant, and the hydraulic diameter constant, while scaling the heat transfer surface along with the width. Accordingly, most of the properties of the microreactor (heat transfer, pressure drop, and others) would be kept at the same value. However, a large channel that is too large relative to the diameter of the feeding pipe would lead to fluid distribution problems along the width of the channel, resulting in poor mixing and poor residence time distribution. Further, if the width of the channel is not negligible compared to the length, internal by-pass can occur, and the full heat transfer surface, as well as the full volume of the channel, would not be used properly. In addition, a channel to large in width will decrease the pressure resistance, of the channel, and thereby limit the field of application of the microreactor.
[0024] Multiplying the height of the channel by 2, in contrast, will keep the velocity constant, and multiply the hydraulic diameter by 2 (where w»h), and, accordingly, the pressure drop will be divided by 2, which has a positive impact. As the hydraulic diameter will be multiplied by 2, the Reynolds number will be multiplied by 2 as well. The properties or effects linked to velocity (pressure drop at singularities, macro mixing effects, and the like) will be kept at the same value. Keeping the velocity constant will keep the length of the channel the same for the same processing time. Although the increase in Reynolds number may cause slight changes in fluid behavior, provided that the flow remains within the same flow regime (laminar, transient, or turbulent), the changes will not be very significant— and for most flow properties or effects, the impact of increasing Reynolds number will tend to be beneficial.
[0025] Because heat transfer is essentially all through the "floor" and "ceiling" of the channel in devices of this type, doubling the height of the channel also means, however, that the heat transfer surface will be kept constant (S = 2 x I x w), whereas the channel volume will be multiplied by 2. Therefore, the volumetric heat transfer coefficient, which
characterizes the ability of the micro reactor to keep the temperature of the volume of the fluid constant, will be divided by 2— assuming that the height increase has no direct impact on the heat transfer coefficient itself— which is generally not acceptable.
[0026] If we keep the same heat transfer surface while increasing the volume by a factor of 2, the only way to keep the volumetric heat transfer to a constant value is to double the value of the heat transfer coefficient.
[0027] So the issue becomes how to increase the heat overall volumetric heat transfer coefficient when the height of the channel is increasing.
[0028] The overall heat transfer coefficient of the micro reactor is the resulting combination of thee partial heat transfer coefficients: (1 ) the utility heat transfer coefficient U HE (Watt/m2-K), (2) the wall heat transfer coefficient Uw (Watt/m2-K), and (3) the process heat transfer coefficient Up (Watt/m2-K). The overall surface heat transfer coefficient UQ is a non linear relationship between these three partial coefficients:
Figure imgf000006_0001
[0029] And the overall volumetric heat transfer coefficient that should be kept constant is given by:
1 1 1
2 x + +—
U x S U x 2 x x l U HE Uw Up
H, (3)
G V w x l x h h
[0030] To keep ¾ constant when h is increasing requires increasing in the same proportion the value of the overall surface heat transfer coefficient UQ. Accordingly, at least one of the three partial heat transfer coefficients UHE, UW, and Up must be increased.
[0031] UHE is generally already optimized in microfluidic channel or module designs, and an increase of the value of this coefficient would lead to an consequent increase of pressure drop that could either lead to an operating pressure in excess of the design pressure, or to a pressure higher than the operating pressure of the utilities of the end user. Therefore, this factor will be kept constant.
[0032] Up can be calculated by a formula such as
Up = Nu^ (4)
2 x h
Where the Nusselt criteria Nu can be calculated by:
Nw = a x Re*x Prc (5)
With a, b, and c being constants determined from experimental measurements, the values being specific to a given pattern.
[0033] [The determination of the coefficients a, b, and c is a well-known practice in the heat transfer industry, known to those of skill in the art. The general practice is that a number of measurements are performed in two steps: In the first step, the Pr (Prandtl number) is kept constant, while the Re (Reynolds number) is varied, and the Nusselt criteria or Nusselt number Nu is measured. The obtained value of Nu is then plotted versus Re in a log-log graph, and the slope of the obtained straight line gives the value of b. Repeating with Re held constant and various values of Pr gives the value of c. Then the value of a is easy to determine.] [0034] UP can therefore been written as:
UP = a x Ve x (2 x h†~1] x p' x ) x '~c) x Q?c (6)
Where Ve is the velocity of the process fluid; p is the process fluid density; μ is the process fluid viscosity; λ is the process fluid thermal conductivity; and Cp is the process fluid heat capacity.
[0035] Accordingly, we can see that Up can be written as a product of terms linked to the process fluid thermal properties, and terms linked to parameters that can be adjusted (such as height of the channel and fluid velocity).
[0036] If we mark the parameters linked to the intrinsic physical properties of the fluid with a *, the above equation can be further written as:
Up = a x Ve x (2 x
Figure imgf000007_0001
x p*h x x A*(l~c) x Cp*c 0)
[0037] or in a simpler way:
Figure imgf000007_0002
taking K as independent of the fluid velocity and of the height of the channel.
[0038] If λ w is the wall material thermal conductivity and e its thickness, then Uw can be written as:
[0039] Substituting and solvin for HG: as a function of h, gives
Figure imgf000007_0003
[0040] The objective as discussed above is to keep HG constant, while increasing the height h of the channel of a micro reactor. The parameters that could potentially be changed are the wall thickness e, the fluid velocity Ve and the wall thermal conductivity w . Although the thickness of the wall e could be reduced; such reduction would generally have an adverse impact on the mechanical properties of the micro reactor. Instead, according to the present disclosure, the increase of the height of the channel h is should be fully compensated, in terms of maintaining a constant volumetric heat transfer coefficient, by changing the wall material to a material of a higher thermal conductivity.
[0041] According to one embodiment of the present disclosure, the velocity is kept constant. The velocity is kept constant to keep as many as possible of the flow parameters (mixing, residence time distribution) at the same value. Thus, in this embodiment, the height of the channel h is adjusted to match a change or variation of wall thermal conductivity according to the following formula:
Figure imgf000008_0001
with A, B, C being constant.
Examples
[0042] For the following numerical examples, it is assumed that the Nusselt law for the channel is given by the following empirically derived formula:
Nu =— -— x e°'98x Pr0'8 (12)
10000
[0043] However, any other relation with different parameters could be used with the method disclosed herein and would not change the principle of the disclosure.
Example 1
[0044] In a first example, we assume that the process fluid is an organic solvent, the value of the Heat exchange partial heat transfer coefficient being equal to 8 000W/m2K, the wall material being glass with a thermal conductivity of 1 W/m-K, and a thickness of 1,2 mm, the height of the channel being 1,5 mm. Accordingly, the overall volumetric heat transfer coefficient achieved is 400 kW/m3K. The data are summarized below in Table 1 A:
Figure imgf000009_0001
[0045] If we now change the wall material and go to Alumina instead of glass, with a thermal conductivity of 27 W/m-K, while keeping the wall thickness at the same value, then we can increase the channel height from 1,5 to 2,2 mm , which is an increase of nearly 50%, while keeping the thermal properties at the same level, as shown below in Table IB:
Figure imgf000009_0002
Exam le 2
[0046] In a second example, we assume that the process fluid is similar to water, the value of the Heat exchange partial heat transfer coefficient being equal to 8 000W/m2K, the wall material being glass with a thermal conductivity of 1 W/m-K, and a thickness of 1,3 mm, the height of the channel being 1,5 mm. Accordingly, the overall volumetric heat transfer coefficient achieved is 710 kW/m3K. The data are summarized below in Table 2 A:
Figure imgf000010_0001
[0047] If we now change the wall material and go to Silicon Carbide inside of glass, with a thermal conductivity of 140 W/m-K, while keeping the wall thickness at the same value, then we can increase the channel height from 1.5 to 3.6 mm , which is an increase of nearly 2.5 times, while keeping the thermal properties at the same level, as shown below in Table 2B:
Figure imgf000011_0001
[0048] Therefore the benefit for the end user ranges from 25% to nearly 250%, which means that, in the latter case, it would require 2.5 time less equipment to make the same production with an industrial reactor made of SiC than if the original material, used for the lab tests, had been also used for production. An additional positive effect in that case is that the process pressure drop has been significantly reduced, allowing further saving in the design of the process pump and on the energy consumption.
[0049] An additional benefit is that, because the thermal performance can be predicted with a very good accuracy, there is no need to conduct further tests when changing the wall material, which can save a lot of development time and money.
[0050] More generally, based on the formula mentioned above, it is easy to plot a relationship between the wall material thermal conductivity and the height of the channel to keep the same thermal performance.
[0051] Figure 2 is an example of such curve. Several cases are plotted, according to the fluid physical properties (water or organic fluid), and the process fluid velocity (1.2, 2.2, or 3.2 m/s), for an initial channel height with glass of 0.5 mm.
[0052] Based on these curves, it is easy to determine what would be the height of the channel, according to the type of fluid and the initial velocity, to achieve the same thermal performance as with the prototyping equipment in glass. [0053] The embodiment above and the examples given have been made with an assumption that w»h to ease the illustration and make calculation simpler. However, the principle remains exactly the same in a more general case where the width of the channel w is not significantly larger than the channel height h. In that case, the hydraulic diameter is given by:
2 x (wx h) (12)
(w + h)
and the objective is then, in the general case, to adjust the height of the channel h according to a variation of the wall th rmal conductivity according to the following formula:
Figure imgf000012_0001
[0054] In another alternative embodiment, the velocity of the process fluid is increased rather than maintained at the same level, in order to provide a further increase of the partial process heat transfer coefficient UP, while keeping the pressure drop at the same level as in the lab or prototyping equipment. In this embodiment, order to keep the residence time constant, the length of the channel has to be increased in the same proportion as the velocity increase. The principle of optimization remains the same, however: the height of the channel is adjusted according to a variation of the wall thermal conductivity, but in addition, the velocity is determined in order to keep the pressure drop constant. In the case where the width of the channel is much larger than the height:
Ve Ve_ Ve
AP D x - E x (14)
h h Ven
Or
Figure imgf000012_0002
[0055] The optimization thus requires finding a solution of the two following equations with two paramet rs (h and Ve), which may be easily found with any conventional method:
Figure imgf000012_0003
Figure imgf000013_0001
[0056] In the more general case, where h cannot be neglected compared to the channel width w, the equations to be solved by any appropriate conventional methods are:
Figure imgf000013_0002
[0057] The methods disclosed herein allow seamless scale -up of a micro reactor processes from lab test or prototyping to production, while keeping the overall performance of the equipment, and particularly the volumetric heat transfer capacity, at the same level. This will lead to a significant reduction in the number of reactors required in parallel, reducing the installation and maintenance cost, and to a significant increase in reliability and predictability in implementing micro reaction technology, without requiring full-scale production equipment for reaction and process characterization.
[0058] In some cases, the reduction of the number of reactors in parallel will even make feasible production operations that could not have been envisioned due to the high number of reactor requested without the use of the disclosed methods. Additionally, the disclosed methods provide a way to determine easily the height increase that can be made without making an additional pilot phase to validate the impact of the scale-up, which otherwise would take significant time and effort.
[0059] As the time to market is a key element in the competitiveness of a product, especially in the fine chemical and pharmaceutical industry, the reduced time to market will lead to a significant margin increase.
[0060] Although the examples above all use glass for the lab reactor, other materials having thermal conductivity lower than 3 W/m-K, thought not currently preferred, may be used, such as filled glasses or other composite materials, for example, or even organic materials, where appropriate for the reaction(s) under development.
[0061] The seamless scale-up methods disclosed herein are generally useful in performing any process that involves mixing, separation, extraction, crystallization, precipitation, or otherwise processing fluids or mixtures of fluids, including multiphase mixtures of fluids— and including fluids or mixtures of fluids including multiphase mixtures of fluids that also contain solids— within a microstructure. The processing may include a physical process, a chemical reaction defined as a process that results in the interconversion of organic, inorganic, or both organic and inorganic species, a biochemical process, or any other form of processing. The following non-limiting list of reactions may be performed with the disclosed methods and/or devices: oxidation; reduction; substitution; elimination; addition; ligand exchange; metal exchange; and ion exchange. More specifically, reactions of any of the following non-limiting list may be performed with the disclosed methods and/or devices: polymerization; alkylation; dealkylation; nitration; peroxidation; sulfoxidation; epoxidation; ammoxidation; hydrogenation; dehydrogenation; organometallic reactions; precious metal chemistry/ homogeneous catalyst reactions; carbonylation; thiocarbonylation; alkoxylation; halogenation; dehydrohalogenation; dehalogenation; hydroformylation; carboxylation; decarboxylation; amination; arylation; peptide coupling; aldol condensation;
cyclocondensation; dehydrocyclization; esterification; amidation; heterocyclic synthesis; dehydration; alcoholysis; hydrolysis; ammonolysis; etherification; enzymatic synthesis; ketalization; saponification; isomerisation; quaternization; formylation; phase transfer reactions; silylations; nitrile synthesis; phosphorylation; ozonolysis; azide chemistry;
metathesis; hydrosilylation; coupling reactions; and enzymatic reactions.

Claims

What is claimed is:
1. A method for the seamless scale-up of a continuous-flow microreactor process, to transfer reactions characterized or developed at laboratory-scale directly to a pilot or production unit, with limited or no additional experimentation, the method comprising the steps of:
using a wall material for a lab reactor resulting in thermal conductivity across the wall lower than 3 W/m-K, and
using a wall material for a pilot or production reactor resulting in a total thermal conductivity across the wall higher than 5W/m-K.
2. The method according to claim 1 , in which the step of using a wall material for the lab reactor further includes using a glass wall material for the lab reactor.
3. The method according to claim 1 , in which the step of using a wall material for a pilot or production reactor further includes using a wall material for a pilot or production reactor resulting in a total thermal conductivity across the wall higher than 20W/m-K.
4. The method according to claim 1, in which the step of using a wall material for a pilot or production reactor further includes using a wall material for a pilot or production reactor resulting in a total thermal conductivity across the wall higher than 100 W/m-K.
5. The method according to any of claims 1-4, wherein the step of using a wall material for a pilot or production reactor further includes using a ceramic wall material for the pilot or production reactor.
6. The method according to claim 5, in which the wall material for the production reactor is Silicon carbide.
7. The method according to any of claims 1-6, further comprising the steps of:
using a velocity in the pilot or production unit that varies less than 10% from a velocity used in the lab test unit, and
using a channel height in the pilot or production unit that selected so as to keep calculated volumetric heat transfer during operation of the pilot or production unit within 20% of calculated volumetric heat transfer during operation of the lab test unit.
8. The method according to any of claims 1-6, further comprising the steps of:
using a velocity in the pilot or production unit that varies less than 10% from a velocity used in the lab test unit, and using a channel height in the pilot or production unit that selected so as to keep calculated volumetric heat transfer during operation of the pilot or production unit within 10% of calculated volumetric heat transfer during operation of the lab test unit.
9. The method according to any of claims 1-6, further comprising the step of:
using both an increased velocity and an increased channel height in the pilot or production process, relative to a velocity and a channel height in the lab test process, with the increased velocity and increased height selected such that a process pressure drop and volumetric heat transfer within the pilot or production process are each kept within 20% of a process pressure drop and volumetric heat transfer within the lab test process.
10. The method according to any of claims 1-6, further comprising the step of:
using a channel height in the pilot or production process greater than a channel height in the lab test process by a factor of between 1.2 and 8.
11. The method according to any of claims 1 -6, further comprising the step of:
using a channel height in the pilot or production process greater than a channel height in the lab test process by a factor of between 1.2 and 3.5.
12. The method according to any of claims 1-6, in which the velocity is kept constant, and the height of the channel is determined, in order to keep the volumetric heat transfer properties constant, according to the formula:
Figure imgf000016_0001
wherein HQ is the overall volumetric heat transfer coefficient in the pilot or production process; A B and C are constants; Dh is the hydraulic diameter of the channel in the pilot or production process; λ¾? is the thermal conductivity of the wall in the pilot or production process; b is the empirically determined power to which the Reynolds number is raised in the equation for the Nusselt criteria (Nu = a-RebPrc) for the type of flow in the pilot or production process; h is the height of the channel in the pilot or production process; and HQO is the overall volumetric heat transfer coefficient in the lab-scale process.
13. The method according to any of claims 1-6, in which the pressure drop and the volumetric heat transfer properties are kept constant, the channel height and the velocity being selected as calculated according to the simultaneous solution of the following two formulas: and
Figure imgf000017_0001
wherein HQ is the overall volumetric heat transfer coefficient in the pilot or production process; A' B' and C are constants; Dh is the hydraulic diameter of the channel in the pilot or production process; λ¾? is the thermal conductivity of the wall in the pilot or production process; Ve is the fluid velocity of the pilot or production process; b is the empirically determined power to which the Reynolds number is raised in the equation for the Nusselt criteria (Nu = a-RebPrc) for the type of flow in the pilot or production process; h is the height of the channel in the pilot or production process; HQO is the overall volumetric heat transfer coefficient in the lab-scale process; ΔΡ is the pressure drop of the pilot or production process; D' and E' are constants; d is a constant; Veo is the fluid velocity of the lab scale process; and ΔΡο is the pressure drop of the lab-scale process.
14. A system of reactor components for the seamless scale-up of a continuous-flow microreactor process, to transfer reactions characterized or developed at laboratory-scale directly to a pilot or production unit, with limited or no additional experimentation, the system comprising:
a plurality first reaction modules for a lab reactor having a first wall material resulting in a thermal conductivity across the wall of the first reaction modules lower than 3 W/m-K; and
a plurality of second reaction modules for a pilot or production reactor having a second wall material resulting in a total thermal conductivity across the wall of the second reaction modules higher than 5 W/m-K.
15. A system of reactor components according to claim 14, wherein the second wall material comprises silicon carbide.
PCT/US2012/041192 2011-06-14 2012-06-07 Systems and methods for scale-up of continuous flow reactors Ceased WO2012173848A1 (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
US14/125,720 US10046295B2 (en) 2011-06-14 2012-06-07 Methods for scale-up of continuous reactors
CN201280029238.6A CN103596676A (en) 2011-06-14 2012-06-07 Systems and methods for scale-up of continuous flow reactors

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
EP11305743A EP2535105A1 (en) 2011-06-14 2011-06-14 Systems and methods for scale-up of microreactors
EP11305743.4 2011-06-14

Publications (1)

Publication Number Publication Date
WO2012173848A1 true WO2012173848A1 (en) 2012-12-20

Family

ID=46229963

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2012/041192 Ceased WO2012173848A1 (en) 2011-06-14 2012-06-07 Systems and methods for scale-up of continuous flow reactors

Country Status (4)

Country Link
US (1) US10046295B2 (en)
EP (1) EP2535105A1 (en)
CN (1) CN103596676A (en)
WO (1) WO2012173848A1 (en)

Families Citing this family (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2535105A1 (en) * 2011-06-14 2012-12-19 Corning Incorporated Systems and methods for scale-up of microreactors
AR109884A1 (en) * 2016-11-02 2019-01-30 Dow Global Technologies Llc METHODS FOR DESIGNING EXPANDED FLUID CATALYTIC REACTORS
US10589242B2 (en) 2016-11-02 2020-03-17 Dow Global Technologies Llc Fluid catalytic reactors which include flow directors
EP4022241B1 (en) 2019-08-31 2025-05-07 Corning Incorporated Improved heat exchange flow reactor

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20060171864A1 (en) * 2005-01-07 2006-08-03 Philippe Caze High performance microreaction device
US20090120629A1 (en) * 2005-05-13 2009-05-14 Robert Ashe Variable heat flux heat exchangers
WO2010104597A2 (en) * 2009-03-13 2010-09-16 President And Fellows Of Harvard College Scale-up of microfluidic devices
WO2010130811A2 (en) * 2009-05-12 2010-11-18 Lonza Ag Method of manufacturing a reactor and set of reactors

Family Cites Families (23)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4892707A (en) * 1983-07-25 1990-01-09 American Cyanamid Company Apparatus for the calorimetry of chemical processes
US20030118486A1 (en) * 2000-07-03 2003-06-26 Xeotron Corporation Fluidic methods and devices for parallel chemical reactions
US6955738B2 (en) * 2002-04-09 2005-10-18 Gyros Ab Microfluidic devices with new inner surfaces
GB0210809D0 (en) * 2002-05-11 2002-06-19 Univ Durham Reactor
US7007710B2 (en) * 2003-04-21 2006-03-07 Predicant Biosciences, Inc. Microfluidic devices and methods
US20050072915A1 (en) * 2003-10-07 2005-04-07 Biospect Inc. Methods and apparatus for self-optimization of electrospray ionization devices
GB0621520D0 (en) * 2006-10-28 2006-12-06 P2I Ltd Novel products
US7670567B2 (en) * 2007-01-31 2010-03-02 Stevens Institute Of Technology Scalable microreactors and methods for using same
ATE477220T1 (en) * 2007-02-28 2010-08-15 Corning Inc METHOD FOR PRODUCING MICROFLUIDIC DEVICES
EP1964816B1 (en) * 2007-02-28 2015-06-03 Corning Incorporated Methods for forming compositions containing glass
EP2065347A1 (en) * 2007-11-30 2009-06-03 Corning Incorporated Durable frit composition and composites and devices comprised thereof
JP2010530294A (en) * 2007-05-18 2010-09-09 コーニング インコーポレイテッド Glass microfluidic device and method of manufacturing the same
DE102007049172A1 (en) * 2007-10-13 2009-04-16 Micro Systems Engineering Gmbh & Co. Kg A microreactor and method of making the same and method of making a substrate for a microreactor
CN100548468C (en) * 2007-11-13 2009-10-14 华东师范大学 A composite heat exchange filled microreactor
PL2222628T3 (en) 2007-12-20 2012-12-31 Dsm Fine Chemicals Austria Nfg Gmbh & Co Kg Formation of nitrate esters in microreactors and millireactors using a continuous product extraction in a turbulent flow regime
US8414182B2 (en) * 2008-03-28 2013-04-09 State Of Oregon Acting By And Through The State Board Of Higher Education On Behalf Of Oregon State University Micromixers for nanomaterial production
DE102008048014A1 (en) * 2008-09-12 2010-04-15 Esk Ceramics Gmbh & Co. Kg Component of a stack of ceramic plates
JP5363932B2 (en) * 2009-09-28 2013-12-11 株式会社日立製作所 Chemical equipment
EP2422874A1 (en) * 2010-08-31 2012-02-29 Corning Incorporated Fluidic modules with enhanced thermal characteristics
EP2535105A1 (en) * 2011-06-14 2012-12-19 Corning Incorporated Systems and methods for scale-up of microreactors
US20150005429A1 (en) * 2012-02-13 2015-01-01 Kyowa Chemical Industry Co., Ltd. Magnesium hydroxide fine particles
WO2013126769A1 (en) * 2012-02-22 2013-08-29 Clingan William Rex Containment vessel and scale-up method for chemical processes
CN104136373A (en) * 2012-03-26 2014-11-05 协和化学工业株式会社 Method for producing hydrotalcite particles

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20060171864A1 (en) * 2005-01-07 2006-08-03 Philippe Caze High performance microreaction device
US20090120629A1 (en) * 2005-05-13 2009-05-14 Robert Ashe Variable heat flux heat exchangers
WO2010104597A2 (en) * 2009-03-13 2010-09-16 President And Fellows Of Harvard College Scale-up of microfluidic devices
WO2010130811A2 (en) * 2009-05-12 2010-11-18 Lonza Ag Method of manufacturing a reactor and set of reactors

Non-Patent Citations (6)

* Cited by examiner, † Cited by third party
Title
CRAIG HOLVEY: "Characterization of Microreactors with Respect to Pressure Drop, Heat Transfer and Mixing Efficiency", DISSERTATIONS & THESES: THE SCIENCES AND ENGINEERING COLLECTION, 2010, University of Ottawa (Canada), pages 1 - 95, XP055012927, ISBN: 978-0-49-466233-5, Retrieved from the Internet <URL:http://proquest.umi.com/pdf/4eff20bfc4b933bcb3ca44ab1e956829/1322060763//share4/pqimage/pqirs102v/201111230936/03206/31969/out.pdf> [retrieved on 20111123] *
KARAGIANNIDIS S ET AL: "Numerical investigation on the start-up of methane-fueled catalytic microreactors", COMBUSTION AND FLAME, ELSEVIER SCIENCE PUBLISHING CO., INC., NEW YORK, NY.; US, vol. 157, no. 7, 1 July 2010 (2010-07-01), pages 1400 - 1413, XP027059301, ISSN: 0010-2180, [retrieved on 20100203] *
NORBERT KOCKMANN ET AL: "Scale-up concept of single-channel microreactors from process development to industrial production", CHEMICAL ENGINEERING JOURNAL, vol. 167, no. 2-3, 23 October 2010 (2010-10-23), pages 718 - 726, XP055012571, ISSN: 1385-8947, DOI: 10.1016/j.cej.2010.08.089 *
REBROV E ET AL: "Design of a microstructured reactor with integrated heat-exchanger for optimum performance of a highly exothermic reaction", CATALYSIS TODAY, ELSEVIER, NL, vol. 69, no. 1-4, 15 September 2001 (2001-09-15), pages 183 - 192, XP027361177, ISSN: 0920-5861, [retrieved on 20010915] *
STUTZ ET AL: "Effects of microreactor wall heat conduction on the reforming process of methane", CHEMICAL ENGINEERING SCIENCE, OXFORD, GB, vol. 60, no. 24, 1 December 2005 (2005-12-01), pages 6983 - 6997, XP005056468, ISSN: 0009-2509, DOI: 10.1016/J.CES.2005.06.012 *
THOMAS STIEF ET AL: "NUMERICAL INVESTIGATIONS OF OPTIMAL HEAT CONDUCTIVITY IN MICRO HEAT EXCHANGERS", CHEMICAL ENGINEERING AND TECHNOLOGY, WEINHEIM, DE, vol. 22, no. 4, 26 April 1999 (1999-04-26), pages 297 - 303, XP009077619, ISSN: 0930-7516, DOI: 10.1002/(SICI)1521-4125(199904)22:4&LT,297::AID-CEAT297&GT,3.0.CO,2- *

Also Published As

Publication number Publication date
US10046295B2 (en) 2018-08-14
EP2535105A1 (en) 2012-12-19
CN103596676A (en) 2014-02-19
US20140115871A1 (en) 2014-05-01

Similar Documents

Publication Publication Date Title
Waelchli et al. Two-phase flow characteristics in gas–liquid microreactors
Su et al. An experimental study on the numbering-up of microchannels for liquid mixing
Iwasaki et al. Radical polymerization using microflow system: numbering-up of microreactors and continuous operation
Elvira et al. The past, present and potential for microfluidic reactor technology in chemical synthesis
Nieves-Remacha et al. Hydrodynamics of liquid–liquid dispersion in an advanced-flow reactor
Wang et al. Strategy for scaling‐up of a microsieve dispersion reactor
Chu et al. Characterization of frictional pressure drop of liquid flow through curved rectangular microchannels
US10046295B2 (en) Methods for scale-up of continuous reactors
JP7789698B2 (en) RNA-based therapeutic drug synthesis method and modular synthesis device
Groß et al. Fabrication and fluidic characterization of static micromixers made of low temperature cofired ceramic (LTCC)
WO2010075259A1 (en) Microchannel reactors
Al-Rawashdeh et al. Phenylacetylene hydrogenation over [Rh (NBD)(PPh3) 2] BF4 catalyst in a numbered-up microchannels reactor
Reichmann et al. Mixing time scale determination in microchannels using reaction calorimetry
Gao et al. Development of a fast thermal response microfluidic system using liquid metal
McCreedy et al. Microfabricated reactors for on-chip heterogeneous catalysis
Cortese et al. Modeling of anionic polymerization in flow with coupled variations of concentration, viscosity, and diffusivity
Lavric et al. Advanced-FlowTM glass reactors for seamless scale-up
Koo et al. Facile microfabrication of three dimensional-patterned micromixers using additive manufacturing technology
Lan et al. Rapid measurement of fluid viscosity using co-flowing in a co-axial microfluidic device
Bula et al. Multichannel quench-flow microreactor chip for parallel reaction monitoring
US20030156995A1 (en) Microreactor
Togashi et al. Yield improvement of chemical reactions by using a microreactor and development of a pilot plant using the numbering-up of microreactors
Despènes et al. Impact of the material on the thermal behaviour of heat exchangers-reactors
US10183269B2 (en) Continuous flow reactor with tunable heat transfer capability
Quiram et al. Integrated microreactor system for gas-phase catalytic reactions. 1. Scale-up microreactor design and fabrication

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 12726566

Country of ref document: EP

Kind code of ref document: A1

WWE Wipo information: entry into national phase

Ref document number: 14125720

Country of ref document: US

NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 12726566

Country of ref document: EP

Kind code of ref document: A1